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DESIGN OF STEEL COMPRESSION MEMBERS A structural member loaded axially in compression is generally called a compression member. Vertical compression members in buildings are called columns, posts or stanchions. A compression member in roof trusses is called struts and in a crane is called a boom.
THEORY OF COLUMNS
Euler’s formula for critical load for a pin-ended column subjected to axial load is
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VARIOUS END CONDITIONS
Columns with length L and effective length
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Strength of an Axially Loaded Compression Members
Maximum axial compression load permitted on a compression member,
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![clip_image012[1] clip_image012[1]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image01219.jpg)
Type |
Effective length of member l |
|
1 |
Effectively held in position and restrained in direction at both ends. |
0.67 L |
2 |
Effectively held in position at both ends restrained in direction at one end. |
0.85 L |
3 |
Effectively held in position at both ends but not restrained in direction. |
L |
4 |
Effectively held in position and restrained in direction at one end and at the other end effectively restrained in direction but not held in position. |
L |
5 |
Effectively held in position and restrained in direction at one end and the other end partially restrained in direction but not held in position. |
1.5 L |
6 |
Effectively held in position and restrained in direction at one end but not held in position or restrained in direction at the other end. |
2.0 L |
- L is the unsupported length of compression member.
- For battened struts, the effective length should be increased by 10%.
MAXIMUM SLENDERNESS RATIO:
According to Indian Standard IS 800, the slenderness ratio should not exceed the values given in the table below:
No. |
Type of Member |
Slenderness ratio |
1 |
A member carrying compressive loads resulting from dead and superimposed loads. |
180 |
2 |
A member subjected to compressive loads resulting from wind/earthquake forces provided the deformation of such members does not adversely affect the stress in any part of the structure. |
250 |
3 |
A member normally carrying tension but subjected to reversal of stress due to wind or earthquake forces. |
350 |
4 |
Tension member (other than pre-tensioned member) |
400 |
ANGLE STRUTS
Single angle discontinuous struts connected by a single rivet or bolt may be designed for axial load only provided the compressive stress does not exceed![clip_image002[7] clip_image002[7]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image00271.jpg)
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![clip_image006[4] clip_image006[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image00642.jpg)
![clip_image004[1] clip_image004[1]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image004110.jpg)
![clip_image004[2] clip_image004[2]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image00426.jpg)
COMPRESSION MEMBERS COMPOSED OF BACK-TO-BACK COMPONENTS
A compression member composed of two angles, channels or tees, back to back, in contact or separated by a small distance should be connected together by riveting, bolting or welding so that the slenderness ratio of each member between the connections is not greater than 40 nor greater than 0.60 times the most unfavourable slenderness ratio of the strut as a whole. In no case, the spacing of tacking rivets in a line exceed 600mm for such members. For other types of built-up compression members, where cover plates are used, the pitch of tacking rivets should not exceed 32t or 300mm, whichever is less, where t is the thickness of the thinner outside plate. Where plates are exposed to bad weather conditions, the pitch should not exceed 16 t or 200mm whichever is less. The rivets, welds and bolts in these connections should be sufficient to carry the shear force and bending moments, if any, specified for battened struts. The diameter of the connecting rivets should not be less than the minimum diameter given in the table below:
Thickness of member |
Minimum diameter of rivets |
Upto 10mm |
16mm |
Over 10mm upto 16mm |
20mm |
Over 16mm |
22 mm |
Solid packing or washers should be used for riveting, bolting, where the members are separated back to back.
The end struts should be connected together with not less than two rivets or bolts or their equivalent in welding and there should be not less than two additional connections spaced equidistant in the length of the strut.
A minimum of two rivet or bolts should be used in each connection, one on line of each gauge mark, where the legs of the connected angles or tables of the connected tees are 125mm wide or over, or where the webs of channel are 150mm wide or over.
LACINGS AND BATTENS FOR BUILT-UP COMPRESSION MEMBERS
As per Indian Standard, IS 800-1984, the following specifications are used for the design of lacing and batten plates.
