SlideShare a Scribd company logo
1 of 9
Download to read offline
Workshop 2
Creating Native Geometry: Pipe Creep Model
Introduction
Creep is the permanent elongation of a component under a static load maintained for a
period of time. Most metals and their alloys creep only at elevated temperatures, but
several materials such as thermoplastics and rubbers do so at room temperature.
Designers estimating the service life and structural integrity of components must account
for creep effects in their designs.
This model represents the intersection of a pipe with a cylindrical pressure vessel. The
system operates at elevated temperature and carries internal pressure. The calculation
consists of two steps. In the first step a static analysis is performed, during which the
internal pressure is applied. In the second step a transient analysis is carried out to
determine the creep behavior of the pressurized vessel and pipe.
The geometry of the model is shown in Figure W2–1. A one-quarter symmetry model is
used.
Figure W2–1. Sketch of the intersecting pipes
Note: The part created in this workshop will be used in subsequent workshops to build
the complete model and perform the analysis. It is important that you use the dimensions
stated and not deviate from the workshop instructions; otherwise, you may find it difficult
to complete the subsequent workshops.
Starting ABAQUS/CAE
Start a new session of ABAQUS/CAE from the workshops/pipeCreep directory by
typing
abaqus cae
at the operating system prompt, where abaqus is the command used to run ABAQUS on
your system. Select Create Model Database from the Start Session dialog box that
appears.
Defining the model geometry
As always, the first step in creating the model is to define its geometry. In this example
you will create a three-dimensional, deformable body to model the pipe intersection.
You need to decide what system of units to use in your model. The SI system of meters,
kilograms, and hours is used here; you can use another system if you prefer.
To create a part:
1. From the Module list located under the toolbar, select Part to enter the Part
module.
2. From the main menu bar, select PartCreate to create a new part. Name the
part pipe-intersection and accept the default settings of a three-
dimensional, deformable body and a solid, extruded base feature in the Create
Part dialog box. In the Approximate size text field, type 2. This value is
approximately 5 times the outer diameter of the vessel. Click Continue to exit
the Create Part dialog box.
W2.2
3. Open the Sketcher Options dialog box by clicking on the customization tool
from the Sketcher toolbox. Change the Grid spacing to 0.02 and
Decimal places (for sketch dimensions) to 3. Click OK to close the dialog box
and to apply the changes.
4. Use the Create Circle: Center and Perimeter tool to sketch two
concentric circles of radii 0.24 m and 0.14 m, respectively, centered at the
origin. For convenience, align the perimeter points along the X-axis of the sketch
plane, as shown in Figure W2–2.
5. Use the Create Dimension: Radial tool to dimension the values of the
radii as shown in Figure W2–2.
Figure W2–2. Concentric circles
6. Select the Edit Dimension Value tool from the toolbox. Click on the
0.240 dimension in the viewport, and enter a new value of 0.228 m in the
prompt area. Click mouse button 2 to modify the dimension. (Mouse button 2 is
the middle mouse button on a 3-button mouse; on a 2-button mouse, press both
mouse buttons simultaneously.) Similarly, modify the radius of the inner circle to
0.139 m as shown in Figure W2–3.
Perimeter points
W2.3
Figure W2–3. Modified dimensions of the circles
7. In the prompt area, click Done to continue.
8. The Edit Base Extrusion dialog box appears. Enter a value of 0.458 m for
the depth of the solid extrusion and click OK.
9. In the toolbar, click the Render Model: Shaded tool to change the render
style to shaded, as shown in Figure W2–4.
Figure W2–4. Shaded render style
The cross-section of the intersecting pipe must be sketched on a planar region and
