SlideShare uma empresa Scribd logo
1 de 8
Baixar para ler offline
July 2004       •      NREL/CP-550-36277




Trombe Walls in Low-Energy
Buildings: Practical
Experiences
Preprint




P. Torcellini and S. Pless

To be presented at the World Renewable Energy
Congress VIII and Expo
Denver, Colorado
August 29–September 3, 2004




            National Renewable Energy Laboratory
            1617 Cole Boulevard, Golden, Colorado 80401-3393
            303-275-3000 • www.nrel.gov
            Operated for the U.S. Department of Energy
            Office of Energy Efficiency and Renewable Energy
            by Midwest Research Institute • Battelle
            Contract No. DE-AC36-99-GO10337
NOTICE
The submitted manuscript has been offered by an employee of the Midwest Research Institute (MRI), a
contractor of the US Government under Contract No. DE-AC36-99GO10337. Accordingly, the US
Government and MRI retain a nonexclusive royalty-free license to publish or reproduce the published
form of this contribution, or allow others to do so, for US Government purposes.
This report was prepared as an account of work sponsored by an agency of the United States
government. Neither the United States government nor any agency thereof, nor any of their employees,
makes any warranty, express or implied, or assumes any legal liability or responsibility for the accuracy,
completeness, or usefulness of any information, apparatus, product, or process disclosed, or represents
that its use would not infringe privately owned rights. Reference herein to any specific commercial
product, process, or service by trade name, trademark, manufacturer, or otherwise does not necessarily
constitute or imply its endorsement, recommendation, or favoring by the United States government or any
agency thereof. The views and opinions of authors expressed herein do not necessarily state or reflect
those of the United States government or any agency thereof.


                        Available electronically at http://www.osti.gov/bridge


                        Available for a processing fee to U.S. Department of Energy
                        and its contractors, in paper, from:
                                 U.S. Department of Energy
                                 Office of Scientific and Technical Information
                                 P.O. Box 62
                                 Oak Ridge, TN 37831-0062
                                 phone: 865.576.8401
                                 fax: 865.576.5728
                                 email: mailto:reports@adonis.osti.gov

                        Available for sale to the public, in paper, from:
                                U.S. Department of Commerce
                                National Technical Information Service
                                5285 Port Royal Road
                                Springfield, VA 22161
                                phone: 800.553.6847
                                fax: 703.605.6900
                                email: orders@ntis.fedworld.gov
                                online ordering: http://www.ntis.gov/ordering.htm



       Printed on paper containing at least 50% wastepaper, including 20% postconsumer waste
Trombe Walls in Low-energy Buildings: Practical Experiences

                              Paul Torcellini and Shanti Pless
                          National Renewable Energy Laboratory

Introduction
Since ancient times, people have used thick walls of adobe or stone to trap the sun's heat
during the day and release it slowly and evenly at night to heat their buildings. Today's
low-energy buildings often improve on this ancient technique by incorporating a thermal
storage and delivery system called a Trombe wall. Named after French inventor Felix
Trombe in the late 1950s, the Trombe wall continues to serve as an effective feature of
passive solar design.
Trombe walls have been integrated into the envelope of a recently completed Visitor
Center at Zion National Park and a site entrance building (SEB) at the National
Renewable Energy Laboratory’s (NREL’s) National Wind Technology Center. The High
Performance Building Initiative (HPBi) at NREL helped to design these commercial
buildings to minimize energy consumption, using Trombe walls as an integral part of
their design.

Trombe Wall Design and Construction
A typical unvented Trombe wall consists of a 4- to 16-in (10- to 41-cm)-thick, south-
facing masonry wall with a dark, heat-absorbing material on the exterior surface and
faced with a single or double layer of glass. The glass is placed from ¾ to 2 in. (2 to 5
cm) from the masonry wall to create a small airspace. Heat from sunlight passing
through the glass is absorbed by the dark surface, stored in the wall, and conducted
slowly inward through the masonry. High transmission glass maximizes solar gains to
the masonry wall. As an architectural detail, patterned glass can limit the exterior
visibility of the dark concrete wall without sacrificing transmissivity.
Applying a selective surface to a Trombe wall improves its performance by reducing the
amount of infrared energy radiated back through the glass. The selective surface consists
of a sheet of metal foil glued to the outside surface of the wall. It absorbs almost all the
radiation in the visible portion of the solar spectrum and emits very little in the infrared
range. High absorbency turns the light into heat at the wall's surface, and low emittance
prevents the heat from radiating back towards the glass.
For an 8-in-thick (20-cm) Trombe wall, heat will take about 8 to 10 hours to reach the
interior of the building. This means that rooms receive slow, even heating for many
hours after the sun sets, greatly reducing the need for conventional heating. Rooms
heated by a Trombe wall often feel more comfortable than those heated by forced air
because of the large warm surface providing radiant comfort.
Architects can use Trombe walls in conjunction with windows, eaves, and other building
design elements to balance solar heat delivery. Strategically placed windows allow the
sun's heat and light to enter a building during the day to help heat the building with direct
solar gains. At the same time, the Trombe wall absorbs and stores heat for evening use.
Properly sized roof overhangs shade the Trombe wall during the summer when the sun is



                                              1
high in the sky. Shading the Trombe wall can prevent the wall from getting hot during
the time of the year when the heat is not needed.
These Trombe wall design concepts were applied to the low-energy design of the Visitor
Center at Zion National Park in Utah and to NREL’s Wind Site SEB in Colorado.
Figure 1 shows the Trombe wall locations in the NREL SEB (a), and the Zion Visitor
Center (b).


                                                      Trombe walls




   Figure 1.    a) NREL SEB,                 b) Zion Visitor Center

The National Park Service applied a whole-building design process to create a Visitor
Center at Zion National Park that performs more than 70% better than a comparable
code-compliant building at no additional construction cost (Torcellini 2004). Trombe
walls were one of the many strategies included in that process and design.
The Visitor Center Trombe wall design details are shown in the cross section in Figure 2.
The 6-ft-high (1.8-m) Trombe wall (740-ft2 total area (68.7-m2) is located on the entire
length of south-facing walls of the Visitor Center. The wall is 44% of the total south
facing wall area. The Trombe wall is 8-in (20-cm) grout-filled concrete masonry units
(CMU) with an R-value of 2.5 hr·ft2·°F/Btu (0.4 K·m2/W). The other walls are 6-in
(15-cm) framed walls with an R-value of R-16 hr·ft2·°F/Btu (2.8 K·m2/W). The Trombe
wall has a single piece of high transmittance patterned glass installed on a thermally
broken storefront system.
The performance of Trombe walls is diminished if the wall interior is not open to the
interior zones. Based on previous experiences with Trombe walls (Balcomb 1998), the
heat delivered by a Trombe wall in a residence was reduced by over 40% because kitchen
cabinets were placed on the interior of the wall. The wall design at Zion includes cast-in-
place concrete projections attached to the interior of the wall. These projections were
included to ensure bookshelves were not placed against the Trombe wall.
The interior surface of the Zion Trombe wall was selected to maximize the heat transfer
to the space. Some interior surfacing materials, such as drywall, can reduce the heat
delivered by Trombe walls due to nonconductive air gaps in between the concrete wall
and the interior surface (Balcomb 1998). A shotcrete wall finish was specified to provide
a more continuous conductivity throughout the wall.
During the construction process, the filling of the CMU wall was monitored to ensure the
concrete block cores were completely filled, which provides a consistent conductivity
through the wall. The placement of the footing insulation was also verified during the
construction process to ensure proper installation. The location of this insulation is
critical, as Trombe wall performance can be diminished due to three-dimensional heat


                                            2
transfer to the ground. By thermally decoupling the footings from the ground with
insulation, unnecessary heat loss is avoided and more heat from the Trombe wall is
supplied to the building.

