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An engineering drawing is a type of drawing that is technical in nature, used to fully and clearly define requirements for engineered items, and is usually created in accordance with standardized conventions for layout, nomenclature, interpretation, appearance (such as typefaces and line styles), size, etc. It's purpose is to accurately and un-ambiguesly capture all the geometric features of a product or a component. The end goal of an engineering drawing is to convey the all reqiured information that will allow a manufacturer to produce that component.
Engineering drawings are often referred to as "blueprints" or "bluelines". However, the terms are rapidly becoming an anachronism, since most copies of engineering drawings that were formerly made using a chemical-printing process that yielded graphics on blue-colored paper or, alternatively, of blue-lines on white paper, have been superseded by more modern reproduction processes that yield black or multicolour lines on white paper.
The process of producing engineering drawings, and the skill of producing them, is often referred to as technical drawing, although technical drawings are also required for disciplines that would not ordinarily be thought of as parts of engineering.
Contents [hide]
1 Common features of engineering drawings
2 Multiple views and projections
3 Showing dimensions
4 Notes
5 Sizes of drawings
6 See also
[edit] Common features of engineering drawings
Drawings convey the following critical information:
Geometry - the shape of the object; represented as views, how the object will look like when it is views from various standard directions, like front, top etc.
Dimensions - the size of the object is captured in accepted units.
Tolerances - the allowable variations for each dimensions.
Material - whiich represents what the item is made of.
Finish - specifies the surface quality of the item, funtional or cosmetic. For example, a mass marketed product usualy requires a much higher surface quality than, say, a component that goes inside an idustrial machinery.
A variety of line styles are used to graphically represent physical objects. Types of lines include the following:
visible - are continuous lines used to depict edges directly visible from a particular angle.
hidden - are short-dashed lines that may be used to represent edges that are not directly visible.
center - are alternately long- and short-dashed lines that may be used to represent the axes of circular features.
cutting plane - are thin, medium-dashed lines, or thick alternately long- and double short-dashed that may be used to define sections for section views.
section - are thin lines in a parallel pattern used to indicate surfaces in section views resulting from "cutting." Section lines are commonly referred to as "cross-hatching."
Lines can also be classified by a letter classification in which each line is given a letter. Type A lines are used to show the outline of the feature of an object. They are the thickest lines on a drawing and done with a pencil softer than HB Type B lines are dimension lines and are used for dimensioning, projecting, extending, or leaders. A harder pencil should be used such as a 2H Type C lines are used for breaks when the whole object is not shown. they are freehand drawn and only for short breaks. 2H pencil Type D lines are simular to Type C except they are zigzaged and only for longer breaks. 2H pecil Type E lines are used to indicate hidden outlines of internal features of an object. they are dotted lines. 2H pencil Type F lines are Type F lines except they are used for drawings in electrotechnology. 2H pencil Type G lines are used for centre lines they are dotted lines but a long line of 10-20mm then a gap then a small line of 2mm. 2H pencil Type H lines are the same as type G except that every second lond line is thicker are they are used to indicate the cutting plane of an object. 2H pencil Type K lines are used to indicate the alternate positions of an object and the line taken by that object. they are drawn with a long line 10-20mm then a small gap then a small line 2mm then a gap then another small gap. 2H pencil.
Here is an example of an engineering drawing. The different linetypes are colored for clarity.
Black = object line and hatching
Red = hidden line
Blue = center line
Magenta = phantom line or cutting plane
The objects can be represented with different views (front, rear, top, bottom, left and right side). There are two ways to place the different views on the drawing:
the ISO standard considers a projection on the opposite direction, like an X-ray radiography; the top view is under the front view, the right view is at the left of the front view... This is called First Angle Projection
the American standard ( called Third Angle Projection ) places the left view on the left and the top view on the top.
The standard in use is represented by a truncated cone.