then extruded. Since the outer surface of the vessel is cylindrical, a datum plane
will be created and used for the purpose of sketching the intersecting pipe.
10. From the main menu bar, select ToolsDatum.
11. In the Create Datum dialog box, choose Plane as the type and Offset from
principal plane as the method.
12. Click OK.
13. In the prompt area, choose the XZ Plane as the plane from which to offset.
W2.4
14. Specify an offset distance of 0.528 m. Click the Auto-Fit View tool in the
toolbar to resize the view. The datum plane is shown in Figure W2–5.
15. From the main menu bar, select ToolsDatum.
16. In the Create Datum dialog box, choose Axis as the type and Principal Axis
as the method.
17. Click OK.
18. Create a principal X-Axis as shown in Figure W2–5.
Figure W2–5. Datum geometry
19. From the main menu bar, select ShapeSolidExtrude. Do the following:
A. In the viewport, select the datum plane as the plane on which to create the
sketch.
B. Select the datum axis as the edge that will appear vertical and on the right of
the sketch.
Datum plane
Datum axis
W2.5
Figure W2–6. Solid extrusion: sketch plane and axis
C. Sketch a circle of radius 0.08 m centered in the plane. Place the perimeter
point of the circle on the negative horizontal axis of the sketch plane. The
reason for this is that the model will later be quartered such that only the
upper-right quadrant of the part will be retained. By placing the perimeter
point outside of this quadrant, we ensure that no redundant edges will persist
afterwards. Dimension the radius of the circle, and modify the dimension to be
0.084 m.
D. Click mouse button 2 to continue, and click Done in the prompt area.
E. In the Edit Extrusion dialog box, choose the end condition Blind and
extrude the solid a depth of 0.35 m. Flip the extrusion direction so that it is
pointing toward the vessel, as shown in Figure W2–7. Click OK.
W2.6
Figure W2–7. Arrow direction for solid extrusion
20. From the main menu bar, select ShapeCutExtrude. Do the following:
A. Select the end plane on the smaller pipe as the plane on which to sketch, as
shown in Figure W2–8.
F. Select the datum axis as the edge that will appear vertical and on the right.
G. Sketch a circle of radius 0.04 m concentric with the circle representing the
pipe. As before, place the perimeter point of the circle on the negative
horizontal axis of the sketch plane. Dimension the radius of the circle, and
modify the dimension to be 0.05 m.
H. Click mouse button 2 to continue, and click Done in the prompt area.
I. In the Edit Cut Extrusion dialog box, choose the end condition Blind and
extrude the cut a depth of 0.528 m. The direction of extrusion is into the
pipe, as shown in Figure W2–8. Click OK.
W2.7
Figure W2–8. Solid cut
21. From the main menu bar, select ShapeBlendRound/Fillet. Select the edge
around the intersection as the edge to be rounded, as shown in Figure W2–9.
Specify a fillet radius of 0.04 m.
Figure W2–9. Rounded edge
22. Quarter the model as follows:
A. From the main menu bar, select ShapeCutExtrude.
J. Select the end face of the smaller pipe as the plane on which to sketch.
K. Select the datum axis as the edge that will appear vertical and on the right.
L. Using the Create Lines: Connected tool located in the upper right-hand
corner of the Sketcher toolbox, sketch the series of connected lines shown in
Figure W2–10.
W2.8
Sketch plane
Direction of extrusion
Edge that will appear
vertical
and on the right
Edge to be rounded
M. In the Edit Cut Extrusion dialog box, choose the Through All end
condition and the direction of extrusion into the pipe. Click OK.
Figure W2–10. Cut profile
The quarter symmetry model of the pipe intersection is shown in Figure W2–11.
Figure W2–11. Final geometry
23. From the main menu bar, select FileSave to save your model in a model
database file. You will continue building this model in subsequent workshops.
W2.9
Because of how the
perimeter points were
placed, the edge of the
fillet will be removed with
this cut. This will
facilitate structured
meshing in a later
workshop.