                                                    Overhang Engineered for
                                                    Summer Shading



                                                  Daylighting and View
                        Shotcrete                 Windows
                        Wall Finish
                        (Inside)                Selective
                                                Surface
               Cast-in-Place
                                                       2” Air
               Concrete Wall
                                                       Gap
               Projections
                        8” Grout Filled           5/32”
                        CMU Wall                  Glazing
                                                        1-1/2” Rigid Footing
                                                        Insulation

   Figure 2.     Cross-section details of Zion Trombe wall

NREL’s Wind Site, located approximately twelve miles north of Golden, Colorado,
constructed a small building at the site entrance. NREL staff designed an energy-
efficient SEB that would eventually be powered completely by its onboard photovoltaic
(PV) array and two wind turbines. Although small, the building is representative of many
guard facilities, remote restrooms, and outposts.
A Trombe wall was an integral part of the heating system. This Trombe wall has a single
piece of high transmittance patterned glass installed on a thermally broken storefront
system in front of a 4-in-thick (10-cm) concrete wall with a selective surface. The other
walls are 4-in-solid (10-cm) tilt-up concrete walls with an EIFS (exterior insulating
finishing system). The 5-in (13-cm) exterior foam has an R-value of 25 hr·ft2·°F/Btu
(4.4 K·m2/W). The total area of the Trombe wall is 44 ft2 (4.1 m2), or about 34% of the
total south-facing wall. The roof overhang shades the Trombe wall for most of the
summer. The interior surface is painted concrete.

Trombe Wall Energy Performance
The energy performance of the Zion Visitor Center was monitored and analyzed over a
two-year period. The analysis consisted of measured electrical end uses, Trombe wall
temperature profiles, and thermographic pictures to determine the performance of this
Trombe wall (Torcellini, 2004). Similar measurements were taken at the SEB over a
one-year period.
Figure 3 shows the thermal distribution of the Zion Trombe wall at 8:30 p.m. on
December 16, 2000. The interior surface temperature is generally homogeneous, ranging
from 90-96ºF (32-36ºC). The wall temperature typically peaks between 8-9 p.m. The
reduced wall temperature at the far right section of Trombe wall is due to shading. The


                                            3
building shades a portion of the Trombe wall in the afternoon, resulting in reduced
interior temperatures.
                                                                                                             96.0°F
                                                                                                                                    Window                >91.8ºF      >33.2º
                                                                                 Window                            90
                                                                                                                                                           86.0ºF      30.0ºC

                                                                                                 Shading           80
                                                                                                 Affects                                                   77.0ºF      25.0ºC
                                                                                                                                 Trombe Wall
                   Trombe Wall                                                                                     70                                      68.0ºF      20.0ºC


                                                                                                                   60                                      59.0ºF      15.0ºC
                                                                                                                                                          <57.7ºF     <14.3ºC
   a)                                                                                                        58.0°F
                                                                                                                        b)
   Figure 3.                                                                Infrared pictures of a) Zion Trombe wall December 16, 8:30 p.m. and b)
                                                                            NREL SEB Trombe Wall January 21, 8:00 p.m.

The temperature gradient in the wall was measured during the 2001-2002 heating season.
With internal temperature measurements, the Trombe wall energy supplied to the
building was calculated based on published heat flux calculation methods (Balcomb
1980). The Visitor Center Trombe wall daily performance during the 2001-2002 heating
season is shown in Figure 4. The electric radiant heating system used 22,680 kWh
(81.6 GJ) over the year, with the Trombe wall contributing 20% of the total heating to the
building. The Trombe wall imposed a heating load on the building for only two of the
151 days of the 2001-2002 heating season. For the other 149 heating days, the wall was a
net positive. The peak heat flux through the wall was 11.2 W/ft2 (89 W/m2), or 8.3 kW
over the entire Trombe wall area. The average efficiency of the wall (defined as the heat
delivered to the building divided by the total solar radiation incident on the exterior of the
wall) was 13%.
                                                                      400
          Daily Heating Energy Supplied to Visitor Center (kWh/day)




                                                                             2001-2002 Heating Season:
                                                                             -5,470 kWh added by Trombe Wall                                   Heat Added by the Trombe Wall
                                                                             -22,680 kWh added by Heating System
                                                                             -20% of heating from Trombe Wall                                  Heating System Use
                                                                      350
                                                                             -8.3 kW Peak heating from Trombe
                                                                             Wall
                                                                             -17.2 kW Peak heating from Heating
                                                                      300    System



                                                                      250


                                                                      200


                                                                      150


                                                                      100


                                                                      50


                                                                        0
                                /0 01
                                /1 01
                                /2 01
                                /2 01
                                /0 01
                                /1 01
                                /2 01
                                /2 01
                                /0 01
                                /1 02
                                /1 02
                                /2 02
                                /3 02
                                /0 02
                                /1 02
                                /2 02
                                /2 02
                                /0 02
                                /1 02
                                /2 02
                                /2 02
                                        02
                             11 /20
                             11 /20
                             11 /20
                             11 /20
                             12 /20
                             12 /20
                             12 20
                             12 /20
                             01 20
                             01 /20
                             01 20
                             01 /20
                             01 /20
                             02 /20
                             02 /20
                             02 20
                             02 /20
                             03 20
                             03 /20
                             03 20
                             03 /20
                                      20
                                   3/


                                   7/


                                   0/




                                   4/


                                   8/


                                   4/


                                   8/
                                   1
                                   8
                                   5
                                   2
                                   9
                                   6


                                   0


                                   3


                                   7
                                   4
                                   1
                                   7


                                   1


                                   7


                                   1
                                /0
                             11




   Figure 4.                                                                Zion Visitor Center Trombe wall and heating system performance, 2001-
                                                                            2002 heating season




                                                                                                                             4
The interior surface temperature of the SEB Trombe wall typically peaks at 120-130ºF
(49-54ºC) at 3:30-4:00 p.m. during the heating season. The interior temperatures of the
SEB wall are generally higher, but earlier in the day than the Zion wall. This difference
is due to the 4-in (10-cm) SEB wall that releases the heat quicker than the 8-in (20-cm)
Zion wall. During good solar days in the heating season, the Trombe wall typically
provides all of the necessary heating throughout the afternoon and evening.
A potential design issue to consider in any passive solar building is overheating in the
summer and swing seasons. The overhangs in both the Zion and NREL SEB were
designed to shade the Trombe walls during the cooling season. Even with the Trombe
walls shaded during the summer, the walls impose an additional cooling load on the
buildings. This is because early morning and late afternoon radiation is not shaded, and
diffuse and reflected radiation is not negligible. Additionally, the insulation values of
these walls are low. At Zion, any additional cooling loads are not a significant issue, as
the passive direct evaporative cooling system provides an abundance of cheap cooling.
The additional cooling loads at the SEB are an issue, as a heat pump has to provide extra
cooling to account for the hot Trombe wall. On average in July, the SEB Trombe wall
reaches 100ºF (38ºC) in the afternoon. When the Trombe wall was completely covered
for four days in August 2003, the interior surface temperature was never above 87ºF
(31ºC). A summer shading blind has been recommended for the SEB Trombe wall to
reduce the cooling impact of this wall.

