Showing posts with label ENGG. DRAWING. Show all posts
Showing posts with label ENGG. DRAWING. Show all posts
Wednesday, August 10, 2011
Scales
The selection of scale is one of the most important considerations during mapping. It is decided on the basis of :
• purpose of the map;• nature of terrain to be mapped;• the size of the final sheet;• availability of resources to get it prepared and printed.
Some of these factors are of opposite and conflicting in nature.Therefore, in selecting the scale, the map-maker has to make a judicious decision and to make a compromise.
Table - Suggested scales for different types of survey
Serial No | Purpose of Survey | Scale | R.F. |
1. | Land Survey | 1 cm = 5 m to 50 m | 1:500 to 1:5000 |
2. | Topographical Survey | 1 cm = 0.25 km to 2.5 km | 1:25,000 to 1:250,000 |
3. | Building Site | 1 cm = 10 m | 1:1000 |
4. | Route Survey | 1 cm = 100 m | 1:10,000 |
5. | Town Planning | 1 cm = 100 m | 1:10,000 |
Engineering drawing
An engineering drawing is a tool that used to communicate the design and manufacturing information for a part. Important elements of an engineering drawing are the dimensions and tolerances. The graphical representation of an object is also called drawing.
“An engineering drawing is a document that communicates a precise description of a part. This description consists of pictures, words, numbers and symbols.” Together, these elements communicate part information to all drawing users.
Engineering drawing information includes;
1. Geometry (Shape, size and form of the part)
2. Critical functional relationships.
3. Tolerances allowed for proper function.
4. Material, heat treat, surface coatings.
5. Part documentation information (Part Name, Part Number, Revision level).
“An engineering drawing is a document that communicates a precise description of a part. This description consists of pictures, words, numbers and symbols.” Together, these elements communicate part information to all drawing users.
Engineering drawing information includes;
1. Geometry (Shape, size and form of the part)
2. Critical functional relationships.
3. Tolerances allowed for proper function.
4. Material, heat treat, surface coatings.
5. Part documentation information (Part Name, Part Number, Revision level).
Standard Drawing Sheets Sizes:
Orthographic Projection
If straight lines are drawn from the various points on the contour of an object to meet a plane, the object is said to be “projected on the plane”.The figure formed by joining in correct sequence, the points at which these lines meet the plane is called a “projection of the object”.The straight lines which are passed through an object and projected on the plane are called “projection”. orA projection is defined as a view imagined to be projected on to a plane known as the projection plane. While projecting, if the “rays of sight” (projectors)Are taken perpendicular to the plane of projection. The projection method is then called orthographic projection. In this method the observer is assumed to be at definite distance from the plane of projection, such that the projectors will be parallel to each other.
Orthographic Views:
Orthographic views consists of one, two or more separate views of an object taken from different directions, generally at right angles to each other and arranged in a different manner. These views collectively describe the object.Orthographic views of any object can be represented by any one the two systems of projections.
The First angle projection and The Third angle projection. These are named according to the quadrant in which the object is imagined to be placed for purposes of projection. As far as the shape and size of the views are concerned there is no difference between these two.
Orthographic views consists of one, two or more separate views of an object taken from different directions, generally at right angles to each other and arranged in a different manner. These views collectively describe the object.Orthographic views of any object can be represented by any one the two systems of projections.
The First angle projection and The Third angle projection. These are named according to the quadrant in which the object is imagined to be placed for purposes of projection. As far as the shape and size of the views are concerned there is no difference between these two.
Engineering Drawing
Introduction
One of the best ways to communicate one's ideas is through some form of picture or drawing. This is especially true for the engineer. The purpose of this guide is to give you the basics of engineering sketching and drawing.We will treat "sketching" and "drawing" as one. "Sketching" generally means freehand drawing. "Drawing" usually means using drawing instruments, from compasses to computers to bring precision to the drawings.
This is just an introduction. Don't worry about understanding every detail right now - just get a general feel for the language of graphics.