More Related Content

What's hot

Building model-sap2000-tutorial-guide
Building model-sap2000-tutorial-guideBuilding model-sap2000-tutorial-guide
Building model-sap2000-tutorial-guide
Vanz Einstein
 
315925614 cadence-tutorial
315925614 cadence-tutorial315925614 cadence-tutorial
315925614 cadence-tutorial
khaalidkk
 

What's hot (20)

Workshop10 creep-jop
Workshop10 creep-jopWorkshop10 creep-jop
Workshop10 creep-jop
 
Workshop14 pipe-whip
Workshop14 pipe-whipWorkshop14 pipe-whip
Workshop14 pipe-whip
 
Workshop6 pump-assy
Workshop6 pump-assyWorkshop6 pump-assy
Workshop6 pump-assy
 
Workshop1 cant-beam
Workshop1 cant-beamWorkshop1 cant-beam
Workshop1 cant-beam
 
Workshop5 pump-mat
Workshop5 pump-matWorkshop5 pump-mat
Workshop5 pump-mat
 
Workshop4 creep-props
Workshop4 creep-propsWorkshop4 creep-props
Workshop4 creep-props
 
Workshop13 pump-analysis
Workshop13 pump-analysisWorkshop13 pump-analysis
Workshop13 pump-analysis
 
Workshop11 beam-load-cases
Workshop11 beam-load-casesWorkshop11 beam-load-cases
Workshop11 beam-load-cases
 
SAP2000 Piperack Tutorial 2010.pdf
SAP2000 Piperack Tutorial 2010.pdfSAP2000 Piperack Tutorial 2010.pdf
SAP2000 Piperack Tutorial 2010.pdf
 
Axis vm stepbystep
Axis vm stepbystepAxis vm stepbystep
Axis vm stepbystep
 
Building model-sap2000-tutorial-guide
Building model-sap2000-tutorial-guideBuilding model-sap2000-tutorial-guide
Building model-sap2000-tutorial-guide
 
How to create a Composite FEM via Hypermesh
How to create a Composite FEM via HypermeshHow to create a Composite FEM via Hypermesh
How to create a Composite FEM via Hypermesh
 
Finite Element Simulation with Ansys Workbench 14
Finite Element Simulation with Ansys Workbench 14Finite Element Simulation with Ansys Workbench 14
Finite Element Simulation with Ansys Workbench 14
 
Civil 3d workflow
Civil 3d workflowCivil 3d workflow
Civil 3d workflow
 
Workbench tutorial airfoil
Workbench tutorial airfoilWorkbench tutorial airfoil
Workbench tutorial airfoil
 
315925614 cadence-tutorial
315925614 cadence-tutorial315925614 cadence-tutorial
315925614 cadence-tutorial
 
Lecture 10: introduction to computer
Lecture 10: introduction to computerLecture 10: introduction to computer
Lecture 10: introduction to computer
 
Safe tutorial
Safe tutorialSafe tutorial
Safe tutorial
 
Thermal Analysis in Hypermesh (Conduction, Convention and Thermal Expansion)
Thermal Analysis in Hypermesh (Conduction, Convention and Thermal Expansion)Thermal Analysis in Hypermesh (Conduction, Convention and Thermal Expansion)
Thermal Analysis in Hypermesh (Conduction, Convention and Thermal Expansion)
 
Tutorial for design of foundations using safe
Tutorial for design of foundations using safeTutorial for design of foundations using safe
Tutorial for design of foundations using safe
 

Viewers also liked

Viewers also liked (8)

abaqus lecture 2
abaqus lecture 2abaqus lecture 2
abaqus lecture 2
 
ABAQUS Lecture Part II
ABAQUS Lecture Part IIABAQUS Lecture Part II
ABAQUS Lecture Part II
 
ABAQUS Lecture Part I
ABAQUS Lecture Part IABAQUS Lecture Part I
ABAQUS Lecture Part I
 
Abaqus tutorial
Abaqus tutorialAbaqus tutorial
Abaqus tutorial
 
Projet abaqus presentation
Projet abaqus presentationProjet abaqus presentation
Projet abaqus presentation
 
Abaqus tutorial
Abaqus tutorialAbaqus tutorial
Abaqus tutorial
 
Abaqusfracture mechanics
Abaqusfracture mechanicsAbaqusfracture mechanics
Abaqusfracture mechanics
 