[edit] Multiple views and projections
In most cases, a single view is not sufficient to show all necessary features, and several views are used. Types of views include the following:
orthographic projection - show the object as it looks from the front, right, left, top, bottom, or back, and are typically positioned relative to each other according to the rules of either first-angle or third-angle projection. The former is primarily used in Europe and Asia, the latter is primarily used in the United States and Canada. Not all views are necessarily used, and determination of what surface constitutes the "front," etc., varies from object to object. "Orthographic" comes from the Greek for "straight writing (or drawing)."
section - depict what the object would look like if it were cut perfectly along cutting plane lines defined in a particular view, and rotated 90° to directly view the resulting surface(s), which are indicated with section lines. They are used to show features not externally visible, or not clearly visible.
detail - show portions of other views, "magnified" for clarity.
auxiliary projection - similar to orthographic projections, however the directions of viewing are other than those for orthographic projections.
isometric - show the object from angles in which the scales along each axis of the object are equal. It corresponds to rotation of the object by ± 45° about the vertical axis, followed by rotation of approximately ± 35.264° [= arcsin(tan(30°))] about the horizontal axis starting from an orthographic projection view. "Isometric" comes from the Greek for "same measure."
Isometric projection of the ebove example object.
[edit] Showing dimensions
The required sizes of features are conveyed through use of dimensions. Distances may be indicated with either of two standardized forms of dimension: linear and ordinate.
With linear dimensions, two parallel lines, called "extension lines," spaced at the distance between two features, are shown at each of the features. A line perpendicular to the extension lines, called a "dimension line," with arrows at its endpoints, is shown between, and terminating at, the extension lines. The distance is indicated numerically at the midpoint of the dimension line, either adjacent to it, or in a gap provided for it.
With ordinate dimensions, one horizontal and one vertical extension line establish an origin for the entire view. The origin is identified with zeroes placed at the ends of these extension lines. Distances along the x- and y-axes to other features are specified using other extension lines, with the distances indicated numerically at their ends.
Sizes of circular features are indicated using either diametral or radial dimensions. Radial dimensions use an "R" followed by the value for the radius; Diametral dimensions use a circle with forward-leaning diagonal line through it, called the diameter symbol, followed by the value for the diameter. A radially-aligned line with arrowhead pointing to the circular feature, called a leader, is used in conjunction with both diametral and radial dimensions. All types of dimensions are typically composed of two parts: the nominal value, which is the "ideal" size of the feature, and the tolerance, which specifies the amount that the value may vary above and below the nominal.
Geometric Dimensioning and Tolerancing is a method of specifying the functional geometry of an object.
[edit] Notes
Notes--textual information--are also typically included in drawings, specifying details not otherwise conveyed. Notes are almost always in completely uppercase characters, for uniformity and maximal legibility after duplication of the drawing, which may involve substantial reduction in size. Leaders may be used in conjunction with notes in order to point to a particular feature or object that the note concerns.
[edit] Sizes of drawings
Main article: Paper_size
Sizes of drawings typically comply with either of two different standards, ISO (World Standard) or U.S. customary, according to the following tables:
ISO A Drawing Sizes (mm) A4 210 X 297
A3 297 X 420
A2 420 X 594
A1 594 X 841
A0 841 X 1189
U.S. Customary Drawing Sizes A 8.5" X 11"
B 11" X 17"
C 17" X 22"
D 22" X 34"
E 34" X 44"
The metric drawing sizes correspond to international paper sizes. These developed further refinements in the second half of the twentieth century, when photocopying became cheap. Engineering drawings could be readily doubled (or halved) in size and put on the next larger (or, respectively, smaller) size of paper with no waste of space. And the metric technical pens were chosen in sizes so that one could add detail or drafting changes with a pen of double (or half) the width to the copy.
The U.S. customary "A-size" corresponds to "letter" size, and "B-size" corresponds to "ledger" or "tabloid" size. There were also once British paper sizes, which went by names rather than alphanumeric designations.
ANSI Y14.2, Y14.3, and Y14.5 are standards that are commonly used in the U.S.
[edit] See also
Descriptive geometry
Geometric tolerance
Baseline dimensioning
Graphical projection
Orthographic projection
Axonometric projection
Isometric projection
Dimetric projection
Trimetric projection
Orthogonal projection
Oblique projection
Perspective projection, Perspective (graphical)
Technical drawing
2006-11-25 04:05:46
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answer #7
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answered by gallagher g 4
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