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Geometric dimensioning and tolerancing

Geometric dimensioning and tolerancing (GD&T) is a system for defining and communicating engineering tolerances via a symbolic language on engineering drawings and computer-generated 3D models that describes a physical object's nominal geometry and the permissible variation thereof. GD&T is used to define the nominal (theoretically perfect) geometry of parts and assemblies, the allowable variation in size, form, orientation, and location of individual features, and how features may vary in relation to one another such that a component is considered satisfactory for its intended use. Dimensional specifications define the nominal, as-modeled or as-intended geometry, while tolerance specifications define the allowable physical variation of individual features of a part or assembly.

Example of true position geometric control defined by basic dimensions and datum features

There are several standards available worldwide that describe the symbols and define the rules used in GD&T. One such standard is American Society of Mechanical Engineers (ASME) Y14.5. This article is based on that standard. Other standards, such as those from the International Organization for Standardization (ISO) describe a different system which has some nuanced differences in its interpretation and rules (see GPS&V). The Y14.5 standard provides a fairly complete set of rules for GD&T in one document. The ISO standards, in comparison, typically only address a single topic at a time. There are separate standards that provide the details for each of the major symbols and topics below (e.g. position, flatness, profile, etc.). BS 8888 provides a self-contained document taking into account a lot of GPS&V standards.

Origin edit

The origin of GD&T is credited to Stanley Parker, who developed the concept of "true position". While little is known about Parker's life, it is known that he worked at the Royal Torpedo Factory in Alexandria, West Dunbartonshire, Scotland. His work increased production of naval weapons by new contractors.

In 1940, Parker published Notes on Design and Inspection of Mass Production Engineering Work, the earliest work on geometric dimensioning and tolerancing.[1] In 1956, Parker published Drawings and Dimensions, which became the basic reference in the field.[1]

Fundamental concepts edit

Dimensions edit

A dimension is defined in ASME Y14.5 as "a numerical value(s) or mathematical expression in appropriate units of measure used to define the form, size, orientation, or location, of a part or feature."[2]: 3  Special types of dimensions include basic dimensions (theoretically exact dimensions) and reference dimensions (dimensions used to inform, not define a feature or part).

Units of measure edit

The units of measure in a drawing that follows GD&T can be selected by the creator of the drawing. Most often drawings are standardized to either SI linear units, millimeters (denoted "mm"), or US customary linear units, decimal inches (denoted "IN"). Dimensions can contain only a number without units if all dimensions are the same units and there is a note on the drawing that clearly specifies what the units are.[2]: 8 

Angular dimensions can be expressed in decimal degrees or degrees, minutes, and seconds.

Tolerances edit

Every feature on every manufactured part is subject to variation, therefore, the limits of allowable variation must be specified. Tolerances can be expressed directly on a dimension by limits, plus/minus tolerances, or geometric tolerances, or indirectly in tolerance blocks, notes, or tables.

Geometric tolerances are described by feature control frames, which are rectangular boxes on a drawing that indicate the type of geometric control, tolerance value, modifier(s) and/or datum(s) relevant to the feature. The type of tolerances used with symbols in feature control frames can be:

  1. equal bilateral
  2. unequal bilateral
  3. unilateral
  4. no particular distribution (a "floating" zone)

Tolerances for the profile symbols are equal bilateral unless otherwise specified, and for the position symbol tolerances are always equal bilateral. For example, the position of a hole has a tolerance of .020 inches. This means the hole can move ±.010 inches, which is an equal bilateral tolerance. It does not mean the hole can move +.015/−.005 inches, which is an unequal bilateral tolerance. Unequal bilateral and unilateral tolerances for profile are specified by adding further information to clearly show this is what is required.

Datums and datum references edit

A datum is a theoretically exact plane, line, point, or axis.[2]: 3  A datum feature is a physical feature of a part identified by a datum feature symbol and corresponding datum feature triangle, e.g.,

 

These are then referred to by one or more 'datum references' which indicate measurements that should be made with respect to the corresponding datum feature. The datum reference frame can describe how the part fits or functions.

Purpose & rules edit

The purpose of GD&T is to describe the engineering intent of parts and assemblies.[2] GD&T can more accurately define the dimensional requirements for a part, allowing over 50% more tolerance zone than coordinate (or linear) dimensioning in some cases. Proper application of GD&T will ensure that the part defined on the drawing has the desired form, fit (within limits) and function with the largest possible tolerances. GD&T can add quality and reduce cost at the same time through producibility.

