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Variable loading in mechanical joints:
Machine parts are often subjected to variable loading. In many cases pulsating or intermittent loads are applied from outside, for example, in punching press forces of very large magnitude is applied for a short while (impulsive force), in crank shafts variable loads act due to nature of force arising from combustion cycle in cylinders. Often dynamic forces appear in the moving parts, e.g., inertia forces in machines and mechanisms, forces due to unbalance of the rotating components etc. Since these forces are to be withstood by the joints, care should be taken while designing a joint capable of resisting adequate load of variable magnitude. Design of two important mechanical joints is discussed below, namely, bolted and welded joints.
 

2. Bolted joints with variable loading: 
Consider design of bolts to fasten a flat cover to a cylinder as shown in figure 11.3.1. In order to ensure leak proofness necessary pretension (usually 2840 d , in Newton while the nominal bolt diameter d is measured in millimeter) is applied. Depending upon operating condition the pressure inside the closed cylinder is likely to vary in somewhat periodic manner. Let the minimum and maximum value of the pressure be pmin and pmax , respectively.

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering
The pressure causes external force of magnitude Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering n = , where
n= number of equally spaced bolts on the bolt circle
Ac = area of cross section of the cylinder
p = fluid pressure inside the cylinder.

It is known that only a fraction of external load is responsible for tensile stress within bolts, that is

Fb =  F1 + CF

where
F1 = initial tension in the bolt
C = factor that depends on the nature of joints. Some representative values of C’s are tabulated in Table 1 below.

 

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering

Due to fluctuating external force the tensile load within each bolt takes minimum and maximum value of

Fb ,min = Fi + CFmin = Fi + CFmax    and  Fb ,max  = Fi + CFmax 

respectively. The average and the fluctuating component of the normal stress are given by

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering 

respectively, where Ab is the root area of each bolt. The advantage of initial pretension is at once visible from the above expressions. The ratio Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering  gets drastically reduced, The safe size of the bolt can be calculated now from wellknown Soderberg equation given below

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering
where σY = Yield stress of the bolt material,
SE= Corrected endurance limit taking load-, size-, surface finishfactors

N = Factor of safety
k = fatigue stress concentration factor.

Alternatively, Goodman’s equation or Gerber’s line may be used to calculate the root area and hence the size of the bolts. The fatigue stress concentration factor plays an important role in the design. These are found by doing extensive experimentation. A few figures are shown in Table 2.

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering

3. Welded joints with variable loading: Because of many intricacies involved in design of a welded joint, codes are extensively used to design such joint when it experiences variable loading. The value of the maximum fluctuating load is not allowed to exceed a limit specified in the code. This value depends on
a. type of the joint
b. type of stress experienced by the joint
c. a load factor K defined as the ratio of the minimum stress to the maximum stress. When the load is a steady one the factor takes unit value. For a complete reversal of stress the value of K = -1.

The design stress for completely reversing load is calculated using the formula

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering

where σ −1,d = design stress for complete reversal of stress
           σ −1,= allowable fatigue stress
           k-1  = fatigue stress concentration factor tabulated below

 

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering

 The values of the allowable fatigue stress (σ −1,a ) are also tabulated in the design code for various weld geometries. For example, the allowable fatigue stress for fillet weld is given (assuming the weld to be a line) as

Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering

where w denotes the leg size of the fillet weld measured in centimeter. The design is found to be safe if the maximum value of the fluctuating stress is found to be lesser than the design stress.

The document Design of Joints with Variable Loading | Design of Machine Elements - Mechanical Engineering is a part of the Mechanical Engineering Course Design of Machine Elements.
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FAQs on Design of Joints with Variable Loading - Design of Machine Elements - Mechanical Engineering

1. What is the concept of variable loading in mechanical engineering?
Ans. Variable loading in mechanical engineering refers to the application of varying forces or loads on a joint or structure over time. This means that the magnitude and direction of the applied load can change, which requires the joint to be designed to withstand these variations to ensure its reliability and longevity.
2. How is the design of joints affected by variable loading?
Ans. The design of joints must consider the potential variations in loading to ensure that the joint can withstand the maximum expected loads. This involves analyzing the stress distribution and fatigue life of the joint under different loading conditions. Factors such as material selection, joint geometry, and reinforcement techniques may be employed to enhance the joint's performance and durability.
3. What are some common challenges in designing joints with variable loading?
Ans. Designing joints with variable loading involves addressing several challenges, including accurately predicting the magnitude and direction of the loads, determining the frequency and duration of load variations, and assessing the joint's response to these variations. Additionally, factors like stress concentration, fatigue, and potential failure modes need to be considered to ensure the joint's reliability and safety.
4. How can joint failure be prevented in variable loading conditions?
Ans. To prevent joint failure in variable loading conditions, several measures can be taken. These include conducting thorough stress and fatigue analysis, using appropriate materials with high strength and fatigue resistance, implementing proper joint design and reinforcement techniques, and incorporating safety factors to account for uncertainties in loading conditions. Regular inspections and maintenance can also help detect any signs of joint degradation or failure.
5. Are there any design guidelines or standards available for joints with variable loading?
Ans. Yes, there are design guidelines and standards available for joints subjected to variable loading in mechanical engineering. Organizations such as the American Society of Mechanical Engineers (ASME) and the International Organization for Standardization (ISO) provide standards and recommendations for designing joints with variable loading. These guidelines cover aspects such as load calculations, stress analysis, fatigue considerations, and design factors to ensure the integrity and reliability of the joints.
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