Conclusions
Trombe walls have been integrated into the envelope of a recently completed Visitor
Center at Zion National Park and a SEB at NREL’s Wind site. A Trombe wall can
enable a building envelope to go from a net-loss feature to a net-gain feature. The
Trombe wall provides passive solar heating without introducing light and glare into
theses commercial spaces. Overhangs are necessary to minimize the summer gains;
however, additional means would be helpful to minimize summer cooling impacts. In
both walls, edge effects were minimized with appropriate ground insulation.
The Trombe walls in both the Visitor Center and the SEB provide significant heating to
the buildings. In the Visitor Center, 20% of the annual heating was supplied by the
Trombe wall, and the SEB afternoon and evening heating loads are typically met by the
Trombe wall. The annual net effect of the wall has to be considered when designing a
Trombe wall, as the additional cooling loads can affect the cooling system performance.

References
Balcomb, J.D., Barker, G., Hancock, C.E. (Nov. 98). “An Exemplary Building Case
Study of the Grand Canyon South Rim Residence.” NREL/TP-550-24767, Golden, CO:
National Renewable Energy Laboratory.
Torcellini, P.; Long, N.; Pless, S.; Judkoff, R. (2004). “Evaluation of the Low-Energy
Design and Energy Performance of the Zion National Park Visitor Center.” NREL Report
No. TP-550-34607. Golden, CO: National Renewable Energy Laboratory.
Balcomb, D.; Hedstrom, J.C. (1980). “Determining Heat Fluxes from Temperature
Measurements in Massive Walls.” The 5th National Passive Solar Conference. Amherst,
MA, October 19-26, 1980.


                                             5
Form Approved
                        REPORT DOCUMENTATION PAGE                                                                                         OMB No. 0704-0188
The public reporting burden for this collection of information is estimated to average 1 hour per response, including the time for reviewing instructions, searching existing data sources,
gathering and maintaining the data needed, and completing and reviewing the collection of information. Send comments regarding this burden estimate or any other aspect of this
collection of information, including suggestions for reducing the burden, to Department of Defense, Executive Services and Communications Directorate (0704-0188). Respondents
should be aware that notwithstanding any other provision of law, no person shall be subject to any penalty for failing to comply with a collection of information if it does not display a
currently valid OMB control number.
PLEASE DO NOT RETURN YOUR FORM TO THE ABOVE ORGANIZATION.
1. REPORT DATE (DD-MM-YYYY)   2. REPORT TYPE                                                                                  3.   DATES COVERED (From - To)
     July 2004                                            Conference Paper
4.   TITLE AND SUBTITLE                                                                                          5a. CONTRACT NUMBER
     Trombe Walls in Low-Energy Buildings: Practical Experiences;                                                     DE-AC36-99-GO10337
     Preprint
                                                                                                                 5b. GRANT NUMBER


                                                                                                                 5c. PROGRAM ELEMENT NUMBER


6.   AUTHOR(S)                                                                                                   5d. PROJECT NUMBER
     P. Torcellini and S. Pless                                                                                       NREL/CP-550-36277
                                                                                                                 5e. TASK NUMBER
                                                                                                                      BEC3.1001
                                                                                                                 5f. WORK UNIT NUMBER


7.   PERFORMING ORGANIZATION NAME(S) AND ADDRESS(ES)                                                                          8.   PERFORMING ORGANIZATION
     National Renewable Energy Laboratory                                                                                          REPORT NUMBER
     1617 Cole Blvd.                                                                                                               NREL/CP-550-36277
     Golden, CO 80401-3393

9.   SPONSORING/MONITORING AGENCY NAME(S) AND ADDRESS(ES)                                                                     10. SPONSOR/MONITOR'S ACRONYM(S)
                                                                                                                                   NREL

                                                                                                                              11. SPONSORING/MONITORING
                                                                                                                                  AGENCY REPORT NUMBER


12. DISTRIBUTION AVAILABILITY STATEMENT
     National Technical Information Service
     U.S. Department of Commerce
     5285 Port Royal Road
     Springfield, VA 22161
13. SUPPLEMENTARY NOTES


14. ABSTRACT (Maximum 200 Words)
     Low-energy buildings today improve on passive solar design by incorporating a thermal storage and delivery system
     called a Trombe wall. Trombe walls were integrated into the envelope of a recently completed Visitor Center at Zion
     National Park and a site entrance building at the National Wind Technology Center located at the National
     Renewable Energy Laboratory. NREL helped to design these commercial buildings to minimize energy consumption,
     using Trombe walls as an integral part of their design.




15. SUBJECT TERMS
     Trombe wall; High-Performance Buildings; World Renewable Energy Congress; commercial buildings; high-
     performance design

16. SECURITY CLASSIFICATION OF:                                17. LIMITATION  18. NUMBER                     19a. NAME OF RESPONSIBLE PERSON
                                                                   OF ABSTRACT     OF PAGES
a. REPORT            b. ABSTRACT          c. THIS PAGE
Unclassified         Unclassified         Unclassified                  UL
                                                                                                              19b. TELEPONE NUMBER (Include area code)


                                                                                                                                                   Standard Form 298 (Rev. 8/98)
                                                                                                                                                   Prescribed by ANSI Std. Z39.18

Mais conteúdo relacionado

Mais procurados

Passive Heating and Cooling System
Passive Heating and Cooling SystemPassive Heating and Cooling System
Passive Heating and Cooling Systemwaseem khan
 
Green Buildings-passive heating techniques
Green Buildings-passive heating techniquesGreen Buildings-passive heating techniques
Green Buildings-passive heating techniquesctlachu
 
High performance building for cold climate
High performance building for cold climateHigh performance building for cold climate
High performance building for cold climateKrishna Jhawar
 
Building services (Passive Cooling Techniques) for Architectural students
Building services (Passive Cooling Techniques) for Architectural studentsBuilding services (Passive Cooling Techniques) for Architectural students
Building services (Passive Cooling Techniques) for Architectural studentsChad Minott
 
Climatology Cold Climate Zone
Climatology Cold Climate ZoneClimatology Cold Climate Zone
Climatology Cold Climate ZoneHarpreet Oberoi
 
Active and Passive Solar Energy System
Active and Passive Solar Energy SystemActive and Passive Solar Energy System
Active and Passive Solar Energy SystemHammad Javaid
 
Passive Building Design
Passive Building DesignPassive Building Design
Passive Building Designjaindevaditya
 
solar passive system for buildings
solar passive system  for buildingssolar passive system  for buildings
solar passive system for buildingsGarima Sharma
 
Lecture 5 passive design
Lecture 5   passive designLecture 5   passive design
Lecture 5 passive designBekark
 
Passive Solar Architecture
Passive Solar ArchitecturePassive Solar Architecture
Passive Solar Architecturearpita patel
 