According to ASME Y14.5, the fundamental rules of GD&T are as follows,[2]: 7–8 

  1. All dimensions must have a tolerance. Plus and minus tolerances may be applied directly to dimensions or applied from a general tolerance block or general note. For basic dimensions, geometric tolerances are indirectly applied in a related feature control frame. The only exceptions are for dimensions marked as minimum, maximum, stock or reference.
  2. Dimensions and tolerancing shall fully define each feature. Measurement directly from the drawing or assuming dimensions is not allowed except for special undimensioned drawings.
  3. A drawing should have the minimum number of dimensions required to fully define the end product. The use of reference dimensions should be minimized.
  4. Dimensions should be applied to features and arranged to represent the function and mating relationship of the part. There should only be one way to interpret dimensions.
  5. Part geometry should be defined without explicitly specifying manufacturing methods.
  6. If dimensions are required during manufacturing but not the final geometry (due to shrinkage or other causes) they should be marked as non-mandatory.
  7. Dimensions should be arranged for maximum readability and should be applied to visible lines in true profiles.
  8. When geometry is normally controlled by gage sizes or by code (e.g. stock materials), the dimension(s) shall be included with the gage or code number in parentheses following the dimension.
  9. Angles of 90° are assumed when lines (including center lines) are shown at right angles, but no angle is specified.
  10. Basic 90° angles are assumed where center lines of features in a pattern or surfaces shown at right angles on a 2D orthographic drawing are located or defined by basic dimensions and no angle is specified.
  11. A basic dimension of zero is assumed where axes, center planes, or surfaces are shown coincident on a drawing, and the relationship between features is defined by geometric tolerances.
  12. Dimensions and tolerances are valid at 20 °C (68 °F) and 101.3 kPa (14.69 psi) unless stated otherwise.
  13. Unless explicitly stated, dimensions and tolerances only apply in a free-state condition.
  14. Unless explicitly stated, tolerances apply to the full length, width, and depth of a feature.
  15. Dimensions and tolerances only apply at the level of the drawing where specified. It is not mandatory that they apply at other levels (such as an assembly drawing).
  16. Coordinate systems shown on drawings should be right-handed. Each axis should be labeled and the positive direction should be shown.

Symbols edit

List of geometric characteristics edit

Geometric characteristic reference chart[2]
Application Type of control Characteristic Symbol Unicode
character
Relevant feature Virtual condition affected References datum Modified by Affected by
Surface Of size Bonus Shift
Individual features Form Straightness[3]
 

U+23E4
Yes Yes Of size[a] No Of size[a] No[c] [d] No
Flatness[4]
 

U+23E5
Yes No No No No No[c] No No
Circularity[4]
 

U+25CB
Yes No No No No No[c] No No
Cylindricity
 

U+232D
Yes No No No No No[c] No No
Individual or related features Profile Profile of a line
 

U+2312
Yes No No Yes[e] No No[c] No Datum, [b]
Profile of a surface
 

U+2313
Yes No No Yes[e] No No[c] No Datum, [b]
Related features Orientation Perpendicularity
 

U+27C2
Yes Yes Of size[a] Yes Of size[a] No[c] [d] Datum, [b]
Angularity
 

U+2220
Yes Yes Of size[a] Yes Of size[a] No[c] [d] Datum, [b]
Parallelism
 

U+2225
Yes Yes Of size[a] Yes Of size[a] No[c] [d] Datum, [b]
Location Symmetry[f][g]
 

U+232F
No Yes Yes Yes No No No No
Position
 

U+2316
No Yes Yes Yes Yes Yes [d] Datum, [b]
Concentricity[f]
 

U+25CE
No Yes Yes Yes No No[c] No No
Run-out Circular run-out
 

U+2197
Yes Yes Of size[a] Yes No No[c] No No
Total run-out
 

U+2330
Yes Yes Of size[a] Yes No No[c] No No
  1. ^ a b c d e f g h i j When applied to a feature of size.
  2. ^ a b c d e f g When a datum feature of size is referenced with the maximum material condition modifier.
  3. ^ a b c d e f g h i j k l Automatically[b]
  4. ^ a b c d e When an maximal material condition modifier is used.
  5. ^ a b Can also be used as a form control without a datum reference.
  6. ^ a b In the 2018 revision, both concentricity and symmetry were eliminated and are no longer supported.
  7. ^ The symmetry symbol's characteristics were not included in the version of the chart that this chart is derived from. The symmetry symbol was dropped from the Y14.5M standard around 1982 and re-added around 1994.

List of modifiers edit

The following table shows only some of the more commonly used modifiers in GD&T. It is not an exhaustive list.

Symbols used in a "feature control frame" to specify a feature's description, tolerance, modifier and datum references
Symbol Unicode
character
Modifier Definition[2]: 2–7  Notes
 

U+24BB
Free state "The condition of a part free of applied forces" Applies only when part is otherwise restrained
 

U+24C1
Least material condition (LMC) "The condition in which a feature of size contains the least amount of material within the stated limits of size" Useful to maintain minimum wall thickness
 

U+24C2
Maximum material condition (MMC) "The condition in which a feature of size contains the maximum amount of material within the stated limits of size" Provides bonus tolerance only for a feature of size
 

U+24C5
Projected tolerance zone Useful on threaded holes for long studs
 

U+24C8
Regardless of feature size (RFS) "Indicates a geometric tolerance applies at any increment of size of the actual mating envelope of the feature of size" Not part of the 1994 version. See para. A5, bullet 3. Also para. D3. Also, Figure 3-8.
 

