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http://www.iaeme.com/IJCIET/index.asp 282 editor@iaeme.com
International Journal of Civil Engineering and Technology (IJCIET)
Volume 8, Issue 2, February 2017, pp. 282–288 Article ID: IJCIET_08_02_030
Available online at http://www.iaeme.com/IJCIET/issues.asp?JType=IJCIET&VType=8&IType=2
ISSN Print: 0976-6308 and ISSN Online: 0976-6316
© IAEME Publication Scopus Indexed
EXPERIMENTAL STUDY ON FLEXURAL
BEHAVIOURS OF ECC AND CONCRETE COMPOSITE
REINFORCED BEAMS
M. Velmurugan
Assistant Professor, Department of Civil Engineering,
SMK Fomra Institute of Technology Kelambakkam, Chennai- 603103
S. Kesavraman
Assistant Professor, Department of Civil Engineering,
SMK Fomra Institute of Technology Kelambakkam, Chennai- 603103
A. Radhakrishnan
Assistant Professor, Department of Civil Engineering,
SMK Fomra Institute of Technology Kelambakkam, Chennai- 603103
ABSTRAT
Engineered cementations composite (ECC) is a class of high-performance cementations
composites with strain-hardening behaviour and excellent crack control. Substitution of concrete
with ECC can avoid the cracking and durability problems associated with brittleness of concrete.
Extensive inelastic deformation is achieved in ECC through Recron 3’s fibre. ECC can be used in
high rise buildings due to their appearance, high bearing capacity, ductility, Fast construction and
cost effective. The aim of the paper is to study the flexural behaviour of ECC and concrete
composite reinforced beams. Size of the beam is 1200mm x100mmx150mm. The percentage of
Recron 3’s fibre replaced is 0.5 %, 1.5%, 2.5% by weight of cement. Finally conventional beam is
compared with ECC beam and also compare ECC at top and bottom of composite beams.
Key words: Engineered cementations composite, Crack control, Durability, Recron 3s fibre, flexural
Cite this Article: M.Velmurugan, S.Kesavraman and A.Radhakrishnan, Experimental Study On
Flexural Behaviours of ECC and Concrete Composite Reinforced Beams. International Journal of
Civil Engineering and Technology, 8(2), 2017, pp. 282–288.
http://www.iaeme.com/IJCIET/issues.asp?JType=IJCIET&VType=8&IType=2
1. INTRODUCTION
Engineered Cementations Composites (ECC, also known as “ECC Concrete”), developed in the last decade,
may contribute to safer, more durable, and sustainable concrete infra-structure that is cost-effective and
constructed with conventional construction equipment. ECC is ductile in nature. Under flexure, normal
concrete fractures in a brittle manner. ECC has been prepared in ready-mix plants and transported to
construction sites using conventional ready-mix trucks. The mix can be placed with-out the need for
M.Velmurugan, S.Kesavraman and A.Radhakrishnan
http://www.iaeme.com/IJCIET/index.asp 283 editor@iaeme.com
vibration due to its self-consolidating characteristics. The moderately low fiber content has also made
shotcreting ECC viable.
Engineered Cementations Composites (ECC) is a unique representative of the new generation of high
performance fiber reinforced cementations composites, featuring high ductility and medium fiber content.
The microstructure to composite performance linkage can be further extended to the structural performance
level and integrate the material design into performance based design concept for structures.
Figure 1 ECC slab under two point loads
2. PROPERTIES OF MATERIALS
2.1. GENERAL
Materials used in this study are Cement, Fine aggregate, Coarse aggregate, Flyash, Recron3’s fibre, Super
Plasticizer, steel and their characteristics were obtained by testing of materials.
2.2. MATERIALS USED
Water: Water fit for drinking is generally considered fit for Making concrete
Cement : The cement used in all mixture was commercially available Ordinary Portland Cement ( OPC )
of 53 grade confirmed to IS: 8112-1989. The initial and final setting times were found as 80 minutes and
453 minutes respectively.
Fine Aggregate: Fine aggregate / natural sand is an accumulation of grains of mineral matter derived from
the disintegration of rocks. Usually commercial sand is obtained from riverbeds or from sand dunes
originally formed by the action of winds. The fine aggregate was passing through 4.75 mm sieve and had
a specific gravity of 2.68. The grading zone of fine aggregate was zone III as per Indian Standard
specification.