Energy efficiency ENERGY EFFICIENT ARCHITECTURE
Energy efficiency ENERGY EFFICIENT ARCHITECTUREEnergy efficiency ENERGY EFFICIENT ARCHITECTURE
Energy efficiency ENERGY EFFICIENT ARCHITECTUREShabana Kotta
 
Passive Cooling (tropical architecture)
Passive Cooling (tropical architecture)Passive Cooling (tropical architecture)
Passive Cooling (tropical architecture)AnsherinaDelMundo
 
Passive Heating
Passive HeatingPassive Heating
Passive HeatingLei Ramos
 
Sohrabji Godrej Green Business Centre
Sohrabji Godrej Green Business CentreSohrabji Godrej Green Business Centre
Sohrabji Godrej Green Business CentreGaurav Jhunjhunwala
 
Building envelope
Building envelopeBuilding envelope
Building envelopeChandan K B
 
MATERIALS FOR PASSIVE SOLAR HEATING
MATERIALS FOR PASSIVE SOLAR HEATINGMATERIALS FOR PASSIVE SOLAR HEATING
MATERIALS FOR PASSIVE SOLAR HEATINGSWAPNIL NIGAM
 

Mais procurados (20)

Passive Heating and Cooling System
Passive Heating and Cooling SystemPassive Heating and Cooling System
Passive Heating and Cooling System
 
Green Buildings-passive heating techniques
Green Buildings-passive heating techniquesGreen Buildings-passive heating techniques
Green Buildings-passive heating techniques
 
High performance building for cold climate
High performance building for cold climateHigh performance building for cold climate
High performance building for cold climate
 
Building services (Passive Cooling Techniques) for Architectural students
Building services (Passive Cooling Techniques) for Architectural studentsBuilding services (Passive Cooling Techniques) for Architectural students
Building services (Passive Cooling Techniques) for Architectural students
 
Climatology Cold Climate Zone
Climatology Cold Climate ZoneClimatology Cold Climate Zone
Climatology Cold Climate Zone
 
Active and Passive Solar Energy System
Active and Passive Solar Energy SystemActive and Passive Solar Energy System
Active and Passive Solar Energy System
 
Passive Building Design
Passive Building DesignPassive Building Design
Passive Building Design
 
solar passive system for buildings
solar passive system  for buildingssolar passive system  for buildings
solar passive system for buildings
 
Lecture 5 passive design
Lecture 5   passive designLecture 5   passive design
Lecture 5 passive design
 
Composite climate
Composite climateComposite climate
Composite climate
 
Passive Solar Architecture
Passive Solar ArchitecturePassive Solar Architecture
Passive Solar Architecture
 
Energy efficiency ENERGY EFFICIENT ARCHITECTURE
Energy efficiency ENERGY EFFICIENT ARCHITECTUREEnergy efficiency ENERGY EFFICIENT ARCHITECTURE
Energy efficiency ENERGY EFFICIENT ARCHITECTURE
 
Passive Cooling (tropical architecture)
Passive Cooling (tropical architecture)Passive Cooling (tropical architecture)
Passive Cooling (tropical architecture)
 
Passive Heating
Passive HeatingPassive Heating
Passive Heating
 
Sohrabji Godrej Green Business Centre
Sohrabji Godrej Green Business CentreSohrabji Godrej Green Business Centre
Sohrabji Godrej Green Business Centre
 
Presentation
PresentationPresentation
Presentation
 
Passive cooling
Passive coolingPassive cooling
Passive cooling
 
Building envelope
Building envelopeBuilding envelope
Building envelope
 
Passive cooling-techniques
Passive cooling-techniquesPassive cooling-techniques
Passive cooling-techniques
 
MATERIALS FOR PASSIVE SOLAR HEATING
MATERIALS FOR PASSIVE SOLAR HEATINGMATERIALS FOR PASSIVE SOLAR HEATING
MATERIALS FOR PASSIVE SOLAR HEATING
 

Semelhante a Trombe walls in lTrombe Walls in Low-Energyow energy

Hi-Tech Building Systems
Hi-Tech Building SystemsHi-Tech Building Systems
Hi-Tech Building SystemsHi-Tech
 
Hi-Tech Building Systems
Hi-Tech Building SystemsHi-Tech Building Systems
Hi-Tech Building SystemsDori Schmitz
 
Building Envelope & WWR.pptx
Building Envelope & WWR.pptxBuilding Envelope & WWR.pptx
Building Envelope & WWR.pptxRajeev772867
 
Pgb unit iii b kameswara rao marthi
Pgb unit iii b   kameswara rao marthiPgb unit iii b   kameswara rao marthi
Pgb unit iii b kameswara rao marthiMallikarjunaRao52
 
Asian Architecture: Paper Presentation
Asian Architecture: Paper PresentationAsian Architecture: Paper Presentation
Asian Architecture: Paper PresentationEe Dong Chen
 
Asv 21st century tile roofs 2008-10-vandewater
Asv 21st century tile roofs 2008-10-vandewaterAsv 21st century tile roofs 2008-10-vandewater
Asv 21st century tile roofs 2008-10-vandewaterCool Roof Innovations
 
4ftbsys EEF catalogue
4ftbsys EEF catalogue4ftbsys EEF catalogue
4ftbsys EEF catalogueLeads Facade
 
Thermal Insulation System for energy efficient buildings
Thermal Insulation System for energy efficient buildingsThermal Insulation System for energy efficient buildings
Thermal Insulation System for energy efficient buildingsASHRAE Rajasthan Chapter
 
International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)IJERD Editor
 
bullit center zero energy building study.pdf
bullit center zero energy building study.pdfbullit center zero energy building study.pdf
bullit center zero energy building study.pdfShaDy Mohamed
 
A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...
A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...
A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...IRJET Journal
 
IRJET- Design and Analysis of Concrete Building without Insulation and with I...
IRJET- Design and Analysis of Concrete Building without Insulation and with I...IRJET- Design and Analysis of Concrete Building without Insulation and with I...
IRJET- Design and Analysis of Concrete Building without Insulation and with I...IRJET Journal
 
White Paper: Smart Materials in the Construction Sector
White Paper: Smart Materials in the Construction SectorWhite Paper: Smart Materials in the Construction Sector
White Paper: Smart Materials in the Construction Sectorn-tech Research
 
Energy efficiency by cool roofs
Energy efficiency by cool roofsEnergy efficiency by cool roofs
Energy efficiency by cool roofshardik6373
 
IRJET- 3D Polysterene Wire Panel Construction System
IRJET- 3D Polysterene Wire Panel Construction SystemIRJET- 3D Polysterene Wire Panel Construction System
IRJET- 3D Polysterene Wire Panel Construction SystemIRJET Journal
 
Kew Xun Long's Portfolio (2010-2014)
Kew Xun Long's Portfolio (2010-2014)Kew Xun Long's Portfolio (2010-2014)
Kew Xun Long's Portfolio (2010-2014)Kew Xun Long
 
2500 word essay on construction technology
2500 word essay on construction technology 2500 word essay on construction technology
2500 word essay on construction technology Jacob Wotton
 

Semelhante a Trombe walls in lTrombe Walls in Low-Energyow energy (20)

Hi-Tech Building Systems
Hi-Tech Building SystemsHi-Tech Building Systems
Hi-Tech Building Systems
 