U+24C9
Tangent plane "A plane that contacts the high points of the specified feature surface" Useful for interfaces where form is not required
 
Continuous feature Identifies "a group of features of size where there is a requirement that they be treated geometrically as a single feature of size" Identifies a group of features that should be "treated geometrically as a single feature"
 
Statistical tolerance Indicates that features "shall be produced with statistical process controls". Appears in the 1994 version of the standard, assumes appropriate statistical process control.
 

U+24CA
Unequal bilateral Added in the 2009 version of the standard, and refers to unequal profile distribution. Number after this symbol indicates tolerance in the "plus material" direction.

Certification edit

The American Society of Mechanical Engineers (ASME) provides two levels of certification: [5]

  • Technologist GDTP, which provides an assessment of an individual’s ability to understand drawings that have been prepared using the language of Geometric Dimensioning & Tolerancing.
  • Senior GDTP, which provides the additional measure of an individual’s ability to select proper geometric controls as well as to properly apply them to drawings.

Data exchange edit

Exchange of geometric dimensioning and tolerancing (GD&T) information between CAD systems is available on different levels of fidelity for different purposes:

  • In the early days of CAD, exchange-only lines, texts and symbols were written into the exchange file. A receiving system could display them on the screen or print them out, but only a human could interpret them.
  • GD&T presentation: On a next higher level the presentation information is enhanced by grouping them together into callouts for a particular purpose, e.g. a datum feature callout and a datum reference frame. And there is also the information which of the curves in the file are leader, projection or dimension curves and which are used to form the shape of a product.
  • GD&T representation: Unlike GD&T presentation, the GD&T representation does not deal with how the information is presented to the user but only deals with which element of a shape of a product has which GD&T characteristic. A system supporting GD&T representation may display GD&T information in some tree and other dialogs and allow the user to directly select and highlight the corresponding feature on the shape of the product, 2D and 3D.
  • Ideally both GD&T presentation and representation are available in the exchange file and are associated with each other. Then a receiving system can allow a user to select a GD&T callout and get the corresponding feature highlighted on the shape of the product.
  • An enhancement of GD&T representation is defining a formal language for GD&T (similar to a programming language) which also has built-in rules and restrictions for the proper GD&T usage. This is still a research area (see below reference to McCaleb and ISO 10303-1666).
  • GD&T validation: Based on GD&T representation data (but not on GD&T presentation) and the shape of a product in some useful format (e.g. a boundary representation), it is possible to validate the completeness and consistency of the GD&T information. The software tool FBTol from the Kansas City Plant is probably the first one in this area.
  • GD&T representation information can also be used for the software assisted manufacturing planning and cost calculation of parts. See ISO 10303-224 and 238 below.

Documents and standards edit

ISO TC 10 Technical product documentation edit

  • ISO 129 Technical drawings – Indication of dimensions and tolerances
  • ISO 7083 Symbols for geometrical tolerancing – Proportions and dimensions
  • ISO 13715 Technical drawings – Edges of undefined shape – Vocabulary and indications
  • ISO 15786 Simplified representation and dimensioning of holes
  • ISO 16792:2015 Technical product documentation—Digital product definition data practices (Note: ISO 16792:2006 was derived from ASME Y14.41-2003 by permission of ASME)

ISO/TC 213 Dimensional and geometrical product specifications and verification edit

In ISO/TR 14638 GPS – Masterplan the distinction between fundamental, global, general and complementary GPS standards is made.