Introduction to Abaqus FEA (tutorial)
Introduction to Abaqus FEA (tutorial)Introduction to Abaqus FEA (tutorial)
Introduction to Abaqus FEA (tutorial)
 

Similar to Workshop2 creep-geo

Learn zwcad mechanical in a day
Learn zwcad mechanical  in a dayLearn zwcad mechanical  in a day
Learn zwcad mechanical in a day
VX
 
Automation CIMS Bearing Housing Final Report
Automation CIMS Bearing Housing Final ReportAutomation CIMS Bearing Housing Final Report
Automation CIMS Bearing Housing Final Report
Ibrahim Ahmed
 
Vice Grip Soldiworks Project
Vice Grip Soldiworks ProjectVice Grip Soldiworks Project
Vice Grip Soldiworks Project
Michael Lagalle
 
ME430FinalReport (1)
ME430FinalReport (1)ME430FinalReport (1)
ME430FinalReport (1)
Ivan Romano
 
Computer Aided Design and Modeling Final Report
Computer Aided Design and Modeling Final ReportComputer Aided Design and Modeling Final Report
Computer Aided Design and Modeling Final Report
Richard Horta
 
Engineering Drawing: Chapter 12 working drawing
Engineering Drawing: Chapter 12 working drawingEngineering Drawing: Chapter 12 working drawing
Engineering Drawing: Chapter 12 working drawing
mokhtar
 

Similar to Workshop2 creep-geo (20)

Lesson02
Lesson02Lesson02
Lesson02
 
Learn zwcad mechanical in a day
Learn zwcad mechanical  in a dayLearn zwcad mechanical  in a day
Learn zwcad mechanical in a day
 
Type 23 Frigate FEA Hull Design
Type 23 Frigate FEA Hull DesignType 23 Frigate FEA Hull Design
Type 23 Frigate FEA Hull Design
 
AutoCAD Lab Manual
AutoCAD Lab ManualAutoCAD Lab Manual
AutoCAD Lab Manual
 
FEA Final Project
FEA Final ProjectFEA Final Project
FEA Final Project
 
Automation CIMS Bearing Housing Final Report
Automation CIMS Bearing Housing Final ReportAutomation CIMS Bearing Housing Final Report
Automation CIMS Bearing Housing Final Report
 
Practical work 3
Practical work 3Practical work 3
Practical work 3
 
CAE
CAECAE
CAE
 
final.docx
final.docxfinal.docx
final.docx
 
Sheet metal design in Solid Edge.docx
Sheet metal design in Solid Edge.docxSheet metal design in Solid Edge.docx
Sheet metal design in Solid Edge.docx
 
Molds design in solid works
Molds design in solid worksMolds design in solid works
Molds design in solid works
 
New manual
New manualNew manual
New manual
 
Tutorial ic design
Tutorial ic designTutorial ic design
Tutorial ic design
 
SolidWorks mini guide
SolidWorks mini guideSolidWorks mini guide
SolidWorks mini guide
 
Finite Element Analysis of 3D Bearing Support.ppt
Finite Element Analysis of 3D Bearing Support.pptFinite Element Analysis of 3D Bearing Support.ppt
Finite Element Analysis of 3D Bearing Support.ppt
 
Vice Grip Soldiworks Project
Vice Grip Soldiworks ProjectVice Grip Soldiworks Project
Vice Grip Soldiworks Project
 
ME430FinalReport (1)
ME430FinalReport (1)ME430FinalReport (1)
ME430FinalReport (1)
 
Solid modeling
Solid modelingSolid modeling
Solid modeling
 
Computer Aided Design and Modeling Final Report
Computer Aided Design and Modeling Final ReportComputer Aided Design and Modeling Final Report
Computer Aided Design and Modeling Final Report
 
Engineering Drawing: Chapter 12 working drawing
Engineering Drawing: Chapter 12 working drawingEngineering Drawing: Chapter 12 working drawing
Engineering Drawing: Chapter 12 working drawing
 