Hi-Tech Building Systems
Hi-Tech Building SystemsHi-Tech Building Systems
Hi-Tech Building Systems
 
Building Envelope & WWR.pptx
Building Envelope & WWR.pptxBuilding Envelope & WWR.pptx
Building Envelope & WWR.pptx
 
Presentation on Concrete Thermal Mass Wall System
Presentation on Concrete Thermal Mass Wall SystemPresentation on Concrete Thermal Mass Wall System
Presentation on Concrete Thermal Mass Wall System
 
Pgb unit iii b kameswara rao marthi
Pgb unit iii b   kameswara rao marthiPgb unit iii b   kameswara rao marthi
Pgb unit iii b kameswara rao marthi
 
Asian Architecture: Paper Presentation
Asian Architecture: Paper PresentationAsian Architecture: Paper Presentation
Asian Architecture: Paper Presentation
 
Asv 21st century tile roofs 2008-10-vandewater
Asv 21st century tile roofs 2008-10-vandewaterAsv 21st century tile roofs 2008-10-vandewater
Asv 21st century tile roofs 2008-10-vandewater
 
4ftbsys EEF catalogue
4ftbsys EEF catalogue4ftbsys EEF catalogue
4ftbsys EEF catalogue
 
Thermal Insulation System for energy efficient buildings
Thermal Insulation System for energy efficient buildingsThermal Insulation System for energy efficient buildings
Thermal Insulation System for energy efficient buildings
 
International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)International Journal of Engineering Research and Development (IJERD)
International Journal of Engineering Research and Development (IJERD)
 
bullit center zero energy building study.pdf
bullit center zero energy building study.pdfbullit center zero energy building study.pdf
bullit center zero energy building study.pdf
 
SUSTAINABILITY IN BUILDING DESIGN
SUSTAINABILITY IN BUILDING DESIGN SUSTAINABILITY IN BUILDING DESIGN
SUSTAINABILITY IN BUILDING DESIGN
 
De32662675
De32662675De32662675
De32662675
 
A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...
A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...
A REVIEW ON ENERGY EFFICIENT BUILDINGS - USING PHASE CHANGE MATERIALS, GREEN ...
 
IRJET- Design and Analysis of Concrete Building without Insulation and with I...
IRJET- Design and Analysis of Concrete Building without Insulation and with I...IRJET- Design and Analysis of Concrete Building without Insulation and with I...
IRJET- Design and Analysis of Concrete Building without Insulation and with I...
 
White Paper: Smart Materials in the Construction Sector
White Paper: Smart Materials in the Construction SectorWhite Paper: Smart Materials in the Construction Sector
White Paper: Smart Materials in the Construction Sector
 
Energy efficiency by cool roofs
Energy efficiency by cool roofsEnergy efficiency by cool roofs
Energy efficiency by cool roofs
 
IRJET- 3D Polysterene Wire Panel Construction System
IRJET- 3D Polysterene Wire Panel Construction SystemIRJET- 3D Polysterene Wire Panel Construction System
IRJET- 3D Polysterene Wire Panel Construction System
 
Kew Xun Long's Portfolio (2010-2014)
Kew Xun Long's Portfolio (2010-2014)Kew Xun Long's Portfolio (2010-2014)
Kew Xun Long's Portfolio (2010-2014)
 
2500 word essay on construction technology
2500 word essay on construction technology 2500 word essay on construction technology
2500 word essay on construction technology
 

Último

Single or Multiple melodic lines structure
Single or Multiple melodic lines structureSingle or Multiple melodic lines structure
Single or Multiple melodic lines structuredhanjurrannsibayan2
 
Key note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfKey note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfAdmir Softic
 
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptxBasic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptxDenish Jangid
 
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...Nguyen Thanh Tu Collection
 
ICT Role in 21st Century Education & its Challenges.pptx
ICT Role in 21st Century Education & its Challenges.pptxICT Role in 21st Century Education & its Challenges.pptx
ICT Role in 21st Century Education & its Challenges.pptxAreebaZafar22
 
SOC 101 Demonstration of Learning Presentation
SOC 101 Demonstration of Learning PresentationSOC 101 Demonstration of Learning Presentation
SOC 101 Demonstration of Learning Presentationcamerronhm
 
Towards a code of practice for AI in AT.pptx
Towards a code of practice for AI in AT.pptxTowards a code of practice for AI in AT.pptx
Towards a code of practice for AI in AT.pptxJisc
 
Application orientated numerical on hev.ppt
Application orientated numerical on hev.pptApplication orientated numerical on hev.ppt
Application orientated numerical on hev.pptRamjanShidvankar
 
Salient Features of India constitution especially power and functions
Salient Features of India constitution especially power and functionsSalient Features of India constitution especially power and functions
Salient Features of India constitution especially power and functionsKarakKing
 
Jamworks pilot and AI at Jisc (20/03/2024)
Jamworks pilot and AI at Jisc (20/03/2024)Jamworks pilot and AI at Jisc (20/03/2024)
Jamworks pilot and AI at Jisc (20/03/2024)Jisc
 
This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.christianmathematics
 
COMMUNICATING NEGATIVE NEWS - APPROACHES .pptx
COMMUNICATING NEGATIVE NEWS - APPROACHES .pptxCOMMUNICATING NEGATIVE NEWS - APPROACHES .pptx
COMMUNICATING NEGATIVE NEWS - APPROACHES .pptxannathomasp01
 
FSB Advising Checklist - Orientation 2024
FSB Advising Checklist - Orientation 2024FSB Advising Checklist - Orientation 2024
FSB Advising Checklist - Orientation 2024Elizabeth Walsh
 
Python Notes for mca i year students osmania university.docx
Python Notes for mca i year students osmania university.docxPython Notes for mca i year students osmania university.docx
Python Notes for mca i year students osmania university.docxRamakrishna Reddy Bijjam
 
Graduate Outcomes Presentation Slides - English
Graduate Outcomes Presentation Slides - EnglishGraduate Outcomes Presentation Slides - English
Graduate Outcomes Presentation Slides - Englishneillewis46
 
Plant propagation: Sexual and Asexual propapagation.pptx
Plant propagation: Sexual and Asexual propapagation.pptxPlant propagation: Sexual and Asexual propapagation.pptx
Plant propagation: Sexual and Asexual propapagation.pptxUmeshTimilsina1
 
How to Manage Global Discount in Odoo 17 POS
How to Manage Global Discount in Odoo 17 POSHow to Manage Global Discount in Odoo 17 POS
How to Manage Global Discount in Odoo 17 POSCeline George
 
Understanding Accommodations and Modifications
Understanding  Accommodations and ModificationsUnderstanding  Accommodations and Modifications
Understanding Accommodations and ModificationsMJDuyan
 
Fostering Friendships - Enhancing Social Bonds in the Classroom
Fostering Friendships - Enhancing Social Bonds  in the ClassroomFostering Friendships - Enhancing Social Bonds  in the Classroom
Fostering Friendships - Enhancing Social Bonds in the ClassroomPooky Knightsmith
 

Último (20)

Single or Multiple melodic lines structure
Single or Multiple melodic lines structureSingle or Multiple melodic lines structure
Single or Multiple melodic lines structure
 
Mehran University Newsletter Vol-X, Issue-I, 2024
Mehran University Newsletter Vol-X, Issue-I, 2024Mehran University Newsletter Vol-X, Issue-I, 2024
Mehran University Newsletter Vol-X, Issue-I, 2024
 
Key note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdfKey note speaker Neum_Admir Softic_ENG.pdf
Key note speaker Neum_Admir Softic_ENG.pdf
 
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptxBasic Civil Engineering first year Notes- Chapter 4 Building.pptx
Basic Civil Engineering first year Notes- Chapter 4 Building.pptx
 
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
TỔNG ÔN TẬP THI VÀO LỚP 10 MÔN TIẾNG ANH NĂM HỌC 2023 - 2024 CÓ ĐÁP ÁN (NGỮ Â...
 
