No edit summary
mNo edit summary
(40 intermediate revisions by one other user not shown)
Line 1: Line 1:
{{MOST}}
{{MOST-RepRap}}
What is [[3-D printing]]?
What is [[3-D printing]]?


1) Is there an existing demand for the part or product?
1) Is there an existing demand for the part or product?
   If No, then determine why the part should be created.
   If No, determine why the part should be created.
   If yes,  
   If yes, is there improved [http://www.ideo.com/about/ viability, feasibility, desirability] or [http://en.wikipedia.org/wiki/Triple_bottom_line sustainability] with [[3-D printing]]?  
    Is there improved [http://www.ideo.com/about/ viability, feasibility, desirability] or [http://en.wikipedia.org/wiki/Triple_bottom_line sustainability] with [[3-D printing]]?  


2) Is there an existing offering/part made by [https://www.solidconcepts.com/resources/white-papers/use-3d-printing-vs-traditional-manufacturing-production/ traditional manufacturing processes]?
2) Is there an existing offering/part made by [https://www.solidconcepts.com/resources/white-papers/use-3d-printing-vs-traditional-manufacturing-production/ traditional manufacturing processes]?
   If No, then determine why there is not an existing offering.
   If No, determine why there is not an existing offering.
   If Yes,  
   If Yes, is there a benefit to [[3-D printing]] the part? (e.g. [http://en.wikipedia.org/wiki/Complexity_paradox geometry complexity], [http://en.wikipedia.org/wiki/Mass_customization customization], [http://video.mit.edu/watch/3-d-printing-with-variable-densities-9753/ density], [http://en.wikipedia.org/wiki/Rapid_prototyping rapid prototyping], reduce [http://en.wikipedia.org/wiki/Lead_time lead times], or unique [http://www.matterhackers.com/3d-printer-filament-compare 3D printing material])?
      What are the benefits of 3D printing the part? (e.g. [http://en.wikipedia.org/wiki/Complexity_paradox geometry complexity], [http://en.wikipedia.org/wiki/Mass_customization customization], [http://video.mit.edu/watch/3-d-printing-with-variable-densities-9753/ density], [http://en.wikipedia.org/wiki/Rapid_prototyping rapid prototyping], reduce [http://en.wikipedia.org/wiki/Lead_time lead times], or unique [http://www.matterhackers.com/3d-printer-filament-compare 3D printing material])
   
   
3) Is it feasible to 3D print part?
3) Is it feasible to 3D print part?
   Is the the volume of part less than the [https://www.whiteclouds.com/3dpedia-index/build-envelope-3d-printers build envelope]?  
   Is the the volume of part less than the [https://www.whiteclouds.com/3dpedia-index/build-envelope-3d-printers build envelope]?  
  Maximum temperature range for part less than maximum temperature for printing material?


4) Is there an existing [http://en.wikipedia.org/wiki/Computer-aided_design CAD] Model or STL file for part?
  Is the maximum [http://en.wikipedia.org/wiki/Operating_temperature operating temperature] range for part less than [http://en.wikipedia.org/wiki/Glass_transition glass transition] temperature for printing [https://bootsindustries.com/portfolio-item/importance-of-good-filament/ filament]?
 
{| border="1" cellpadding="2"
!width="200"|Property
!width="150"|ABS
!width="150"|PLA
!width="150"|HDPE
|-
|Glass Transition Temperature || 100C || 50-60C || 80-110C
|-
|Extrusion Temperature || 210-230C || 160-220C || 130-190C
|-
|Melting Temperature || 200-230C || 120-190C || 190C
|}<ref name=Hamond> http://theseus32-kk.lib.helsinki.fi/bitstream/handle/10024/86198/Thesis%20final.pdf?sequence=1 </ref>
 
4) Is there an existing [http://en.wikipedia.org/wiki/Computer-aided_design CAD] Model or [http://en.wikipedia.org/wiki/STL_%28file_format%29 STL] file for part?
   Search CAD or 3D printing [http://reprap.org/wiki/Printable_part_sources repositories].
   Search CAD or 3D printing [http://reprap.org/wiki/Printable_part_sources repositories].


4) Determine and quantify necessary [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties], [https://www.asme.org/about-asme/standards standards], and [http://en.wikipedia.org/wiki/Mechanical_load loads] for part.
  Existing models can be used to influence design considerations.
  If there are no existing files, a new model must be created.
 