In a built-up section, the different components are connected together so that they act as a single column. Lacing is generally preferred in case of eccentric loads. Battening is normally used for axially loaded columns and in sections where the components are not far apart. Flat bars are generally used for lacing. Angles, channels and tubular sections are also used for lacing of very heavily columns. Plates are used for battens.
Lacings
A lacing system should generally conform to the following requirements:
- The compression member comprising two main components laced and tied should, where practicable, have a radius of gyration about the axis perpendicular to the plane of lacing not less than the radius of gyration at right angles to that axis.
- The lacing system should not be varied throughout the length of the strut as far as practicable.
- Cross (except tie plates) should not be provided along the length of the column with lacing system, unless all forces resulting from deformation of column members are calculated and provided for in the lacing and its fastening.
- The single-laced systems on opposite sides of the main components should preferably be in the same direction so that one system is the shadow of the other.
- Laced compression members should be provided with tie plates at the ends of the lacing system and at points where the lacing system are interrupted. The tie plates should be designed by the same method as followed for battens.
GUIDELINES FOR THE DESIGN OF LACING SYSTEM
- The angle of inclination of the lacing with the longitudinal axis of the column should be between
 to
.
- The slenderness ratio
 of the lacing bars should not exceed 145.
- The effective length
 of the lacing bar should be according to the table given below:
No. |
Type of lacing |
Effective length, |
1 |
Single lacing, riveted at ends |
Length between inner end rivets on lacing bar. |
2 |
Double lacing, riveted at ends |
0.7 times the length between end rivets on lacing bars. |
3 |
Welded lacing |
0.7 times the distance between inner ends or effective lengths of welds at ends. |
- For riveted or welded lacing system,
or 0.7 times maximum slenderness ratio of the compression member as a whole, whichever is less.
![clip_image004[11] clip_image004[11]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image004111.jpg)
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- Minimum width of lacing bars in riveted connection should be according to the Table given below:
Nominal rivet diameter (mm) | 22 | 20 | 18 | 16 |
Width of lacing bars (mm) | 65 | 60 | 55 | 50 |
- Minimum thickness of lacing bars:
![clip_image008[7] clip_image008[7]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image00871.jpg)
![clip_image010[7] clip_image010[7]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image01071.jpg)
![clip_image012[6] clip_image012[6]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image01261.jpg)
- The lacing of compression members should be designed to resist a transverse shear, V=2.5 percent of the axial force in the member. The shear is divided equally among all transverse lacing systems in parallel planes. The lacing system should also be designed to resist additional shear due to bending if the compression member carries bending due to eccentric load, applied end moments, and / or lateral loading.
- The riveted connections may be made in two ways, as shown in the figure (a) and (b).
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BATTENS
Compression members composed of two main components battened should preferably have these components of the same cross-section and symmetrically disposed about their X – X axis. The battens should be placed opposite to each-other at each end of the member and at points where the member is stayed in its length, and should as far as practicable, be spaced and proportioned uniformly throughout. The effective length of columns should be increased by 10 percent.Design Details of Battens
- Spacing of batten C, from centre-to-centre of end fastening should be such that the slenderness ratio of the lesser main component,
or 0.7 times the slenderness ratio of the compression member as a whole about X – X axis (parallel to battens) whichever is less.
- Effective depth of battens, d shall be taken as distance between end rivets or end welds.
![clip_image018[4] clip_image018[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image01841.jpg)
- Thickness of battens,
![clip_image022[4] clip_image022[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image02241.jpg)
DESIGN OF BATTENS
Battens should be designed to carry bending moment and shear arising from a transverse shear,![clip_image024[4] clip_image024[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image02441.jpg)
![clip_image026[4] clip_image026[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image02641.jpg)
![clip_image028[4] clip_image028[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image02841.jpg)
![clip_image030[4] clip_image030[4]](https://test.theconstructor.org/wp-content/uploads/2010/10/clip_image03041.jpg)
For welded connection
- Lap < 4t
- Total length of weld at edge of batten < D/2