ICT Role in 21st Century Education & its Challenges.pptx
ICT Role in 21st Century Education & its Challenges.pptxICT Role in 21st Century Education & its Challenges.pptx
ICT Role in 21st Century Education & its Challenges.pptx
 
SOC 101 Demonstration of Learning Presentation
SOC 101 Demonstration of Learning PresentationSOC 101 Demonstration of Learning Presentation
SOC 101 Demonstration of Learning Presentation
 
Towards a code of practice for AI in AT.pptx
Towards a code of practice for AI in AT.pptxTowards a code of practice for AI in AT.pptx
Towards a code of practice for AI in AT.pptx
 
Application orientated numerical on hev.ppt
Application orientated numerical on hev.pptApplication orientated numerical on hev.ppt
Application orientated numerical on hev.ppt
 
Salient Features of India constitution especially power and functions
Salient Features of India constitution especially power and functionsSalient Features of India constitution especially power and functions
Salient Features of India constitution especially power and functions
 
Jamworks pilot and AI at Jisc (20/03/2024)
Jamworks pilot and AI at Jisc (20/03/2024)Jamworks pilot and AI at Jisc (20/03/2024)
Jamworks pilot and AI at Jisc (20/03/2024)
 
This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.This PowerPoint helps students to consider the concept of infinity.
This PowerPoint helps students to consider the concept of infinity.
 
COMMUNICATING NEGATIVE NEWS - APPROACHES .pptx
COMMUNICATING NEGATIVE NEWS - APPROACHES .pptxCOMMUNICATING NEGATIVE NEWS - APPROACHES .pptx
COMMUNICATING NEGATIVE NEWS - APPROACHES .pptx
 
FSB Advising Checklist - Orientation 2024
FSB Advising Checklist - Orientation 2024FSB Advising Checklist - Orientation 2024
FSB Advising Checklist - Orientation 2024
 
Python Notes for mca i year students osmania university.docx
Python Notes for mca i year students osmania university.docxPython Notes for mca i year students osmania university.docx
Python Notes for mca i year students osmania university.docx
 
Graduate Outcomes Presentation Slides - English
Graduate Outcomes Presentation Slides - EnglishGraduate Outcomes Presentation Slides - English
Graduate Outcomes Presentation Slides - English
 
Plant propagation: Sexual and Asexual propapagation.pptx
Plant propagation: Sexual and Asexual propapagation.pptxPlant propagation: Sexual and Asexual propapagation.pptx
Plant propagation: Sexual and Asexual propapagation.pptx
 
How to Manage Global Discount in Odoo 17 POS
How to Manage Global Discount in Odoo 17 POSHow to Manage Global Discount in Odoo 17 POS
How to Manage Global Discount in Odoo 17 POS
 
Understanding Accommodations and Modifications
Understanding  Accommodations and ModificationsUnderstanding  Accommodations and Modifications
Understanding Accommodations and Modifications
 
Fostering Friendships - Enhancing Social Bonds in the Classroom
Fostering Friendships - Enhancing Social Bonds  in the ClassroomFostering Friendships - Enhancing Social Bonds  in the Classroom
Fostering Friendships - Enhancing Social Bonds in the Classroom
 