5) Determine and quantify necessary [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties], [https://www.asme.org/about-asme/standards standards], and [http://en.wikipedia.org/wiki/Mechanical_load loads] for part.
   Determine applicable [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties] (e.g. [http://simple.wikipedia.org/wiki/Tensile_strength Tensile Strength], [http://simple.wikipedia.org/wiki/Compressive_strength Compression Strength], [http://en.wikipedia.org/wiki/Flexural_strength Flexural Strength], [http://en.wikipedia.org/wiki/Izod_impact_strength_test Impact Strength], [http://en.wikipedia.org/wiki/Fatigue_limit Fatigue Limit], [http://en.wikipedia.org/wiki/Wear Wear Resistance], and [http://en.wikipedia.org/wiki/Stiffness Stiffness]).  
   Determine applicable [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties] (e.g. [http://simple.wikipedia.org/wiki/Tensile_strength Tensile Strength], [http://simple.wikipedia.org/wiki/Compressive_strength Compression Strength], [http://en.wikipedia.org/wiki/Flexural_strength Flexural Strength], [http://en.wikipedia.org/wiki/Izod_impact_strength_test Impact Strength], [http://en.wikipedia.org/wiki/Fatigue_limit Fatigue Limit], [http://en.wikipedia.org/wiki/Wear Wear Resistance], and [http://en.wikipedia.org/wiki/Stiffness Stiffness]).  
   Reference industry [https://www.asme.org/about-asme/standards standards] for the part (e.g. [http://en.wikipedia.org/wiki/ASTM_International ASTM International], [http://en.wikipedia.org/wiki/American_National_Standards_Institute ANSI], or [http://en.wikipedia.org/wiki/ASME ASME]).
   Reference industry [https://www.asme.org/about-asme/standards standards] for the part (e.g. [http://en.wikipedia.org/wiki/ASTM_International ASTM International], [http://en.wikipedia.org/wiki/American_National_Standards_Institute ANSI], or [http://en.wikipedia.org/wiki/ASME ASME]).


5) Prioritize necessary [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties], [https://www.asme.org/about-asme/standards standards], and [http://en.wikipedia.org/wiki/Mechanical_load loads] for part.
6) Prioritize necessary [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties], [https://www.asme.org/about-asme/standards standards], and [http://en.wikipedia.org/wiki/Mechanical_load loads] for part.
   Based on requirements for part, prioritize [http://simple.wikipedia.org/wiki/Tensile_strength Tensile Strength], [http://simple.wikipedia.org/wiki/Compressive_strength Compression Strength], [http://en.wikipedia.org/wiki/Flexural_strength Flexural Strength], [http://en.wikipedia.org/wiki/Izod_impact_strength_test Impact Strength], [http://en.wikipedia.org/wiki/Fatigue_limit Fatigue Limit], [http://en.wikipedia.org/wiki/Wear Wear Resistance], and [http://en.wikipedia.org/wiki/Stiffness Stiffness].
   Based on requirements for part, prioritize [http://simple.wikipedia.org/wiki/Tensile_strength Tensile Strength], [http://simple.wikipedia.org/wiki/Compressive_strength Compression Strength], [http://en.wikipedia.org/wiki/Flexural_strength Flexural Strength], [http://en.wikipedia.org/wiki/Izod_impact_strength_test Impact Strength], [http://en.wikipedia.org/wiki/Fatigue_limit Fatigue Limit], [http://en.wikipedia.org/wiki/Wear Wear Resistance], and [http://en.wikipedia.org/wiki/Stiffness Stiffness].
   Use prioritized list of [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties] to influence design considerations and [http://en.wikipedia.org/wiki/Finite_element_method FEA] simulation.
   Use prioritized list of [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties] to influence design considerations and [http://en.wikipedia.org/wiki/Finite_element_method FEA] simulation.