  • Fundamental GPS standards
    • ISO 8015 Concepts, principles and rules
  • Global GPS standards
    • ISO 14660-1 Geometrical features
    • ISO/TS 17, orientation and location
    • ISO 1101 Geometrical tolerancing – Tolerances of form, orientation, location and run-out
      • Amendment 1 Representation of specifications in the form of a 3D model
    • ISO 1119 Series of conical tapers and taper angles
    • ISO 2692 Geometrical tolerancing – Maximum material requirement (MMR), least material requirement (LMR) and reciprocity requirement (RPR)
    • ISO 3040 Dimensioning and tolerancing – Cones
    • ISO 5458 Geometrical tolerancing – Positional tolerancing
    • ISO 5459 Geometrical tolerancing – Datums and datum systems
    • ISO 10578 Tolerancing of orientation and location – Projected tolerance zone
    • ISO 10579 Dimensioning and tolerancing – Non-rigid parts
    • ISO 14406 Extraction
    • ISO 22432 Features used in specification and verification
  • General GPS standards: Areal and profile surface texture
    • ISO 1302 Indication of surface texture in technical product documentation
    • ISO 3274 Surface texture: Profile method – Nominal characteristics of contact (stylus) instruments
    • ISO 4287 Surface texture: Profile method – Terms, definitions and surface texture parameters
    • ISO 4288 Surface texture: Profile method – Rules and procedures for the assessment of surface texture
    • ISO 8785 Surface imperfections – Terms, definitions and parameters
    • Form of a surface independent of a datum or datum system. Each of them has a part 1 for the Vocabulary and parameters and a part 2 for the Specification operators:
      • ISO 12180 Cylindricity
      • ISO 12181 Roundness
      • ISO 12780 Straightness
      • ISO 12781 Flatness
    • ISO 25178 Surface texture: Areal
  • General GPS standards: Extraction and filtration techniques
    • ISO/TS 1661 Filtration
    • ISO 11562 Surface texture: Profile method – Metrological characteristics of phase correct filters
    • ISO 12085 Surface texture: Profile method – Motif parameters
    • ISO 13565 Profile method; Surfaces having stratified functional properties

ASME standards edit

  • ASME Y14.41 Digital Product Definition Data Practices
  • ASME Y14.5 Dimensioning and Tolerancing
  • ASME Y14.5.1M Mathematical Definition of Dimensioning and Tolerancing Principles

ASME is also working on a Spanish translation for the ASME Y14.5 – Dimensioning and Tolerancing Standard.

GD&T standards for data exchange and integration edit

  • ISO 10303 Industrial automation systems and integration — Product data representation and exchange
    • ISO 10303-47 Integrated generic resource: Shape variation tolerances
    • ISO/TS 10303-1130 Application module: Derived shape element
    • ISO/TS 10303-1050 Application module: Dimension tolerance
    • ISO/TS 10303-1051 Application module: Geometric tolerance
    • ISO/TS 10303-1052 Application module: Default tolerance
    • ISO/TS 10303-1666 Application module: Extended geometric tolerance
    • ISO 10303-203 Application protocol: Configuration controlled 3D design of mechanical parts and assemblies
    • ISO 10303-210 Application protocol: Electronic assembly, interconnection, and packaging design
    • ISO 10303-214 Application protocol: Core data for automotive mechanical design processes
    • ISO 10303-224 Application protocol: Mechanical product definition for process planning using machining features
    • ISO 10303-238 Application protocol: Application interpreted model for computerized numerical controllers (STEP-NC)
    • ISO 10303-242 Application protocol: Managed model based 3D engineering

See also edit

References edit

  1. ^ a b MacMillan, David M.; Krandall, Rollande (2014). "Bibliography for Dimensioning and Tolerancing". Circuitous Root. from the original on 27 March 2019. Retrieved October 24, 2018.
  2. ^ a b c d e f g Dimensioning and Tolerancing, ASME Y14.5-2009. NY: American Society of Mechanical Engineers. 2009. ISBN 978-0-7918-3192-2.
  3. ^ "Geometric dimensioning and tolerancing", Wikipedia, 2020-03-28, retrieved 2020-04-02
  4. ^ a b "GD&T, Geometric Dimensioning and Tolerancing, GD&T, Flatness, Circularity, Flatness Tolerance, Circularity Tolerance". www.cobanengineering.com. Retrieved 2020-04-02.
  5. ^ "Resources". Technical Training Consultants. 2020. Retrieved 2020-09-20.

Further reading edit

  • McCaleb, Michael R. (1999). "A Conceptual Data Model of Datum Systems". Journal of Research of the National Institute of Standards and Technology. 104 (4): 349–400. doi:10.6028/jres.104.024.
  • Henzold, Georg (2006). Geometrical Dimensioning and Tolerancing for Design, Manufacturing and Inspection (2nd ed.). Oxford, UK: Elsevier. ISBN 978-0750667388.
  • Srinivasan, Vijay (2008). "Standardizing the specification, verification, and exchange of product geometry: Research, status and trends". Computer-Aided Design. 40 (7): 738–49. doi:10.1016/j.cad.2007.06.006.
  • Drake, Jr., Paul J. (1999). Dimensioning and Tolerancing Handbook. New York: McGraw-Hill. ISBN 978-0070181311.
  • Neumann, Scott; Neumann, Al (2009). GeoTol Pro: A Practical Guide to Geometric Tolerancing per ASME Y14.5-2009. Dearborn, MI: Society of Manufacturing Engineers. ISBN 978-0-87263-865-5.
  • Bramble, Kelly L. (2009). Geometric Boundaries II, Practical Guide to Interpretation and Application ASME Y14.5-2009. Engineers Edge.
  • Wilson, Bruce A. (2005). Design Dimensioning and Tolerancing. US: Goodheart-Wilcox. p. 275. ISBN 978-1-59070-328-1.

