Title: Tolerance Design
1Tolerance Design
2Design Specifications and Tolerance
- Develop from quest for production quality and
efficiency - Early tolerances support designs basic function
- Mass production brought interchangeability
- Integrate design and mfg tolerances
3Definition
- The total amount by which a given dimension may
vary, or the difference between the limits - - ANSI Y14.5M-1982(R1988) Standard R1.4
Source Tolerance Design, p 10
4Affected Areas
Engineering Tolerance
Product Design
Quality Control
Manufacturing
5Questions
- Can customer tolerances be accommodated by
product? - Can product tolerances be accommodated by the
process?
6Tolerance vs. Manufacturing Process
- Nominal tolerances for steel
- Tighter tolerances gt increase cost
7Geometric Dimensions
- Accurately communicates the function of part
- Provides uniform clarity in drawing delineation
and interpretation - Provides maximum production tolerance
8Tolerance Types
- Size
- Form
- Location
- Orientation
9Size Tolerances
10Form Tolerances
11Location Tolerances
12Orientation Tolerances
13Tolerance Buildup
14Statistical Principles
- Measurement of central tendency
- Mean
- Median
- mode
- Measurement of variations
- Range
- Variance
- Standard deviation
15Probability
- Probability
- Likelihood of occurrence
- Capability
- Relate the mean and variability of the process or
machine to the permissible range of dimensions
allowed by the specification or tolerance.
16Tolerance SPC Charting
Figure Source Tolerance Design, p 125
17Tolerance Analysis Methods
- Worst-Case analysis
- Root Sum of Squares
- Taguchi tolerance design
18Initial Tolerance Design
Initial Tolerance Design
Figure Source Tolerance Design, p 93
19References
- Handbook of Product Design for Manufacturing A
Practical Guide to Low-Cost Production, James C.
Bralla, Ed. in Chief McGraw-Hill, 1986 - Manufacturing Processes Reference Guide, R.H.
Todd, D.K. Allen L. Alting Industrial Press
Inc., 1994 - Standard tolerances for mfg processes
- Machinerys Handbook Industrial Press
- Standard Handbook of Machine Design McGraw-Hill
- Standard Handbook of Mechanical Engineers
McGraw-Hill - Design of Machine Elements Spotts, Prentic Hall
Figure Source Tolerance Design, p 92-93
20Worst-Case Methodology
- Extreme or most liberal condition of tolerance
buildup - tolerances must be assigned to the component
parts of the mechanism in such a manner that the
probability that a mechanism will not function is
zero - - Evans (1974)
21Worst-Case Analysis
- Ne Te gt Maximum assembly envelope
- Ne - Te gt Minimum assembly envelope
Source Six sigma mechanical design
tolerancing, p 13-14.
22Assembly gaps
23Worst Case Scenario Example
Source Tolerance Design, pp 109-111
24Worst Case Scenario Example
Source Tolerance Design, pp 109-111
25Worst Case Scenario Example
- Largest gt 0.05 0.093 0.143
- Smallest gt 0.05 - 0.093 -0.043
Source Tolerance Design, pp 109-111
26Non-Linear Tolerances
Wource Six sigma mechanical design
tolerancing, p 104
27Root Sum-of-Square
- RSS
- Assumes normal distribution behavior
Wource Six sigma mechanical design
tolerancing, p 16
28RSS method
- Assembly tolerance stack equation
Wource Six sigma mechanical design
tolerancing, p 128
29Pool Variance in RSS
Wource Six sigma mechanical design
tolerancing, p 128
30Probability
Wource Six sigma mechanical design
tolerancing, p 128
31Probability for Limits
Wource Six sigma mechanical design
tolerancing, p 128
32Dynamic RSS
Wource Six sigma mechanical design
tolerancing, p 128
33Nonlinear RSS
Wource Six sigma mechanical design
tolerancing, p 128
34RSS Example
- Largest gt 0.05 0.051 0.101
- Smallest gt 0.05 - 0.051 -0.001
Wource Six sigma mechanical design
tolerancing, p 128
35Taguchi Method
Input from the voice of the customer and QFD
processes
Select proper quality-loss function for the design
Determine customer tolerance values for terms in
Quality Loss Function
Determine cost to business to adjust
Calculate Manufacturing Tolerance
Proceed to tolerance design
Wource Six sigma mechanical design
tolerancing, p 21
36Taguchi
- Voice of customer
- Quality function deployment
- Inputs from parameter design
- Optimum control-factor set points
- Tolerance estimates
- Initial material grades
Wource Six sigma mechanical design
tolerancing, p 22
37Quality Loss Function
- Identify customer costs for intolerable
performance - Quadratic quality loss function
Wource Six sigma mechanical design
tolerancing, p 208
38Cost of Off Target and Sensitivity
- Cost to business to adjust off target performance
- Sensitivity, b
Wource Six sigma mechanical design
tolerancing, p 226-227
39Manufacturing Tolerance
40Summary
- Importance of effective tolerances
- Tolerance Design Approaches
- Worst-Case analysis
- Root Sum of Squares
- Taguchi tolerance method
- Continual process
- Involvement of multi-disciplines
41Credits
- This module is intended as a supplement to design
classes in mechanical engineering. It was
developed at The Ohio State University under the
NSF sponsored Gateway Coalition (grant
EEC-9109794). Contributing members include - Gary Kinzel. Project supervisor
- Phuong Pham.. ... Primary author
Reference Six Sigma Mechanical Design
Tolerancing, Harry, Mikel J. and Reigle
Stewart, Motorola Inc. , 1988. Creveling, C.M.,
Tolerance Design, Addison-Wesley, Reading,
1997. Wade, Oliver R., Tolerance Control in
Design and Manufacturing, Industrial Press
Inc., New York, 1967.
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