6) Model existing part or [http://en.wikipedia.org/wiki/Prototype prototype].  
7) Model existing part or [http://en.wikipedia.org/wiki/Prototype prototype].  
   Use [http://en.wikipedia.org/wiki/Comparison_of_computer-aided_design_editors/ Comparison of CAD Modeling ] to determine best [http://en.wikipedia.org/wiki/Computer-aided_design CAD] Modeling software.
   Use [http://en.wikipedia.org/wiki/Comparison_of_computer-aided_design_editors Comparison of CAD Modeling ] softwares to determine the most suitable package.
   [[OpenSCAD]], [http://www.appropedia.org/FreeCAD FeeCAD], and [http://www.appropedia.org/Blender Blender] are the most commonly used [[Open source engineering software]] packages.
   [[OpenSCAD]], [http://www.appropedia.org/FreeCAD FeeCAD], and [http://www.appropedia.org/Blender Blender] are the most commonly used [[Open source engineering software]] packages.


   Save an [http://en.wikipedia.org/wiki/IGES IGES] file for [http://en.wikipedia.org/wiki/Finite_element_method Finite Element Analysis].
   Save an [http://en.wikipedia.org/wiki/IGES IGES] file or a [http://en.wikipedia.org/wiki/Parasolid Parasolid] for [http://en.wikipedia.org/wiki/Finite_element_method Finite Element Analysis].
   Save a [http://en.wikipedia.org/wiki/STL_%28file_format%29 STL] file for the [http://edutechwiki.unige.ch/en/Slicers_and_user_interfaces_for_3D_printers slicing software].
   Save a [http://en.wikipedia.org/wiki/STL_%28file_format%29 STL] file for the [http://edutechwiki.unige.ch/en/Slicers_and_user_interfaces_for_3D_printers slicing software].


 
8) Conduct Finite Element Analysis ([http://en.wikipedia.org/wiki/Finite_element_method FEA]).  
 
7) Conduct Finite Element Analysis ([http://en.wikipedia.org/wiki/Finite_element_method FEA]).  
   Select from [http://en.wikipedia.org/wiki/List_of_finite_element_software_packages List of FEA Software Packages]
   Select from [http://en.wikipedia.org/wiki/List_of_finite_element_software_packages List of FEA Software Packages]
   Review basics for [[Finite element analysis: MOST]]
   Review basics for [[Finite element analysis: MOST]]
   [http://en.wikipedia.org/wiki/Ansys/ ANSYS] and [http://en.wikipedia.org/wiki/Abaqus/ Abaqus] are two commonly used [http://en.wikipedia.org/wiki/Finite_element_method FEA] software packages.
   [http://en.wikipedia.org/wiki/Ansys/ ANSYS] and [http://en.wikipedia.org/wiki/Abaqus/ Abaqus] are two commonly used [http://en.wikipedia.org/wiki/Finite_element_method FEA] software packages.


   Insert [http://en.wikipedia.org/wiki/Young%27s_modulus Young's Modulus] and [http://en.wikipedia.org/wiki/Poisson%27s_ratio Poisson's Ratio] for material used.
   Determine type of analysis. (e.g. [http://www.ansys.com/Products/Simulation+Technology/Structural+Analysis structural], [http://en.wikipedia.org/wiki/Thermal_analysis thermal], [http://en.wikipedia.org/wiki/Computational_fluid_dynamics computational fluid dynamics] (CFD), or electrical)
  Select [http://www.comsol.com/blogs/meshing-your-geometry-various-element-types/ element type].
  Define [http://en.wikipedia.org/wiki/Mechanical_load loads], constants, and [http://en.wikipedia.org/wiki/Boundary_element_method boundary limits].
  Input [http://en.wikipedia.org/wiki/Young%27s_modulus Young's Modulus] and [http://en.wikipedia.org/wiki/Poisson%27s_ratio Poisson's Ratio], and [http://en.wikipedia.org/wiki/Stress%E2%80%93strain_curve stress-strain] data for material.
  Create a [http://en.wikipedia.org/wiki/Mesh_generation mesh].
  Refine [http://en.wikipedia.org/wiki/Mesh_generation mesh] using iterative process of [ftp://ftp.demec.ufpr.br/disciplinas/TM310/livro/Finite%20Element%20Analysis,%20Theory%20and%20application%20with%20ANSYS,%20.pdf FEA theory].
  Run simulation.
  Output data points graphically or numerically.