External links edit

  • General tolerances for linear and angular dimensions according to ISO 2768
  • What is GD&T
  • The importance of GD&T
  • GD&T Glossary of Terms and Definitions
  • GDT: Introduction
  • ASME Certification
  • Changes and Additions to ASME Y14.5M
  • NIST MBE PMI Validation and Conformance Testing Project Tests implementations of GD&T in CAD software
  • STEP File Analyzer and Viewer - Analyze GD&T in a STEP file

geometric, dimensioning, tolerancing, system, defining, communicating, engineering, tolerances, symbolic, language, engineering, drawings, computer, generated, models, that, describes, physical, object, nominal, geometry, permissible, variation, thereof, used,. Geometric dimensioning and tolerancing GD amp T is a system for defining and communicating engineering tolerances via a symbolic language on engineering drawings and computer generated 3D models that describes a physical object s nominal geometry and the permissible variation thereof GD amp T is used to define the nominal theoretically perfect geometry of parts and assemblies the allowable variation in size form orientation and location of individual features and how features may vary in relation to one another such that a component is considered satisfactory for its intended use Dimensional specifications define the nominal as modeled or as intended geometry while tolerance specifications define the allowable physical variation of individual features of a part or assembly Example of true position geometric control defined by basic dimensions and datum features There are several standards available worldwide that describe the symbols and define the rules used in GD amp T One such standard is American Society of Mechanical Engineers ASME Y14 5 This article is based on that standard Other standards such as those from the International Organization for Standardization ISO describe a different system which has some nuanced differences in its interpretation and rules see GPS amp V The Y14 5 standard provides a fairly complete set of rules for GD amp T in one document The ISO standards in comparison typically only address a single topic at a time There are separate standards that provide the details for each of the major symbols and topics below e g position flatness profile etc BS 8888 provides a self contained document taking into account a lot of GPS amp V standards Contents 1 Origin 2 Fundamental concepts 2 1 Dimensions 2 2 Units of measure 2 3 Tolerances 2 4 Datums and datum references 3 Purpose amp rules 4 Symbols 4 1 List of geometric characteristics 4 2 List of modifiers 5 Certification 6 Data exchange 7 Documents and standards 7 1 ISO TC 10 Technical product documentation 7 2 ISO TC 213 Dimensional and geometrical product specifications and verification 7 3 ASME standards 7 4 GD amp T standards for data exchange and integration 8 See also 9 References 10 Further reading 11 External linksOrigin editThe origin of GD amp T is credited to Stanley Parker who developed the concept of true position While little is known about Parker s life it is known that he worked at the Royal Torpedo Factory in Alexandria West Dunbartonshire Scotland His work increased production of naval weapons by new contractors In 1940 Parker published Notes on Design and Inspection of Mass Production Engineering Work the earliest work on geometric dimensioning and tolerancing 1 In 1956 Parker published Drawings and Dimensions which became the basic reference in the field 1 Fundamental concepts editDimensions edit A dimension is defined in ASME Y14 5 as a numerical value s or mathematical expression in appropriate units of measure used to define the form size orientation or location of a part or feature 2 3 Special types of dimensions include basic dimensions theoretically exact dimensions and reference dimensions dimensions used to inform not define a feature or part Units of measure edit The units of measure in a drawing that follows GD amp T can be selected by the creator of the drawing Most often drawings are standardized to either SI linear units millimeters denoted mm or US customary linear units decimal inches denoted IN Dimensions can contain only a number without units if all dimensions are the same units and there is a note on the drawing that clearly specifies what the units are 2 8 Angular dimensions can be expressed in decimal degrees or degrees minutes and seconds Tolerances edit Every feature on every manufactured part is subject to variation therefore the limits of allowable variation must be specified Tolerances can be expressed directly on a dimension by limits plus minus tolerances or geometric tolerances or indirectly in tolerance blocks notes or tables Geometric tolerances are described by feature control frames which are rectangular boxes on a drawing that indicate the type of geometric control tolerance value modifier s and or datum s relevant to the feature The type of tolerances used with symbols in feature control frames can be equal bilateral unequal bilateral unilateral no particular distribution a floating zone Tolerances for the profile symbols are equal bilateral unless otherwise specified and for the position symbol tolerances are always equal bilateral For example the position of a hole has a tolerance of 020 inches This means the hole can move 010 inches which is an equal bilateral tolerance It does not mean the hole can move 015 005 inches which is an unequal bilateral tolerance Unequal bilateral and unilateral tolerances for profile are specified by adding further information to clearly show this is what is required Datums and datum references