Recently uploaded

Beyond the EU: DORA and NIS 2 Directive's Global Impact
Beyond the EU: DORA and NIS 2 Directive's Global ImpactBeyond the EU: DORA and NIS 2 Directive's Global Impact
Beyond the EU: DORA and NIS 2 Directive's Global Impact
PECB
 
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in DelhiRussian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
kauryashika82
 
1029-Danh muc Sach Giao Khoa khoi 6.pdf
1029-Danh muc Sach Giao Khoa khoi  6.pdf1029-Danh muc Sach Giao Khoa khoi  6.pdf
1029-Danh muc Sach Giao Khoa khoi 6.pdf
QucHHunhnh
 

Recently uploaded (20)

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
 
Energy Resources. ( B. Pharmacy, 1st Year, Sem-II) Natural Resources
Energy Resources. ( B. Pharmacy, 1st Year, Sem-II) Natural ResourcesEnergy Resources. ( B. Pharmacy, 1st Year, Sem-II) Natural Resources
Energy Resources. ( B. Pharmacy, 1st Year, Sem-II) Natural Resources
 
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
 
ICT role in 21st century education and it's challenges.
ICT role in 21st century education and it's challenges.ICT role in 21st century education and it's challenges.
ICT role in 21st century education and it's challenges.
 
Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...
Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...
Explore beautiful and ugly buildings. Mathematics helps us create beautiful d...
 
Asian American Pacific Islander Month DDSD 2024.pptx
Asian American Pacific Islander Month DDSD 2024.pptxAsian American Pacific Islander Month DDSD 2024.pptx
Asian American Pacific Islander Month DDSD 2024.pptx
 
Beyond the EU: DORA and NIS 2 Directive's Global Impact
Beyond the EU: DORA and NIS 2 Directive's Global ImpactBeyond the EU: DORA and NIS 2 Directive's Global Impact
Beyond the EU: DORA and NIS 2 Directive's Global Impact
 
Advanced Views - Calendar View in Odoo 17
Advanced Views - Calendar View in Odoo 17Advanced Views - Calendar View in Odoo 17
Advanced Views - Calendar View in Odoo 17
 
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in DelhiRussian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
Russian Escort Service in Delhi 11k Hotel Foreigner Russian Call Girls in Delhi
 
Role Of Transgenic Animal In Target Validation-1.pptx
Role Of Transgenic Animal In Target Validation-1.pptxRole Of Transgenic Animal In Target Validation-1.pptx
Role Of Transgenic Animal In Target Validation-1.pptx
 
Z Score,T Score, Percential Rank and Box Plot Graph
Z Score,T Score, Percential Rank and Box Plot GraphZ Score,T Score, Percential Rank and Box Plot Graph
Z Score,T Score, Percential Rank and Box Plot Graph
 
1029-Danh muc Sach Giao Khoa khoi 6.pdf
1029-Danh muc Sach Giao Khoa khoi  6.pdf1029-Danh muc Sach Giao Khoa khoi  6.pdf
1029-Danh muc Sach Giao Khoa khoi 6.pdf
 
On National Teacher Day, meet the 2024-25 Kenan Fellows
On National Teacher Day, meet the 2024-25 Kenan FellowsOn National Teacher Day, meet the 2024-25 Kenan Fellows
On National Teacher Day, meet the 2024-25 Kenan Fellows
 
Sociology 101 Demonstration of Learning Exhibit
Sociology 101 Demonstration of Learning ExhibitSociology 101 Demonstration of Learning Exhibit
Sociology 101 Demonstration of Learning Exhibit
 
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...
 
Holdier Curriculum Vitae (April 2024).pdf
Holdier Curriculum Vitae (April 2024).pdfHoldier Curriculum Vitae (April 2024).pdf
Holdier Curriculum Vitae (April 2024).pdf
 
Web & Social Media Analytics Previous Year Question Paper.pdf
Web & Social Media Analytics Previous Year Question Paper.pdfWeb & Social Media Analytics Previous Year Question Paper.pdf
Web & Social Media Analytics Previous Year Question Paper.pdf
 
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
Presentation by Andreas Schleicher Tackling the School Absenteeism Crisis 30 ...
 