Coarse Aggregate : Coarse aggregate used in this study consist of crushed stone of size 20mm and below.
Laboratory tests were conducted on coarse aggregate to determine the different physical properties as per
IS: 383-1970.
Fly ash: Fly ash is finely divided residue resulting from the combustion of powedered coal and transported
by the flue gases and collected by electrostatic precipitator. It can be manufactured by using the low calcium
(class-F) fly ash obtained from Tuticorin Thermal Power Plant.
Recron3’s fibre: Recron3’s fibre is mainly used for to improving the quality of plaster and concrete.
Recron 3s fibres can be used in concrete elements such as RC and PC lintel, beam, column, flooring and
wall plastering.
Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams
http://www.iaeme.com/IJCIET/index.asp 284 editor@iaeme.com
Cut length 6 mm or 12 mm
Shape of fiber special for improved holding of cement aggregates
Tensile strength 4000-6000 kg/cm²
Melting point > 250OC
Dosage rate Concrete Use CT 2024 (12mm) at 909 g/m3g/cement bag 1:4
Cement/sand ratio Optimize as per application
Figure 2 Recron 3’s fiber
Super Plasticizer: (CONPLAST SP430)
High strength concrete production is greatly facilitated by the incorporation of a water reducing agent as
admixture. This enables easy handling of concretes with low water-cement ratios without loss of adequate
workability. The quantities of super plasticizer used were as per the specifications given by manufacturer.
The properties of Conplast SP 430 (complies with IS: 9103-1999) as reported by the suppliers are given in
Table.
Sl. No Description Property
1 Specific Gravity 1.220 to 1.225 at 30ºC
2 Setting times At higher dosage levels without water reduction
retards setting times 1-2 hours approximately.
3 Air entrainment Approximately1% additional air is entrain.
4 Compatibility Can be used with all types of Portland and Slag
cements except High alumina cement.
5 Workability Can be used to produce flowing concrete that
requires no compaction. Some minor
adjustments may be required to produce high
workable mix without segregation.
6 Durability Reduction in W/C ratio enables increase in
density and impermeability thus enhancing
durability of concrete.
7 Compressive strength Early strength is increased upto 20% if water
reduction is taken advantage of. Generally, there
is improvement in strength upto 20% depending
upon W/C ratio and other mix parameters.
3. EXPERIMENTAL METHODS:
3.1. General
The experimental program consisted of casting, curing and testing the cube of size 150x150x150 mm.
M.Velmurugan, S.Kesavraman and A.Radhakrishnan
http://www.iaeme.com/IJCIET/index.asp 285 editor@iaeme.com
3.2. Mix Proportions
For ECC: (M45)
Cement sand Fly ash Water
1 0.8 1.2 0.51
For Conventional Concrete: (M45)
Cement Fine Aggregate Coarse
Aggregate
Water
1 1.64 1.85 0.37
3.3. Casting and Curing
Steel mould was used for casting the cubes. Before casting, machine oil was applied on the inner surface
of the mould. Concrete was mixed using a tilting type laboratory mixer and was poured into the moulds in
layers. Compaction of concrete was done using a needle vibrator. After 24 hours from casting, all the cubes
were curing into the water for 7 & 28 days compressive test.
3.4. Testing
All the cubes were tested in Compression Testing Machine (CTM).For loading the Cubes 2000 KN capacity
hydraulic compression testing machine was used.
Figure 3 Specimen placed in CTM
4. SUMMARY OF SPECIMEN INFORMATION
S.no Concrete type Grade Curing days
1 ECC M45 7 28
Conventional M45 7 28
2 ECC at top M45 7 28
ECC at Bottom M45 7 28
Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams
http://www.iaeme.com/IJCIET/index.asp 286 editor@iaeme.com
5. EXPERIMENTAL RESULTS AND DISCUSSIONS
X axis = days; Y axis = Comp. strength (N/mm²)
Graph 1. Comp. strength result at 7days. (Cube)
X axis = days; Y axis = Comp. strength (N/mm²)
Graph 2. Comp. strength result at 28days. (Cube)
From Graph 1. ECC is compared with conventional concrete of 7 days compressive strength results. It
is the composite concrete is (3 to 5%) better than conventional and Ecc concrete. From Graph 2.compared
ECC and Conventional concrete of 28 days compressive strength results. ECC and Conventional concrete
results values arrived through best mix proportions. But doesn’t get expected results.