edit Main article Datum reference A datum is a theoretically exact plane line point or axis 2 3 A datum feature is a physical feature of a part identified by a datum feature symbol and corresponding datum feature triangle e g A displaystyle displaystyle Box scriptstyle mathsf A blacktriangleleft nbsp These are then referred to by one or more datum references which indicate measurements that should be made with respect to the corresponding datum feature The datum reference frame can describe how the part fits or functions Purpose amp rules editThe purpose of GD amp T is to describe the engineering intent of parts and assemblies 2 GD amp T can more accurately define the dimensional requirements for a part allowing over 50 more tolerance zone than coordinate or linear dimensioning in some cases Proper application of GD amp T will ensure that the part defined on the drawing has the desired form fit within limits and function with the largest possible tolerances GD amp T can add quality and reduce cost at the same time through producibility According to ASME Y14 5 the fundamental rules of GD amp T are as follows 2 7 8 All dimensions must have a tolerance Plus and minus tolerances may be applied directly to dimensions or applied from a general tolerance block or general note For basic dimensions geometric tolerances are indirectly applied in a related feature control frame The only exceptions are for dimensions marked as minimum maximum stock or reference Dimensions and tolerancing shall fully define each feature Measurement directly from the drawing or assuming dimensions is not allowed except for special undimensioned drawings A drawing should have the minimum number of dimensions required to fully define the end product The use of reference dimensions should be minimized Dimensions should be applied to features and arranged to represent the function and mating relationship of the part There should only be one way to interpret dimensions Part geometry should be defined without explicitly specifying manufacturing methods If dimensions are required during manufacturing but not the final geometry due to shrinkage or other causes they should be marked as non mandatory Dimensions should be arranged for maximum readability and should be applied to visible lines in true profiles When geometry is normally controlled by gage sizes or by code e g stock materials the dimension s shall be included with the gage or code number in parentheses following the dimension Angles of 90 are assumed when lines including center lines are shown at right angles but no angle is specified Basic 90 angles are assumed where center lines of features in a pattern or surfaces shown at right angles on a 2D orthographic drawing are located or defined by basic dimensions and no angle is specified A basic dimension of zero is assumed where axes center planes or surfaces are shown coincident on a drawing and the relationship between features is defined by geometric tolerances Dimensions and tolerances are valid at 20 C 68 F and 101 3 kPa 14 69 psi unless stated otherwise Unless explicitly stated dimensions and tolerances only apply in a free state condition Unless explicitly stated tolerances apply to the full length width and depth of a feature Dimensions and tolerances only apply at the level of the drawing where specified It is not mandatory that they apply at other levels such as an assembly drawing Coordinate systems shown on drawings should be right handed Each axis should be labeled and the positive direction should be shown Symbols editList of geometric characteristics edit Geometric characteristic reference chart 2 Application Type of control Characteristic Symbol Unicode character Relevant feature Virtual condition affected References datum Modified by Affected by Surface Of size Bonus Shift Individual features Form Straightness 3 nbsp U 23E4 Yes Yes Of size a No Of size a No c d No Flatness 4 nbsp U 23E5 Yes No No No No No c No No Circularity 4 nbsp U 25CB Yes No No No No No c No No Cylindricity nbsp U 232D Yes No No No No No c No No Individual or related features Profile Profile of a line nbsp U 2312 Yes No No Yes e No No c No Datum b Profile of a surface nbsp U 2313 Yes No No Yes e No No c No Datum b Related features Orientation Perpendicularity nbsp U 27C2 Yes Yes Of size a Yes Of size a No c d Datum b Angularity nbsp U 2220 Yes Yes Of size a Yes Of size a No c d Datum b Parallelism nbsp U 2225 Yes Yes Of size a Yes Of size a No c d Datum b Location Symmetry f g nbsp U 232F No Yes Yes Yes No No No No Position nbsp U 2316 No Yes Yes Yes Yes Yes d Datum b Concentricity f nbsp U 25CE No Yes Yes Yes No No c No No Run out Circular run out nbsp U 2197 Yes Yes Of size a Yes No No c No No Total run out nbsp U 2330 Yes Yes Of size a Yes No No c No No a b c d e f g h i j When applied to a feature of size a b c d e f g When a datum feature of size is referenced with the maximum material condition modifier a b c d e f g h i j k l Automatically b a b c d e When an maximal material condition modifier is used a b Can also be used as a form control without a datum reference a b In the 2018 revision both concentricity and symmetry were eliminated and are no longer supported The symmetry symbol s characteristics were not included in the version of the chart that this chart is derived from The symmetry symbol was dropped from the Y14 5M standard around 1982 and re added around 1994 List of modifiers edit The following table shows only some of the more commonly used modifiers in GD amp T It is not an exhaustive list Symbols used in a feature control frame to specify a feature s