8) Determine if part should be 3D printed based on ([http://en.wikipedia.org/wiki/Finite_element_method FEA]).
  Finite element analysis requires an in-depth knowledge of [ftp://ftp.demec.ufpr.br/disciplinas/TM310/livro/Finite%20Element%20Analysis,%20Theory%20and%20application%20with%20ANSYS,%20.pdf FEA theory] and significant practice using [http://en.wikipedia.org/wiki/List_of_finite_element_software_packages Software Packages].
  It is likely necessary to take courses and consult experts in the field to become proficient.
 
9) Determine if part should be 3D printed based on ([http://en.wikipedia.org/wiki/Finite_element_method FEA]).
    
    
   Does the part fail as anticipated?
   Does the part fail as anticipated?
Line 48: Line 74:
   Should the part be redesigned before printing?
   Should the part be redesigned before printing?


9) Select the most appropriate [http://www.matterhackers.com/3d-printer-filament-compare 3D printing material].  
10) Select the most appropriate [http://www.matterhackers.com/3d-printer-filament-compare 3D printing filament].  
   [http://en.wikipedia.org/wiki/Polylactic_acid PLA], [http://en.wikipedia.org/wiki/Nylon Nylon], and [http://en.wikipedia.org/wiki/Polycarbonate Polycarbonate] are recommended.  
   [http://en.wikipedia.org/wiki/Polylactic_acid PLA], [http://en.wikipedia.org/wiki/Nylon Nylon], and [http://en.wikipedia.org/wiki/Polycarbonate Polycarbonate] are recommended.  
   [http://www.appropedia.org/Mechanical_Properties_of_Components_Fabricated_with_Open-Source_3-D_Printers_Under_Realistic_Environmental_Conditions Mechanical properties] of components printed with [http://en.wikipedia.org/wiki/Polylactic_acid PLA] and [http://en.wikipedia.org/wiki/Acrylonitrile_butadiene_styrene ABS].
   Determine [http://www.appropedia.org/Mechanical_Properties_of_Components_Fabricated_with_Open-Source_3-D_Printers_Under_Realistic_Environmental_Conditions Mechanical properties] of components printed with [http://en.wikipedia.org/wiki/Polylactic_acid PLA] and [http://en.wikipedia.org/wiki/Acrylonitrile_butadiene_styrene ABS].
  (Make table with parameters and references for PLA, Nylon, Polycarbonate).
  (Make table with parameters and references for PLA, Nylon, Polycarbonate).


10) Import CAD file into [http://edutechwiki.unige.ch/en/Slicers_and_user_interfaces_for_3D_printers slicing software].
11) Import CAD file into [http://edutechwiki.unige.ch/en/Slicers_and_user_interfaces_for_3D_printers slicing software].
   [http://software.ultimaker.com/ Cura] is the most commonly used slicing software.     
   [http://software.ultimaker.com/ Cura] is the most commonly used slicing software.     
   [http://slic3r.org/ slic3r] is an alternative.  [https://github.com/alexrj/Slic3r/wiki/Documentation Useful documentation for getting started with Slic3r].  
   [http://slic3r.org/ slic3r] is an alternative.  [https://github.com/alexrj/Slic3r/wiki/Documentation Useful documentation for getting started with Slic3r].  
   [[RepRap printing protocol: MOST]] contains information on preparing your file for printing.
   [[RepRap printing protocol: MOST]] contains information on preparing your file for printing.


11) Determine optimal printing build parameters in slicing software with regard to necessary properties, standards and loads.
12) Determine optimal printing build parameters in slicing software with regard to necessary [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties], [https://www.asme.org/about-asme/standards standards], and [http://en.wikipedia.org/wiki/Mechanical_load loads].
        
        
(e.g. orientation, fill density, fill pattern, layer thickness, bead width, deposition temperature, deposition speed raster angle, etc.)
(e.g. orientation, fill density, fill pattern, layer thickness, bead width, deposition temperature, deposition speed, raster angle, etc.)
    