6. BEAM DETAILS
Figure 4 Comparison between Conventional and ECC concrete
0
5
10
15
20
25
30
35
0 7
ECC
Conventiona
l
ECC at Top
ECC at
Bottom
0
10
20
30
40
50
60
0 7 28
ECC
Conventiona
l
ECC at Top
ECC at
Bottom
M.Velmurugan, S.Kesavraman and A.Radhakrishnan
http://www.iaeme.com/IJCIET/index.asp 287 editor@iaeme.com
Figure 5 Comparison between ECC at Bottom and Top
6.1. TEST SETUP
Figure 6 Two point loading in beam
7. CONCLUSION
ECC with conventional concrete is compared with ECC concrete of 7& 28 days compressive strength
results. It is the composite concrete is (3 to 5%) better than conventional and Ecc concrete. According to
the cube compressive test results, if use of ECC with conventional composite concrete may the beam is
withstanding high load and a large deformation without succumbing to the brittle fracture typical of normal
concrete, even without the use of steel reinforcement.
Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams
http://www.iaeme.com/IJCIET/index.asp 288 editor@iaeme.com
REFERENCES
[1] Victor C. Li, “On Engineered Cementitious Composites (ECC) A Review of the Material and Its
Applications” Journal of Advanced Concrete Technology Vol. 1, No. 3, 215-230 November 2003.
[2] Li-li Kan, Hui-sheng Shi b, Investigation of self-healing behaviour of Engineered Cementitious
Composites (ECC) materials” Construction and Building Materials 29 (2012) 348–356.
[3] Fang Yuan1; Jinlong Pan, “Flexural Behaviours of ECC and Concrete/ECC Composite Beams
Reinforced with Basalt Fiber-Reinforced Polymer” DOI: 10.1061/(ASCE)CC.1943-5614.0000381. ©
2013 American Society of Civil Engineers.
[4] Arivalagan. S, Engineering Performance of Concrete Beams Reinforced with GFRP Bars and Stainless
steel”, Global Journal of researches in engineering Civil and Structural engineering Volume 12 Issue 1
Version 1.0 January 2012.
[5] Victor C. Li, Large Scale Processing of Engineered cementitious Composites “Title no 105-M41 ACI
Material Journals.
[6] Mustafa Sahmaran, Mo Li, and Victor C. Li “Transport Properties of Engineered Cementitious
Composites under Chloride Exposure” Title no. 104-M66 ACI Material Journals.
[7] Victor C. Li “Tailoring ECC for Special Attributes: A Review” International Journal of Concrete
Structures and Materials Vol.6, No.3, pp.135–144, September 2012
[8] Dr. A. W. Dhawale, Mrs. V. P. Josh “Engineered Cementitious Composites for Structural Applications”
Volume 2, Issue 4, April 2013International Journal of Application or Innovation in Engineering &
Management.
[9] Priyadarshi Das, Bidyadhar Basa, Samuel Digal and Chandan Jana, Cane Reinforced Cement Concrete:
An Experimental Approach on Flexural Strength Characteristics In Comparison with Steel RCC.
International Journal of Civil Engineering and Technology, 7(4), 2016, pp.463–473.
[10] Mathivanan Periasamy, Behavior of Tensile, Flexural and Interlaminar Shear Strength of Microfilled
Aluminium-Glass Fiber Reinforced Plastic Sandwich Panels, International Journal of Mechanical
Engineering and Technology, 7(6), 2016, pp. 604–608.
[11] Prof. Dr. Nameer A. Alwash and Ahmed Hamid Jasim. Behavior of Short Concrete Columns Reinforced
by CFRP Bars and Subjected To Eccentric Load. International Journal of Civil Engineering and
Technology, 6(10), 2015, pp. 15-24.
[12] Mahesh K Maroliya, Chetan D Modhera A Comparative Study of Reactive Powder Concrete Containing
Steel Fibres and Recron 3s fibres” Journal of Engineering Research and Studies.
[13] Yang YZ, Lepech M, Yang EH, Li VC. “Autogenous healing of engineered cementitious composites
under wet–dry cycles”. Cem Concr Res2009; 39:382–90.