Trombe walls in lTrombe Walls in Low-Energyow energy

  • 1. July 2004 • NREL/CP-550-36277 Trombe Walls in Low-Energy Buildings: Practical Experiences Preprint P. Torcellini and S. Pless To be presented at the World Renewable Energy Congress VIII and Expo Denver, Colorado August 29–September 3, 2004 National Renewable Energy Laboratory 1617 Cole Boulevard, Golden, Colorado 80401-3393 303-275-3000 • www.nrel.gov Operated for the U.S. Department of Energy Office of Energy Efficiency and Renewable Energy by Midwest Research Institute • Battelle Contract No. DE-AC36-99-GO10337
  • 2. NOTICE The submitted manuscript has been offered by an employee of the Midwest Research Institute (MRI), a contractor of the US Government under Contract No. DE-AC36-99GO10337. Accordingly, the US Government and MRI retain a nonexclusive royalty-free license to publish or reproduce the published form of this contribution, or allow others to do so, for US Government purposes. This report was prepared as an account of work sponsored by an agency of the United States government. Neither the United States government nor any agency thereof, nor any of their employees, makes any warranty, express or implied, or assumes any legal liability or responsibility for the accuracy, completeness, or usefulness of any information, apparatus, product, or process disclosed, or represents that its use would not infringe privately owned rights. Reference herein to any specific commercial product, process, or service by trade name, trademark, manufacturer, or otherwise does not necessarily constitute or imply its endorsement, recommendation, or favoring by the United States government or any agency thereof. The views and opinions of authors expressed herein do not necessarily state or reflect those of the United States government or any agency thereof. Available electronically at http://www.osti.gov/bridge Available for a processing fee to U.S. Department of Energy and its contractors, in paper, from: U.S. Department of Energy Office of Scientific and Technical Information P.O. Box 62 Oak Ridge, TN 37831-0062 phone: 865.576.8401 fax: 865.576.5728 email: mailto:reports@adonis.osti.gov Available for sale to the public, in paper, from: U.S. Department of Commerce National Technical Information Service 5285 Port Royal Road Springfield, VA 22161 phone: 800.553.6847 fax: 703.605.6900 email: orders@ntis.fedworld.gov online ordering: http://www.ntis.gov/ordering.htm Printed on paper containing at least 50% wastepaper, including 20% postconsumer waste
  • 3. Trombe Walls in Low-energy Buildings: Practical Experiences Paul Torcellini and Shanti Pless National Renewable Energy Laboratory Introduction Since ancient times, people have used thick walls of adobe or stone to trap the sun's heat during the day and release it slowly and evenly at night to heat their buildings. Today's low-energy buildings often improve on this ancient technique by incorporating a thermal storage and delivery system called a Trombe wall. Named after French inventor Felix Trombe in the late 1950s, the Trombe wall continues to serve as an effective feature of passive solar design. Trombe walls have been integrated into the envelope of a recently completed Visitor Center at Zion National Park and a site entrance building (SEB) at the National Renewable Energy Laboratory’s (NREL’s) National Wind Technology Center. The High Performance Building Initiative (HPBi) at NREL helped to design these commercial buildings to minimize energy consumption, using Trombe walls as an integral part of their design. Trombe Wall Design and Construction A typical unvented Trombe wall consists of a 4- to 16-in (10- to 41-cm)-thick, south- facing masonry wall with a dark, heat-absorbing material on the exterior surface and faced with a single or double layer of glass. The glass is placed from ¾ to 2 in. (2 to 5 cm) from the masonry wall to create a small airspace. Heat from sunlight passing through the glass is absorbed by the dark surface, stored in the wall, and conducted slowly inward through the masonry. High transmission glass maximizes solar gains to the masonry wall. As an architectural detail, patterned glass can limit the exterior visibility of the dark concrete wall without sacrificing transmissivity. Applying a selective surface to a Trombe wall improves its performance by reducing the amount of infrared energy radiated back through the glass. The selective surface consists of a sheet of metal foil glued to the outside surface of the wall. It absorbs almost all the radiation in the visible portion of the solar spectrum and emits very little in the infrared range. High absorbency turns the light into heat at the wall's surface, and low emittance prevents the heat from radiating back towards the glass. For an 8-in-thick (20-cm) Trombe wall, heat will take about 8 to 10 hours to reach the interior of the building. This means that rooms receive slow, even heating for many hours after the sun sets, greatly reducing the need for conventional heating. Rooms heated by a Trombe wall often feel more comfortable than those heated by forced air because of the large warm surface providing radiant comfort. Architects can use Trombe walls in conjunction with windows, eaves, and other building design elements to balance solar heat delivery. Strategically placed windows allow the sun's heat and light to enter a building during the day to help heat the building with direct solar gains. At the same time, the Trombe wall absorbs and stores heat for evening use. Properly sized roof overhangs shade the Trombe wall during the summer when the sun is 1
  • 4. high in the sky. Shading the Trombe wall can prevent the wall from getting hot during the time of the year when the heat is not needed. These Trombe wall design concepts were applied to the low-energy design of the Visitor Center at Zion National Park in Utah and to NREL’s Wind Site SEB in Colorado. Figure 1 shows the Trombe wall locations in the NREL SEB (a), and the Zion Visitor Center (b). Trombe walls Figure 1. a) NREL SEB, b) Zion Visitor Center The National Park Service applied a whole-building design process to create a Visitor Center at Zion National Park that performs more than 70% better than a comparable code-compliant building at no additional construction cost (Torcellini 2004). Trombe walls were one of the many strategies included in that process and design. The Visitor Center Trombe wall design details are shown in the cross section in Figure 2. The 6-ft-high (1.8-m) Trombe wall (740-ft2 total area (68.7-m2) is located on the entire length of south-facing walls of the Visitor Center. The wall is 44% of the total south facing wall area. The Trombe wall is 8-in (20-cm) grout-filled concrete masonry units (CMU) with an R-value of 2.5 hr·ft2·°F/Btu (0.4 K·m2/W). The other walls are 6-in (15-cm) framed walls with an R-value of R-16 hr·ft2·°F/Btu (2.8 K·m2/W). The Trombe wall has a single piece of high transmittance patterned glass installed on a thermally broken storefront system. The performance of Trombe walls is diminished if the wall interior is not open to the interior zones. Based on previous experiences with Trombe walls (Balcomb 1998), the heat delivered by a Trombe wall in a residence was reduced by over 40% because kitchen cabinets were placed on the interior of the wall. The wall design at Zion includes cast-in- place concrete projections attached to the interior of the wall. These projections were included to ensure bookshelves were not placed against the Trombe wall. The interior surface of the Zion Trombe wall was selected to maximize the heat transfer to the space. Some interior surfacing materials, such as drywall, can reduce the heat delivered by Trombe walls due to nonconductive air gaps in between the concrete wall and the interior surface (Balcomb 1998). A shotcrete wall finish was specified to provide a more continuous conductivity throughout the wall. During the construction process, the filling of the CMU wall was monitored to ensure the concrete block cores were completely filled, which provides a consistent conductivity through the wall. The placement of the footing insulation was also verified during the construction process to ensure proper installation. The location of this insulation is critical, as Trombe wall performance can be diminished due to three-dimensional heat 2