    
     [https://www.youtube.com/watch?v=r5Yz04185Es How Does Build Orientation Affect a 3D Printed Part?]
     [https://www.youtube.com/watch?v=r5Yz04185Es How Does Build Orientation Affect a 3D Printed Part?]
Line 68: Line 94:
     [http://manual.slic3r.org/simple-mode/simple-mode Silc3r Print Settings] contains information on settings for Layer Height, Perimeters, Fill Density, Fill Pattern, Support Material, Speed, Brim, Sequential Printing, Filament Settings, & Printer Settings
     [http://manual.slic3r.org/simple-mode/simple-mode Silc3r Print Settings] contains information on settings for Layer Height, Perimeters, Fill Density, Fill Pattern, Support Material, Speed, Brim, Sequential Printing, Filament Settings, & Printer Settings


12) Export [http://en.wikipedia.org/wiki/G-code G-Code] from slicing software and import [http://en.wikipedia.org/wiki/G-code G-Code] file into 3D printing software.
13) Export [http://en.wikipedia.org/wiki/G-code G-Code] from slicing software and import [http://en.wikipedia.org/wiki/G-code G-Code] file into 3D printing software.
     [http://en.wikipedia.org/wiki/G-code G-Code] is the file type (.gcode) needed to print.
     [http://en.wikipedia.org/wiki/G-code G-Code] is the file type (.gcode) needed to print.


13) Select printing software.
14) Select printing software.
     [http://reprap.org/wiki/Repetier-Host Repetier-Host] and [http://reprap.org/wiki/Printrun Pronterface] are recommended.
     [http://reprap.org/wiki/Repetier-Host Repetier-Host] and [http://reprap.org/wiki/Printrun Pronterface] are recommended.


Line 77: Line 103:
     [http://www.plasticscribbler.com/tutorial/getting-started/item/21-getting-started-with-pronterface#.VUBImyEVgqw Pronterface Basics]
     [http://www.plasticscribbler.com/tutorial/getting-started/item/21-getting-started-with-pronterface#.VUBImyEVgqw Pronterface Basics]
      
      
14) Ensure printer is [http://reprap.org/wiki/Calibration calibrated].
15) Ensure printer is [http://reprap.org/wiki/Calibration calibrated].
     [http://reprap.org/wiki/Calibration Calibration] will depend on the type of 3D printer used.  
     [http://reprap.org/wiki/Calibration Calibration] will depend on the type of 3D printer used.  
     [https://www.youtube.com/watch?v=c3QD4-nFQL4 Calibration Tutorial]
     [https://www.youtube.com/watch?v=c3QD4-nFQL4 Calibration Tutorial]
     [[MOST Delta Auto Bed Leveling]]
     [[MOST Delta Auto Bed Leveling]]


15) Print part.
16) Print part.
     [[RepRap printing protocol: MOST]]
     [[RepRap printing protocol: MOST]]
     [[3D_Printing_Basics:MOST]]
     [[3D_Printing_Basics:MOST]]
Line 88: Line 114:
     [https://innovationstation.utexas.edu/tip-design Tips for Designing 3D Printed Parts]
     [https://innovationstation.utexas.edu/tip-design Tips for Designing 3D Printed Parts]


16) Test printed part to failure.
17) Test printed part to failure.
     Determine appropriate [http://en.wikipedia.org/wiki/Failure_analysis failure analysis] method (e.g. [http://en.wikipedia.org/wiki/Tensile_testing Tensile], [http://www.instron.com/en-us/our-company/library/test-types/compression-test?region=North%20America compression test], [http://www.instron.com/en-us/our-company/library/glossary/t/torsion-test Torsion Test], or [http://en.wikipedia.org/wiki/Rockwell_scale Rockwell Hardness].
     Determine appropriate [http://en.wikipedia.org/wiki/Failure_analysis failure analysis] method (e.g. [http://en.wikipedia.org/wiki/Tensile_testing Tensile], [http://www.instron.com/en-us/our-company/library/test-types/compression-test?region=North%20America compression test], [http://www.instron.com/en-us/our-company/library/glossary/t/torsion-test Torsion Test], or [http://en.wikipedia.org/wiki/Rockwell_scale Rockwell Hardness].


(Describe testing process.  Describe basic tensile test, compression test)
     [[Tensile test protocol: MOST]]
     [[Tensile test protocol: MOST]]


15) Does part fail as expected in FEA simulation?
18) Does part fail as expected in [http://en.wikipedia.org/wiki/Finite_element_method FEA] simulation?
     If No, reassess printing build parameters.
     If No, reassess printing build parameters.
     If Yes, continue to next step.
     If Yes, continue to next step.