We hope you like the object in Figure 1, because you'll be seeing a lot of it. Before we get started on any technical drawings, let's get a good look at this strange block from several angles.
| Figure 1 - A Machined Block |
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Isometric Drawing
The representation of the object in figure 2 is called an isometric drawing. This is one of a family of three-dimensional views called pictorial drawings. In an isometric drawing, the object's vertical lines are drawn vertically, and the horizontal lines in the width and depth planes are shown at 30 degrees to the horizontal. When drawn under these guidelines, the lines parallel to these three axes are at their true (scale) lengths. Lines that are not parallel to these axes will not be of their true length.| Figure 2 - An Isometric Drawing |
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Orthographic or Multiview Drawing
Imagine that you have an object suspended by transparent threads inside a glass box, as in figure 3.| Figure 3 - The block suspended in a glass box |
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| Figure 4 - The creation of an orthographic multiview drawing |
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| Figure 5 - A multiview drawing and its explanation |
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| Figure 6 - An object needing only two orthogonal views |
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Dimensioning
| Figure 7 - An isometric view with dimensions |
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Repeatedly measuring from one point to another will lead to inaccuracies. It is often better to measure from one end to various points. This gives the dimensions a reference standard. It is helpful to choose the placement of the dimension in the order in which a machinist would create the part. This convention may take some experience.
Sectioning
There are many times when the interior details of an object cannot be seen from the outside (figure 8).| Figure 8 - An isometric drawing that does not show all details |
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Imagine slicing the object in the middle (figure 9):
| Figure 9 - "Sectioning" an object |
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| Figure 10 - Sectioning the object in figure 8 |
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| Figure 11 - Sectioned isometric and orthogonal views |
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Drawing Tools
To prepare a drawing, one can use manual drafting instruments (figure 12) or computer-aided drafting or design, or CAD. The basic drawing standards and conventions are the same regardless of what design tool you use to make the drawings. In learning drafting, we will approach it from the perspective of manual drafting. If the drawing is made without either instruments or CAD, it is called a freehand sketch.| Figure 12 - Drawing Tools |
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"Assembly" Drawings
An isometric view of an "assembled" pillow-block bearing system is shown in figure 13. It corresponds closely to what you actually see when viewing the object from a particular angle. We cannot tell what the inside of the part looks like from this view.We can also show isometric views of the pillow-block being taken apart or "disassembled" (figure 14). This allows you to see the inner components of the bearing system. Isometric drawings can show overall arrangement clearly, but not the details and the dimensions.
| Figure 13 - Pillow-block (Freehand sketch) |
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| Figure 14 - Disassembled Pillow-block |
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Cross-Sectional Views
A cross-sectional view portrays a cut-away portion of the object and is another way to show hidden components in a device.Imagine a plane that cuts vertically through the center of the pillow block as shown in figure 15. Then imagine removing the material from the front of this plane, as shown in figure 16.
| Figure 15 - Pillow Block | Figure 16 - Pillow Block |
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| Figure 17 - Section "A-A" |
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The top "outside" view of the bearing is shown in figure 18. It is an orthogonal (perpendicular) projection. Notice the direction of the arrows for the "A-A" cutting plane.
| Figure 18 - The top "outside" view of the bearing |
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Half-Sections
A half-section is a view of an object showing one-half of the view in section, as in figure 19 and 20.| Figure 19 - Full and sectioned isometric views |
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| Figure 20 - Front view and half section |
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A second, rarer, use of cross-hatching is to indicate the material of the object. One form of cross-hatching may be used for cast iron, another for bronze, and so forth. More usually, the type of material is indicated elsewhere on the drawing, making the use of different types of cross-hatching unnecessary.
| Figure 21 - Half section without hidden lines |
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Sectioning Objects with Holes, Ribs, Etc.
The cross-section on the right of figure 22 is technically correct. However, the convention in a drawing is to show the view on the left as the preferred method for sectioning this type of object.| Figure 22 - Cross section |
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Dimensioning
The purpose of dimensioning is to provide a clear and complete description of an object. A complete set of dimensions will permit only one interpretation needed to construct the part. Dimensioning should follow these guidelines.- Accuracy: correct values must be given.
- Clearness: dimensions must be placed in appropriate positions.
- Completeness: nothing must be left out, and nothing duplicated.
- Readability: the appropriate line quality must be used for legibility.
The Basics: Definitions and Dimensions
The dimension line is a thin line, broken in the middle to allow the placement of the dimension value, with arrowheads at each end (figure 23).| Figure 23 - Dimensioned Drawing |
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A leader is a thin line used to connect a dimension with a particular area (figure 24).
| Figure 24 - Example drawing with a leader |
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Where To Put Dimensions
The dimensions should be placed on the face that describes the feature most clearly. Examples of appropriate and inappropriate placing of dimensions are shown in figure 25.| Figure 25 - Example of appropriate and inappropriate dimensioning |
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| Figure 26 - Simple Object |
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| Figure 27 - Surface datum example |
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| Figure 28 - Surface datum example |
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| Figure 29 - Exampled of a dimensioned hole |
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| Figure 30 - Example of a directly dimensioned hole |
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| Figure 31 - Example of a directly dimensioned hole |
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