description tolerance modifier and datum references Symbol Unicode character Modifier Definition 2 2 7 Notes nbsp U 24BB Free state The condition of a part free of applied forces Applies only when part is otherwise restrained nbsp U 24C1 Least material condition LMC The condition in which a feature of size contains the least amount of material within the stated limits of size Useful to maintain minimum wall thickness nbsp U 24C2 Maximum material condition MMC The condition in which a feature of size contains the maximum amount of material within the stated limits of size Provides bonus tolerance only for a feature of size nbsp U 24C5 Projected tolerance zone Useful on threaded holes for long studs nbsp U 24C8 Regardless of feature size RFS Indicates a geometric tolerance applies at any increment of size of the actual mating envelope of the feature of size Not part of the 1994 version See para A5 bullet 3 Also para D3 Also Figure 3 8 nbsp U 24C9 Tangent plane A plane that contacts the high points of the specified feature surface Useful for interfaces where form is not required nbsp Continuous feature Identifies a group of features of size where there is a requirement that they be treated geometrically as a single feature of size Identifies a group of features that should be treated geometrically as a single feature nbsp Statistical tolerance Indicates that features shall be produced with statistical process controls Appears in the 1994 version of the standard assumes appropriate statistical process control nbsp U 24CA Unequal bilateral Added in the 2009 version of the standard and refers to unequal profile distribution Number after this symbol indicates tolerance in the plus material direction Certification editThe American Society of Mechanical Engineers ASME provides two levels of certification 5 Technologist GDTP which provides an assessment of an individual s ability to understand drawings that have been prepared using the language of Geometric Dimensioning amp Tolerancing Senior GDTP which provides the additional measure of an individual s ability to select proper geometric controls as well as to properly apply them to drawings Data exchange editExchange of geometric dimensioning and tolerancing GD amp T information between CAD systems is available on different levels of fidelity for different purposes In the early days of CAD exchange only lines texts and symbols were written into the exchange file A receiving system could display them on the screen or print them out but only a human could interpret them GD amp T presentation On a next higher level the presentation information is enhanced by grouping them together into callouts for a particular purpose e g a datum feature callout and a datum reference frame And there is also the information which of the curves in the file are leader projection or dimension curves and which are used to form the shape of a product GD amp T representation Unlike GD amp T presentation the GD amp T representation does not deal with how the information is presented to the user but only deals with which element of a shape of a product has which GD amp T characteristic A system supporting GD amp T representation may display GD amp T information in some tree and other dialogs and allow the user to directly select and highlight the corresponding feature on the shape of the product 2D and 3D Ideally both GD amp T presentation and representation are available in the exchange file and are associated with each other Then a receiving system can allow a user to select a GD amp T callout and get the corresponding feature highlighted on the shape of the product An enhancement of GD amp T representation is defining a formal language for GD amp T similar to a programming language which also has built in rules and restrictions for the proper GD amp T usage This is still a research area see below reference to McCaleb and ISO 10303 1666 GD amp T validation Based on GD amp T representation data but not on GD amp T presentation and the shape of a product in some useful format e g a boundary representation it is possible to validate the completeness and consistency of the GD amp T information The software tool FBTol from the Kansas City Plant is probably the first one in this area GD amp T representation information can also be used for the software assisted manufacturing planning and cost calculation of parts See ISO 10303 224 and 238 below Documents and standards editISO TC 10 Technical product documentation edit ISO 129 Technical drawings Indication of dimensions and tolerances ISO 7083 Symbols for geometrical tolerancing Proportions and dimensions ISO 13715 Technical drawings Edges of undefined shape Vocabulary and indications ISO 15786 Simplified representation and dimensioning of holes ISO 16792 2015 Technical product documentation Digital product definition data practices Note ISO 16792 2006 was derived from ASME Y14 41 2003 by permission of ASME ISO TC 213 Dimensional and geometrical product specifications and verification edit In ISO TR 14638 GPS Masterplan the distinction between fundamental global general and complementary GPS standards is made Fundamental GPS standards ISO 8015 Concepts principles and rules Global GPS standards ISO 14660 1 Geometrical features ISO TS 17 orientation and location ISO 1101 Geometrical tolerancing Tolerances of form orientation location and run out Amendment 1 Representation of specifications in the form of a 3D model ISO 1119 Series of conical tapers and taper angles ISO 2692 Geometrical tolerancing Maximum material requirement MMR least material requirement LMR and reciprocity requirement