16) Does part meet necessary mechanical properties, standards, and loads for part?
19) Does part meet necessary [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties], [https://www.asme.org/about-asme/standards standards], and [http://en.wikipedia.org/wiki/Mechanical_load loads] for part?
     If No, reassess CAD design and printing parameters.
     If No, reassess CAD design and printing parameters.
     If Yes, compare 3D printed part to existing parts on cost, mechanical properties, etc.
     If Yes, compare 3D printed part to existing offerings.


17) Quantify and qualify why 3D-Printed product is better than existing offerings.
20) Cost Analysis
 
        The equation below can be used to determine the cost of printing a part:
18) Cost Analysis
       (Op) = (E)(Ce) + 1/1000(mf)(Cf) <ref name=Wittbrodt> http://www.academia.edu/4067796/Life-Cycle_Economic_Analysis_of_Distributed_Manufacturing_with_Open-Source_3-D_Printers </ref>
    (Compare costs of 3D-printed part to available offerings)
 
    The equation below can be used to determine the cost of printing a part:
       (Op) = (E)(Ce) + 1000(mf)(Cf) <ref name=Wittbrodt> http://www.academia.edu/4067796/Life-Cycle_Economic_Analysis_of_Distributed_Manufacturing_with_Open-Source_3-D_Printers </ref>
        
        
       Op: Operating costs for the RepRap-produced products
       Op: Operating costs for the RepRap-produced products
       E:  Energy use (kW-hr)
       E:  Energy use (kW-hr)
       Ce: Cost of filament (US$/kg)
       Ce: Cost of energy (US$/kw-hr)
       mf: mass consumed (g)
       mf: mass consumed (g)  
      Cf: Cost of filament (US$/kg)
 
21) Quantify why 3D-Printed product is better than existing offerings.
    Compare manufacturing cost, time, energy, and [http://www.engineershandbook.com/Materials/mechanical.htm mechanical properties].
 
22) Qualify why 3D-Printed product is better than existing offerings.
    What are the social considerations?
    Are there other parameters that can be used to qualify 3D printed part?


19) Continue iterative design process to optimize part for end user.
23) Continue iterative design process to optimize part for end user.




== See also ==
== See also ==


* [[]]
* [[Bike Pedal Example of Methodology for 3D-Printed Part Design]]
* [[]]
* [[]]


== External links ==
* []


===References===
===References===
<references/>
<references/>


Other references:
{{stub}}


[[Category:]]
 
[[Category:]]
[[Category:MOST methods]]

Revision as of 19:14, 1 May 2015

What is 3-D printing?

1) Is there an existing demand for the part or product?

  If No, determine why the part should be created.
  If yes, is there improved viability, feasibility, desirability or sustainability with 3-D printing? 

2) Is there an existing offering/part made by traditional manufacturing processes?

  If No, determine why there is not an existing offering.
  If Yes, is there a benefit to 3-D printing the part? (e.g. geometry complexity, customization, density, rapid prototyping, reduce lead times, or unique 3D printing material)?

3) Is it feasible to 3D print part?

  Is the the volume of part less than the build envelope? 
  Is the maximum operating temperature range for part less than glass transition temperature for printing filament?
Property ABS PLA HDPE
Glass Transition Temperature 100C 50-60C 80-110C
Extrusion Temperature 210-230C 160-220C 130-190C
Melting Temperature 200-230C 120-190C 190C

[1]

4) Is there an existing CAD Model or STL file for part?

  Search CAD or 3D printing repositories.
  Existing models can be used to influence design considerations.
  If there are no existing files, a new model must be created.

5) Determine and quantify necessary mechanical properties, standards, and loads for part.

  Determine applicable mechanical properties (e.g. Tensile Strength, Compression Strength, Flexural Strength, Impact Strength, Fatigue Limit, Wear Resistance, and Stiffness). 
  Reference industry standards for the part (e.g. ASTM International, ANSI, or ASME).

6) Prioritize necessary mechanical properties, standards, and loads for part.

  Based on requirements for part, prioritize Tensile Strength, Compression Strength, Flexural Strength, Impact Strength, Fatigue Limit, Wear Resistance, and Stiffness.
  Use prioritized list of mechanical properties to influence design considerations and FEA simulation.

7) Model existing part or prototype.