Measures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SDMeasures of Dispersion and Variability: Range, QD, AD and SD
Measures of Dispersion and Variability: Range, QD, AD and SD
 
microwave assisted reaction. General introduction
microwave assisted reaction. General introductionmicrowave assisted reaction. General introduction
microwave assisted reaction. General introduction
 

Workshop2 creep-geo

  • 1. Workshop 2 Creating Native Geometry: Pipe Creep Model Introduction Creep is the permanent elongation of a component under a static load maintained for a period of time. Most metals and their alloys creep only at elevated temperatures, but several materials such as thermoplastics and rubbers do so at room temperature. Designers estimating the service life and structural integrity of components must account for creep effects in their designs. This model represents the intersection of a pipe with a cylindrical pressure vessel. The system operates at elevated temperature and carries internal pressure. The calculation consists of two steps. In the first step a static analysis is performed, during which the internal pressure is applied. In the second step a transient analysis is carried out to determine the creep behavior of the pressurized vessel and pipe. The geometry of the model is shown in Figure W2–1. A one-quarter symmetry model is used. Figure W2–1. Sketch of the intersecting pipes
  • 2. Note: The part created in this workshop will be used in subsequent workshops to build the complete model and perform the analysis. It is important that you use the dimensions stated and not deviate from the workshop instructions; otherwise, you may find it difficult to complete the subsequent workshops. Starting ABAQUS/CAE Start a new session of ABAQUS/CAE from the workshops/pipeCreep directory by typing abaqus cae at the operating system prompt, where abaqus is the command used to run ABAQUS on your system. Select Create Model Database from the Start Session dialog box that appears. Defining the model geometry As always, the first step in creating the model is to define its geometry. In this example you will create a three-dimensional, deformable body to model the pipe intersection. You need to decide what system of units to use in your model. The SI system of meters, kilograms, and hours is used here; you can use another system if you prefer. To create a part: 1. From the Module list located under the toolbar, select Part to enter the Part module. 2. From the main menu bar, select PartCreate to create a new part. Name the part pipe-intersection and accept the default settings of a three- dimensional, deformable body and a solid, extruded base feature in the Create Part dialog box. In the Approximate size text field, type 2. This value is approximately 5 times the outer diameter of the vessel. Click Continue to exit the Create Part dialog box. W2.2
  • 3. 3. Open the Sketcher Options dialog box by clicking on the customization tool from the Sketcher toolbox. Change the Grid spacing to 0.02 and Decimal places (for sketch dimensions) to 3. Click OK to close the dialog box and to apply the changes. 4. Use the Create Circle: Center and Perimeter tool to sketch two concentric circles of radii 0.24 m and 0.14 m, respectively, centered at the origin. For convenience, align the perimeter points along the X-axis of the sketch plane, as shown in Figure W2–2. 5. Use the Create Dimension: Radial tool to dimension the values of the radii as shown in Figure W2–2. Figure W2–2. Concentric circles 6. Select the Edit Dimension Value tool from the toolbox. Click on the 0.240 dimension in the viewport, and enter a new value of 0.228 m in the prompt area. Click mouse button 2 to modify the dimension. (Mouse button 2 is the middle mouse button on a 3-button mouse; on a 2-button mouse, press both mouse buttons simultaneously.) Similarly, modify the radius of the inner circle to 0.139 m as shown in Figure W2–3. Perimeter points W2.3