  • 5. transfer to the ground. By thermally decoupling the footings from the ground with insulation, unnecessary heat loss is avoided and more heat from the Trombe wall is supplied to the building. Overhang Engineered for Summer Shading Daylighting and View Shotcrete Windows Wall Finish (Inside) Selective Surface Cast-in-Place 2” Air Concrete Wall Gap Projections 8” Grout Filled 5/32” CMU Wall Glazing 1-1/2” Rigid Footing Insulation Figure 2. Cross-section details of Zion Trombe wall NREL’s Wind Site, located approximately twelve miles north of Golden, Colorado, constructed a small building at the site entrance. NREL staff designed an energy- efficient SEB that would eventually be powered completely by its onboard photovoltaic (PV) array and two wind turbines. Although small, the building is representative of many guard facilities, remote restrooms, and outposts. A Trombe wall was an integral part of the heating system. This Trombe wall has a single piece of high transmittance patterned glass installed on a thermally broken storefront system in front of a 4-in-thick (10-cm) concrete wall with a selective surface. The other walls are 4-in-solid (10-cm) tilt-up concrete walls with an EIFS (exterior insulating finishing system). The 5-in (13-cm) exterior foam has an R-value of 25 hr·ft2·°F/Btu (4.4 K·m2/W). The total area of the Trombe wall is 44 ft2 (4.1 m2), or about 34% of the total south-facing wall. The roof overhang shades the Trombe wall for most of the summer. The interior surface is painted concrete. Trombe Wall Energy Performance The energy performance of the Zion Visitor Center was monitored and analyzed over a two-year period. The analysis consisted of measured electrical end uses, Trombe wall temperature profiles, and thermographic pictures to determine the performance of this Trombe wall (Torcellini, 2004). Similar measurements were taken at the SEB over a one-year period. Figure 3 shows the thermal distribution of the Zion Trombe wall at 8:30 p.m. on December 16, 2000. The interior surface temperature is generally homogeneous, ranging from 90-96ºF (32-36ºC). The wall temperature typically peaks between 8-9 p.m. The reduced wall temperature at the far right section of Trombe wall is due to shading. The 3
  • 6. building shades a portion of the Trombe wall in the afternoon, resulting in reduced interior temperatures. 96.0°F Window >91.8ºF >33.2º Window 90 86.0ºF 30.0ºC Shading 80 Affects 77.0ºF 25.0ºC Trombe Wall Trombe Wall 70 68.0ºF 20.0ºC 60 59.0ºF 15.0ºC <57.7ºF <14.3ºC a) 58.0°F b) Figure 3. Infrared pictures of a) Zion Trombe wall December 16, 8:30 p.m. and b) NREL SEB Trombe Wall January 21, 8:00 p.m. The temperature gradient in the wall was measured during the 2001-2002 heating season. With internal temperature measurements, the Trombe wall energy supplied to the building was calculated based on published heat flux calculation methods (Balcomb 1980). The Visitor Center Trombe wall daily performance during the 2001-2002 heating season is shown in Figure 4. The electric radiant heating system used 22,680 kWh (81.6 GJ) over the year, with the Trombe wall contributing 20% of the total heating to the building. The Trombe wall imposed a heating load on the building for only two of the 151 days of the 2001-2002 heating season. For the other 149 heating days, the wall was a net positive. The peak heat flux through the wall was 11.2 W/ft2 (89 W/m2), or 8.3 kW over the entire Trombe wall area. The average efficiency of the wall (defined as the heat delivered to the building divided by the total solar radiation incident on the exterior of the wall) was 13%. 400 Daily Heating Energy Supplied to Visitor Center (kWh/day) 2001-2002 Heating Season: -5,470 kWh added by Trombe Wall Heat Added by the Trombe Wall -22,680 kWh added by Heating System -20% of heating from Trombe Wall Heating System Use 350 -8.3 kW Peak heating from Trombe Wall -17.2 kW Peak heating from Heating 300 System 250 200 150 100 50 0 /0 01 /1 01 /2 01 /2 01 /0 01 /1 01 /2 01 /2 01 /0 01 /1 02 /1 02 /2 02 /3 02 /0 02 /1 02 /2 02 /2 02 /0 02 /1 02 /2 02 /2 02 02 11 /20 11 /20 11 /20 11 /20 12 /20 12 /20 12 20 12 /20 01 20 01 /20 01 20 01 /20 01 /20 02 /20 02 /20 02 20 02 /20 03 20 03 /20 03 20 03 /20 20 3/ 7/ 0/ 4/ 8/ 4/ 8/ 1 8 5 2 9 6 0 3 7 4 1 7 1 7 1 /0 11 Figure 4. Zion Visitor Center Trombe wall and heating system performance, 2001- 2002 heating season 4
  • 7. The interior surface temperature of the SEB Trombe wall typically peaks at 120-130ºF (49-54ºC) at 3:30-4:00 p.m. during the heating season. The interior temperatures of the SEB wall are generally higher, but earlier in the day than the Zion wall. This difference is due to the 4-in (10-cm) SEB wall that releases the heat quicker than the 8-in (20-cm) Zion wall. During good solar days in the heating season, the Trombe wall typically provides all of the necessary heating throughout the afternoon and evening. A potential design issue to consider in any passive solar building is overheating in the summer and swing seasons. The overhangs in both the Zion and NREL SEB were designed to shade the Trombe walls during the cooling season. Even with the Trombe walls shaded during the summer, the walls impose an additional cooling load on the buildings. This is because early morning and late afternoon radiation is not shaded, and diffuse and reflected radiation is not negligible. Additionally, the insulation values of these walls are low. At Zion, any additional cooling loads are not a significant issue, as the passive direct evaporative cooling system provides an abundance of cheap cooling. The additional cooling loads at the SEB are an issue, as a heat pump has to provide extra cooling to account for the hot Trombe wall. On average in July, the SEB Trombe wall reaches 100ºF (38ºC) in the afternoon. When the Trombe wall was completely covered for four days in August 2003, the interior surface temperature was never above 87ºF (31ºC). A summer shading blind has been recommended for the SEB Trombe wall to reduce the cooling impact of this wall. Conclusions Trombe walls have been integrated into the envelope of a recently completed Visitor Center at Zion National Park and a SEB at NREL’s Wind site. A Trombe wall can enable a building envelope to go from a net-loss feature to a net-gain feature. The Trombe wall provides passive solar heating without introducing light and glare into theses commercial spaces. Overhangs are necessary to minimize the summer gains; however, additional means would be helpful to minimize summer cooling impacts. In both walls, edge effects were minimized with appropriate ground insulation. The Trombe walls in both the Visitor Center and the SEB provide significant heating to the buildings. In the Visitor Center, 20% of the annual heating was supplied by the Trombe wall, and the SEB afternoon and evening heating loads are typically met by the Trombe wall. The annual net effect of the wall has to be considered when designing a Trombe wall, as the additional cooling loads can affect the cooling system performance. References Balcomb, J.D., Barker, G., Hancock, C.E. (Nov. 98). “An Exemplary Building Case Study of the Grand Canyon South Rim Residence.” NREL/TP-550-24767, Golden, CO: National Renewable Energy Laboratory. Torcellini, P.; Long, N.; Pless, S.; Judkoff, R. (2004). “Evaluation of the Low-Energy Design and Energy Performance of the Zion National Park Visitor Center.” NREL Report No. TP-550-34607. Golden, CO: National Renewable Energy Laboratory. Balcomb, D.; Hedstrom, J.C. (1980). “Determining Heat Fluxes from Temperature Measurements in Massive Walls.” The 5th National Passive Solar Conference. Amherst, MA, October 19-26, 1980. 5
  • 8. Form Approved REPORT DOCUMENTATION PAGE OMB No. 0704-0188 The public reporting burden for this collection of information is estimated to average 1 hour per response, including the time for reviewing instructions, searching existing data sources, gathering and maintaining the data needed, and completing and reviewing the collection of information. Send comments regarding this burden estimate or any other aspect of this collection of information, including suggestions for reducing the burden, to Department of Defense, Executive Services and Communications Directorate (0704-0188). Respondents should be aware that notwithstanding any other provision of law, no person shall be subject to any penalty for failing to comply with a collection of information if it does not display a currently valid OMB control number. PLEASE DO NOT RETURN YOUR FORM TO THE ABOVE ORGANIZATION. 1. REPORT DATE (DD-MM-YYYY) 2. REPORT TYPE 3. DATES COVERED (From - To) July 2004 Conference Paper 4. TITLE AND SUBTITLE 5a. CONTRACT NUMBER Trombe Walls in Low-Energy Buildings: Practical Experiences; DE-AC36-99-GO10337 Preprint 5b. GRANT NUMBER 5c. PROGRAM ELEMENT NUMBER 6. AUTHOR(S) 5d. PROJECT NUMBER P. Torcellini and S. Pless NREL/CP-550-36277 5e. TASK NUMBER BEC3.1001 5f. WORK UNIT NUMBER 7. PERFORMING ORGANIZATION NAME(S) AND ADDRESS(ES) 8. PERFORMING ORGANIZATION National Renewable Energy Laboratory REPORT NUMBER 1617 Cole Blvd. NREL/CP-550-36277 Golden, CO 80401-3393 9. SPONSORING/MONITORING AGENCY NAME(S) AND ADDRESS(ES) 10. SPONSOR/MONITOR'S ACRONYM(S) NREL 11. SPONSORING/MONITORING AGENCY REPORT NUMBER 12. DISTRIBUTION AVAILABILITY STATEMENT National Technical Information Service U.S. Department of Commerce 5285 Port Royal Road Springfield, VA 22161 13. SUPPLEMENTARY NOTES 14. ABSTRACT (Maximum 200 Words) Low-energy buildings today improve on passive solar design by incorporating a thermal storage and delivery system called a Trombe wall. Trombe walls were integrated into the envelope of a recently completed Visitor Center at Zion National Park and a site entrance building at the National Wind Technology Center located at the National Renewable Energy Laboratory. NREL helped to design these commercial buildings to minimize energy consumption, using Trombe walls as an integral part of their design. 15. SUBJECT TERMS Trombe wall; High-Performance Buildings; World Renewable Energy Congress; commercial buildings; high- performance design 16. SECURITY CLASSIFICATION OF: 17. LIMITATION 18. NUMBER 19a. NAME OF RESPONSIBLE PERSON OF ABSTRACT OF PAGES a. REPORT b. ABSTRACT c. THIS PAGE Unclassified Unclassified Unclassified UL 19b. TELEPONE NUMBER (Include area code) Standard Form 298 (Rev. 8/98) Prescribed by ANSI Std. Z39.18