  Use Comparison of CAD Modeling  softwares to determine the most suitable package.
  OpenSCAD, FeeCAD, and Blender are the most commonly used Open source engineering software packages.
  Save an IGES file or a Parasolid for Finite Element Analysis.
  Save a STL file for the slicing software.

8) Conduct Finite Element Analysis (FEA).

  Select from List of FEA Software Packages
  Review basics for Finite element analysis: MOST
  ANSYS and Abaqus are two commonly used FEA software packages.
  Determine type of analysis. (e.g. structural, thermal, computational fluid dynamics (CFD), or electrical)
  Select element type.
  Define loads, constants, and boundary limits.
  Input Young's Modulus and Poisson's Ratio, and stress-strain data for material.
  Create a mesh.
  Refine mesh using iterative process of FEA theory.
  Run simulation. 
  Output data points graphically or numerically.
  Finite element analysis requires an in-depth knowledge of FEA theory and significant practice using Software Packages.
  It is likely necessary to take courses and consult experts in the field to become proficient. 
  

9) Determine if part should be 3D printed based on (FEA).

  Does the part fail as anticipated?
  Does the upper-limit of failure meet the required mechanical properties, standards, and loads?
  Should the part be redesigned before printing?

10) Select the most appropriate 3D printing filament.

  PLA, Nylon, and Polycarbonate are recommended. 
  Determine Mechanical properties of components printed with PLA and ABS.
(Make table with parameters and references for PLA, Nylon, Polycarbonate).

11) Import CAD file into slicing software.

  Cura is the most commonly used slicing software.     
  slic3r is an alternative.  Useful documentation for getting started with Slic3r. 
  RepRap printing protocol: MOST contains information on preparing your file for printing.

12) Determine optimal printing build parameters in slicing software with regard to necessary mechanical properties, standards, and loads.

(e.g. orientation, fill density, fill pattern, layer thickness, bead width, deposition temperature, deposition speed, raster angle, etc.)

    How Does Build Orientation Affect a 3D Printed Part?
    Cura - Fill Density 
   
    Cura User Manual contains information on settings for layer height, shell thickness, enable retraction, bottom/top thickness, fill density, print spreed, print temperature, support type, platform adhesion type, filament diameter, and filament flow].
    Silc3r Print Settings contains information on settings for Layer Height, Perimeters, Fill Density, Fill Pattern, Support Material, Speed, Brim, Sequential Printing, Filament Settings, & Printer Settings

13) Export G-Code from slicing software and import G-Code file into 3D printing software.

   G-Code is the file type (.gcode) needed to print.

14) Select printing software.

   Repetier-Host and Pronterface are recommended.
   Repetier-Host Documentation
   Pronterface Basics
   

15) Ensure printer is calibrated.

   Calibration will depend on the type of 3D printer used. 
   Calibration Tutorial
   MOST Delta Auto Bed Leveling

16) Print part.

   RepRap printing protocol: MOST
   3D_Printing_Basics:MOST
   MOST_Reprap_Printing_Lessons
   Tips for Designing 3D Printed Parts

17) Test printed part to failure.

   Determine appropriate failure analysis method (e.g. Tensile, compression test, Torsion Test, or Rockwell Hardness.
   Tensile test protocol: MOST

18) Does part fail as expected in FEA simulation?

   If No, reassess printing build parameters.
   If Yes, continue to next step.

19) Does part meet necessary mechanical properties, standards, and loads for part?

   If No, reassess CAD design and printing parameters.
   If Yes, compare 3D printed part to existing offerings.

20) Cost Analysis

       The equation below can be used to determine the cost of printing a part:
      (Op) = (E)(Ce) + 1/1000(mf)(Cf) [2]
      
      Op: Operating costs for the RepRap-produced products
      E:  Energy use (kW-hr)
      Ce: Cost of energy (US$/kw-hr)
      mf: mass consumed (g)   
      Cf: Cost of filament (US$/kg)

21) Quantify why 3D-Printed product is better than existing offerings.

   Compare manufacturing cost, time, energy, and mechanical properties.

22) Qualify why 3D-Printed product is better than existing offerings.

   What are the social considerations?
   Are there other parameters that can be used to qualify 3D printed part?

23) Continue iterative design process to optimize part for end user.


See also


References

Cookies help us deliver our services. By using our services, you agree to our use of cookies.