  • 4. Figure W2–3. Modified dimensions of the circles 7. In the prompt area, click Done to continue. 8. The Edit Base Extrusion dialog box appears. Enter a value of 0.458 m for the depth of the solid extrusion and click OK. 9. In the toolbar, click the Render Model: Shaded tool to change the render style to shaded, as shown in Figure W2–4. Figure W2–4. Shaded render style The cross-section of the intersecting pipe must be sketched on a planar region and then extruded. Since the outer surface of the vessel is cylindrical, a datum plane will be created and used for the purpose of sketching the intersecting pipe. 10. From the main menu bar, select ToolsDatum. 11. In the Create Datum dialog box, choose Plane as the type and Offset from principal plane as the method. 12. Click OK. 13. In the prompt area, choose the XZ Plane as the plane from which to offset. W2.4
  • 5. 14. Specify an offset distance of 0.528 m. Click the Auto-Fit View tool in the toolbar to resize the view. The datum plane is shown in Figure W2–5. 15. From the main menu bar, select ToolsDatum. 16. In the Create Datum dialog box, choose Axis as the type and Principal Axis as the method. 17. Click OK. 18. Create a principal X-Axis as shown in Figure W2–5. Figure W2–5. Datum geometry 19. From the main menu bar, select ShapeSolidExtrude. Do the following: A. In the viewport, select the datum plane as the plane on which to create the sketch. B. Select the datum axis as the edge that will appear vertical and on the right of the sketch. Datum plane Datum axis W2.5
  • 6. Figure W2–6. Solid extrusion: sketch plane and axis C. Sketch a circle of radius 0.08 m centered in the plane. Place the perimeter point of the circle on the negative horizontal axis of the sketch plane. The reason for this is that the model will later be quartered such that only the upper-right quadrant of the part will be retained. By placing the perimeter point outside of this quadrant, we ensure that no redundant edges will persist afterwards. Dimension the radius of the circle, and modify the dimension to be 0.084 m. D. Click mouse button 2 to continue, and click Done in the prompt area. E. In the Edit Extrusion dialog box, choose the end condition Blind and extrude the solid a depth of 0.35 m. Flip the extrusion direction so that it is pointing toward the vessel, as shown in Figure W2–7. Click OK. W2.6
  • 7. Figure W2–7. Arrow direction for solid extrusion 20. From the main menu bar, select ShapeCutExtrude. Do the following: A. Select the end plane on the smaller pipe as the plane on which to sketch, as shown in Figure W2–8. F. Select the datum axis as the edge that will appear vertical and on the right. G. Sketch a circle of radius 0.04 m concentric with the circle representing the pipe. As before, place the perimeter point of the circle on the negative horizontal axis of the sketch plane. Dimension the radius of the circle, and modify the dimension to be 0.05 m. H. Click mouse button 2 to continue, and click Done in the prompt area. I. In the Edit Cut Extrusion dialog box, choose the end condition Blind and extrude the cut a depth of 0.528 m. The direction of extrusion is into the pipe, as shown in Figure W2–8. Click OK. W2.7
  • 8. Figure W2–8. Solid cut 21. From the main menu bar, select ShapeBlendRound/Fillet. Select the edge around the intersection as the edge to be rounded, as shown in Figure W2–9. Specify a fillet radius of 0.04 m. Figure W2–9. Rounded edge 22. Quarter the model as follows: A. From the main menu bar, select ShapeCutExtrude. J. Select the end face of the smaller pipe as the plane on which to sketch. K. Select the datum axis as the edge that will appear vertical and on the right. L. Using the Create Lines: Connected tool located in the upper right-hand corner of the Sketcher toolbox, sketch the series of connected lines shown in Figure W2–10. W2.8 Sketch plane Direction of extrusion Edge that will appear vertical and on the right Edge to be rounded
  • 9. M. In the Edit Cut Extrusion dialog box, choose the Through All end condition and the direction of extrusion into the pipe. Click OK. Figure W2–10. Cut profile The quarter symmetry model of the pipe intersection is shown in Figure W2–11. Figure W2–11. Final geometry 23. From the main menu bar, select FileSave to save your model in a model database file. You will continue building this model in subsequent workshops. W2.9 Because of how the perimeter points were placed, the edge of the fillet will be removed with this cut. This will facilitate structured meshing in a later workshop.