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EXPERIMENTAL STUDY ON FLEXURAL BEHAVIOURS OF ECC AND CONCRETE COMPOSITE REINFORCED BEAMS

  • 1. http://www.iaeme.com/IJCIET/index.asp 282 editor@iaeme.com International Journal of Civil Engineering and Technology (IJCIET) Volume 8, Issue 2, February 2017, pp. 282–288 Article ID: IJCIET_08_02_030 Available online at http://www.iaeme.com/IJCIET/issues.asp?JType=IJCIET&VType=8&IType=2 ISSN Print: 0976-6308 and ISSN Online: 0976-6316 © IAEME Publication Scopus Indexed EXPERIMENTAL STUDY ON FLEXURAL BEHAVIOURS OF ECC AND CONCRETE COMPOSITE REINFORCED BEAMS M. Velmurugan Assistant Professor, Department of Civil Engineering, SMK Fomra Institute of Technology Kelambakkam, Chennai- 603103 S. Kesavraman Assistant Professor, Department of Civil Engineering, SMK Fomra Institute of Technology Kelambakkam, Chennai- 603103 A. Radhakrishnan Assistant Professor, Department of Civil Engineering, SMK Fomra Institute of Technology Kelambakkam, Chennai- 603103 ABSTRAT Engineered cementations composite (ECC) is a class of high-performance cementations composites with strain-hardening behaviour and excellent crack control. Substitution of concrete with ECC can avoid the cracking and durability problems associated with brittleness of concrete. Extensive inelastic deformation is achieved in ECC through Recron 3’s fibre. ECC can be used in high rise buildings due to their appearance, high bearing capacity, ductility, Fast construction and cost effective. The aim of the paper is to study the flexural behaviour of ECC and concrete composite reinforced beams. Size of the beam is 1200mm x100mmx150mm. The percentage of Recron 3’s fibre replaced is 0.5 %, 1.5%, 2.5% by weight of cement. Finally conventional beam is compared with ECC beam and also compare ECC at top and bottom of composite beams. Key words: Engineered cementations composite, Crack control, Durability, Recron 3s fibre, flexural Cite this Article: M.Velmurugan, S.Kesavraman and A.Radhakrishnan, Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams. International Journal of Civil Engineering and Technology, 8(2), 2017, pp. 282–288. http://www.iaeme.com/IJCIET/issues.asp?JType=IJCIET&VType=8&IType=2 1. INTRODUCTION Engineered Cementations Composites (ECC, also known as “ECC Concrete”), developed in the last decade, may contribute to safer, more durable, and sustainable concrete infra-structure that is cost-effective and constructed with conventional construction equipment. ECC is ductile in nature. Under flexure, normal concrete fractures in a brittle manner. ECC has been prepared in ready-mix plants and transported to construction sites using conventional ready-mix trucks. The mix can be placed with-out the need for
  • 2. M.Velmurugan, S.Kesavraman and A.Radhakrishnan http://www.iaeme.com/IJCIET/index.asp 283 editor@iaeme.com vibration due to its self-consolidating characteristics. The moderately low fiber content has also made shotcreting ECC viable. Engineered Cementations Composites (ECC) is a unique representative of the new generation of high performance fiber reinforced cementations composites, featuring high ductility and medium fiber content. The microstructure to composite performance linkage can be further extended to the structural performance level and integrate the material design into performance based design concept for structures. Figure 1 ECC slab under two point loads 2. PROPERTIES OF MATERIALS 2.1. GENERAL Materials used in this study are Cement, Fine aggregate, Coarse aggregate, Flyash, Recron3’s fibre, Super Plasticizer, steel and their characteristics were obtained by testing of materials. 2.2. MATERIALS USED Water: Water fit for drinking is generally considered fit for Making concrete Cement : The cement used in all mixture was commercially available Ordinary Portland Cement ( OPC ) of 53 grade confirmed to IS: 8112-1989. The initial and final setting times were found as 80 minutes and 453 minutes respectively. Fine Aggregate: Fine aggregate / natural sand is an accumulation of grains of mineral matter derived from the disintegration of rocks. Usually commercial sand is obtained from riverbeds or from sand dunes originally formed by the action of winds. The fine aggregate was passing through 4.75 mm sieve and had a specific gravity of 2.68. The grading zone of fine aggregate was zone III as per Indian Standard specification. Coarse Aggregate : Coarse aggregate used in this study consist of crushed stone of size 20mm and below. Laboratory tests were conducted on coarse aggregate to determine the different physical properties as per IS: 383-1970. Fly ash: Fly ash is finely divided residue resulting from the combustion of powedered coal and transported by the flue gases and collected by electrostatic precipitator. It can be manufactured by using the low calcium (class-F) fly ash obtained from Tuticorin Thermal Power Plant. Recron3’s fibre: Recron3’s fibre is mainly used for to improving the quality of plaster and concrete. Recron 3s fibres can be used in concrete elements such as RC and PC lintel, beam, column, flooring and wall plastering.