RPR ISO 3040 Dimensioning and tolerancing Cones ISO 5458 Geometrical tolerancing Positional tolerancing ISO 5459 Geometrical tolerancing Datums and datum systems ISO 10578 Tolerancing of orientation and location Projected tolerance zone ISO 10579 Dimensioning and tolerancing Non rigid parts ISO 14406 Extraction ISO 22432 Features used in specification and verification General GPS standards Areal and profile surface texture ISO 1302 Indication of surface texture in technical product documentation ISO 3274 Surface texture Profile method Nominal characteristics of contact stylus instruments ISO 4287 Surface texture Profile method Terms definitions and surface texture parameters ISO 4288 Surface texture Profile method Rules and procedures for the assessment of surface texture ISO 8785 Surface imperfections Terms definitions and parameters Form of a surface independent of a datum or datum system Each of them has a part 1 for the Vocabulary and parameters and a part 2 for the Specification operators ISO 12180 Cylindricity ISO 12181 Roundness ISO 12780 Straightness ISO 12781 Flatness ISO 25178 Surface texture Areal General GPS standards Extraction and filtration techniques ISO TS 1661 Filtration ISO 11562 Surface texture Profile method Metrological characteristics of phase correct filters ISO 12085 Surface texture Profile method Motif parameters ISO 13565 Profile method Surfaces having stratified functional properties ASME standards edit ASME Y14 41 Digital Product Definition Data Practices ASME Y14 5 Dimensioning and Tolerancing ASME Y14 5 1M Mathematical Definition of Dimensioning and Tolerancing Principles ASME is also working on a Spanish translation for the ASME Y14 5 Dimensioning and Tolerancing Standard GD amp T standards for data exchange and integration edit ISO 10303 Industrial automation systems and integration Product data representation and exchange ISO 10303 47 Integrated generic resource Shape variation tolerances ISO TS 10303 1130 Application module Derived shape element ISO TS 10303 1050 Application module Dimension tolerance ISO TS 10303 1051 Application module Geometric tolerance ISO TS 10303 1052 Application module Default tolerance ISO TS 10303 1666 Application module Extended geometric tolerance ISO 10303 203 Application protocol Configuration controlled 3D design of mechanical parts and assemblies ISO 10303 210 Application protocol Electronic assembly interconnection and packaging design ISO 10303 214 Application protocol Core data for automotive mechanical design processes ISO 10303 224 Application protocol Mechanical product definition for process planning using machining features ISO 10303 238 Application protocol Application interpreted model for computerized numerical controllers STEP NC ISO 10303 242 Application protocol Managed model based 3D engineeringSee also editDimensional instruments Engineering fit Engineering tolerance Gauge instrument Geometrical Product Specification and Verification Position sensor Specification of surface finishReferences editThis article includes a list of general references but it lacks sufficient corresponding inline citations Please help to improve this article by introducing more precise citations April 2010 Learn how and when to remove this message a b MacMillan David M Krandall Rollande 2014 Bibliography for Dimensioning and Tolerancing Circuitous Root Archived from the original on 27 March 2019 Retrieved October 24 2018 a b c d e f g Dimensioning and Tolerancing ASME Y14 5 2009 NY American Society of Mechanical Engineers 2009 ISBN 978 0 7918 3192 2 Geometric dimensioning and tolerancing Wikipedia 2020 03 28 retrieved 2020 04 02 a b GD amp T Geometric Dimensioning and Tolerancing GD amp T Flatness Circularity Flatness Tolerance Circularity Tolerance www cobanengineering com Retrieved 2020 04 02 Resources Technical Training Consultants 2020 Retrieved 2020 09 20 Further reading editMcCaleb Michael R 1999 A Conceptual Data Model of Datum Systems Journal of Research of the National Institute of Standards and Technology 104 4 349 400 doi 10 6028 jres 104 024 Henzold Georg 2006 Geometrical Dimensioning and Tolerancing for Design Manufacturing and Inspection 2nd ed Oxford UK Elsevier ISBN 978 0750667388 Srinivasan Vijay 2008 Standardizing the specification verification and exchange of product geometry Research status and trends Computer Aided Design 40 7 738 49 doi 10 1016 j cad 2007 06 006 Drake Jr Paul J 1999 Dimensioning and Tolerancing Handbook New York McGraw Hill ISBN 978 0070181311 Neumann Scott Neumann Al 2009 GeoTol Pro A Practical Guide to Geometric Tolerancing per ASME Y14 5 2009 Dearborn MI Society of Manufacturing Engineers ISBN 978 0 87263 865 5 Bramble Kelly L 2009 Geometric Boundaries II Practical Guide to Interpretation and Application ASME Y14 5 2009 Engineers Edge Wilson Bruce A 2005 Design Dimensioning and Tolerancing US Goodheart Wilcox p 275 ISBN 978 1 59070 328 1 External links edit nbsp Wikimedia Commons has media related to Geometric dimensioning and tolerancing General tolerances for linear and angular dimensions according to ISO 2768 What is GD amp T The importance of GD amp T GD amp T Glossary of Terms and Definitions GDT Introduction ASME Certification Changes and Additions to ASME Y14 5M NIST MBE PMI Validation and Conformance Testing Project Tests implementations of GD amp T in CAD software STEP File Analyzer and Viewer Analyze GD amp T in a STEP file Retrieved from https en wikipedia org w index php title Geometric dimensioning and tolerancing amp oldid 1219503669, wikipedia, wiki, book, books, library,

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