  • 3. Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams http://www.iaeme.com/IJCIET/index.asp 284 editor@iaeme.com Cut length 6 mm or 12 mm Shape of fiber special for improved holding of cement aggregates Tensile strength 4000-6000 kg/cm² Melting point > 250OC Dosage rate Concrete Use CT 2024 (12mm) at 909 g/m3g/cement bag 1:4 Cement/sand ratio Optimize as per application Figure 2 Recron 3’s fiber Super Plasticizer: (CONPLAST SP430) High strength concrete production is greatly facilitated by the incorporation of a water reducing agent as admixture. This enables easy handling of concretes with low water-cement ratios without loss of adequate workability. The quantities of super plasticizer used were as per the specifications given by manufacturer. The properties of Conplast SP 430 (complies with IS: 9103-1999) as reported by the suppliers are given in Table. Sl. No Description Property 1 Specific Gravity 1.220 to 1.225 at 30ºC 2 Setting times At higher dosage levels without water reduction retards setting times 1-2 hours approximately. 3 Air entrainment Approximately1% additional air is entrain. 4 Compatibility Can be used with all types of Portland and Slag cements except High alumina cement. 5 Workability Can be used to produce flowing concrete that requires no compaction. Some minor adjustments may be required to produce high workable mix without segregation. 6 Durability Reduction in W/C ratio enables increase in density and impermeability thus enhancing durability of concrete. 7 Compressive strength Early strength is increased upto 20% if water reduction is taken advantage of. Generally, there is improvement in strength upto 20% depending upon W/C ratio and other mix parameters. 3. EXPERIMENTAL METHODS: 3.1. General The experimental program consisted of casting, curing and testing the cube of size 150x150x150 mm.
  • 4. M.Velmurugan, S.Kesavraman and A.Radhakrishnan http://www.iaeme.com/IJCIET/index.asp 285 editor@iaeme.com 3.2. Mix Proportions For ECC: (M45) Cement sand Fly ash Water 1 0.8 1.2 0.51 For Conventional Concrete: (M45) Cement Fine Aggregate Coarse Aggregate Water 1 1.64 1.85 0.37 3.3. Casting and Curing Steel mould was used for casting the cubes. Before casting, machine oil was applied on the inner surface of the mould. Concrete was mixed using a tilting type laboratory mixer and was poured into the moulds in layers. Compaction of concrete was done using a needle vibrator. After 24 hours from casting, all the cubes were curing into the water for 7 & 28 days compressive test. 3.4. Testing All the cubes were tested in Compression Testing Machine (CTM).For loading the Cubes 2000 KN capacity hydraulic compression testing machine was used. Figure 3 Specimen placed in CTM 4. SUMMARY OF SPECIMEN INFORMATION S.no Concrete type Grade Curing days 1 ECC M45 7 28 Conventional M45 7 28 2 ECC at top M45 7 28 ECC at Bottom M45 7 28
  • 5. Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams http://www.iaeme.com/IJCIET/index.asp 286 editor@iaeme.com 5. EXPERIMENTAL RESULTS AND DISCUSSIONS X axis = days; Y axis = Comp. strength (N/mm²) Graph 1. Comp. strength result at 7days. (Cube) X axis = days; Y axis = Comp. strength (N/mm²) Graph 2. Comp. strength result at 28days. (Cube) From Graph 1. ECC is compared with conventional concrete of 7 days compressive strength results. It is the composite concrete is (3 to 5%) better than conventional and Ecc concrete. From Graph 2.compared ECC and Conventional concrete of 28 days compressive strength results. ECC and Conventional concrete results values arrived through best mix proportions. But doesn’t get expected results. 6. BEAM DETAILS Figure 4 Comparison between Conventional and ECC concrete 0 5 10 15 20 25 30 35 0 7 ECC Conventiona l ECC at Top ECC at Bottom 0 10 20 30 40 50 60 0 7 28 ECC Conventiona l ECC at Top ECC at Bottom
  • 6. M.Velmurugan, S.Kesavraman and A.Radhakrishnan http://www.iaeme.com/IJCIET/index.asp 287 editor@iaeme.com Figure 5 Comparison between ECC at Bottom and Top 6.1. TEST SETUP Figure 6 Two point loading in beam 7. CONCLUSION ECC with conventional concrete is compared with ECC concrete of 7& 28 days compressive strength results. It is the composite concrete is (3 to 5%) better than conventional and Ecc concrete. According to the cube compressive test results, if use of ECC with conventional composite concrete may the beam is withstanding high load and a large deformation without succumbing to the brittle fracture typical of normal concrete, even without the use of steel reinforcement.
  • 7. Experimental Study On Flexural Behaviours of ECC and Concrete Composite Reinforced Beams http://www.iaeme.com/IJCIET/index.asp 288 editor@iaeme.com REFERENCES [1] Victor C. Li, “On Engineered Cementitious Composites (ECC) A Review of the Material and Its Applications” Journal of Advanced Concrete Technology Vol. 1, No. 3, 215-230 November 2003. [2] Li-li Kan, Hui-sheng Shi b, Investigation of self-healing behaviour of Engineered Cementitious Composites (ECC) materials” Construction and Building Materials 29 (2012) 348–356. [3] Fang Yuan1; Jinlong Pan, “Flexural Behaviours of ECC and Concrete/ECC Composite Beams Reinforced with Basalt Fiber-Reinforced Polymer” DOI: 10.1061/(ASCE)CC.1943-5614.0000381. © 2013 American Society of Civil Engineers. [4] Arivalagan. S, Engineering Performance of Concrete Beams Reinforced with GFRP Bars and Stainless steel”, Global Journal of researches in engineering Civil and Structural engineering Volume 12 Issue 1 Version 1.0 January 2012. [5] Victor C. Li, Large Scale Processing of Engineered cementitious Composites “Title no 105-M41 ACI Material Journals. [6] Mustafa Sahmaran, Mo Li, and Victor C. Li “Transport Properties of Engineered Cementitious Composites under Chloride Exposure” Title no. 104-M66 ACI Material Journals. [7] Victor C. Li “Tailoring ECC for Special Attributes: A Review” International Journal of Concrete Structures and Materials Vol.6, No.3, pp.135–144, September 2012 [8] Dr. A. W. Dhawale, Mrs. V. P. Josh “Engineered Cementitious Composites for Structural Applications” Volume 2, Issue 4, April 2013International Journal of Application or Innovation in Engineering & Management. [9] Priyadarshi Das, Bidyadhar Basa, Samuel Digal and Chandan Jana, Cane Reinforced Cement Concrete: An Experimental Approach on Flexural Strength Characteristics In Comparison with Steel RCC. International Journal of Civil Engineering and Technology, 7(4), 2016, pp.463–473. [10] Mathivanan Periasamy, Behavior of Tensile, Flexural and Interlaminar Shear Strength of Microfilled Aluminium-Glass Fiber Reinforced Plastic Sandwich Panels, International Journal of Mechanical Engineering and Technology, 7(6), 2016, pp. 604–608. [11] Prof. Dr. Nameer A. Alwash and Ahmed Hamid Jasim. Behavior of Short Concrete Columns Reinforced by CFRP Bars and Subjected To Eccentric Load. International Journal of Civil Engineering and Technology, 6(10), 2015, pp. 15-24. [12] Mahesh K Maroliya, Chetan D Modhera A Comparative Study of Reactive Powder Concrete Containing Steel Fibres and Recron 3s fibres” Journal of Engineering Research and Studies. [13] Yang YZ, Lepech M, Yang EH, Li VC. “Autogenous healing of engineered cementitious composites under wet–dry cycles”. Cem Concr Res2009; 39:382–90.