What is Design Stress?
Design stress refers to the maximum allowable stress that a material or structure can withstand under certain design conditions without experiencing deformation or failure. It is a key factor in engineering design, as it ensures that a structure or component will be able to function safely and effectively under anticipated loading conditions. Design stress is typically determined through various types of analysis, including theoretical calculations, computer simulations, and physical testing. The specific factors that are taken into account when determining design stress include the type of material used, the geometry and shape of the structure, the anticipated loads and forces that will be applied, and the operating environment in which the structure will be used.
How to Calculate Stress due to Longitudinal Bending at Bottom most Fibre of Cross Section?
Stress due to Longitudinal Bending at Bottom most Fibre of Cross Section calculator uses Stress at Bottom most Fibre of Cross Section = Bending Moment at Support/(Value of k2 depending on Saddle Angle*pi*(Shell Radius)^(2)*Shell Thickness) to calculate the Stress at Bottom most Fibre of Cross Section, Stress due to Longitudinal Bending at Bottom most Fibre of Cross Section refers to the amount of stress that develops at the extreme fibre located at the bottom of a cross section when the structural member is subjected to a bending moment. Stress at Bottom most Fibre of Cross Section is denoted by f2 symbol.
How to calculate Stress due to Longitudinal Bending at Bottom most Fibre of Cross Section using this online calculator? To use this online calculator for Stress due to Longitudinal Bending at Bottom most Fibre of Cross Section, enter Bending Moment at Support (M1), Value of k2 depending on Saddle Angle (k2), Shell Radius (R) & Shell Thickness (t) and hit the calculate button. Here is how the Stress due to Longitudinal Bending at Bottom most Fibre of Cross Section calculation can be explained with given input values -> 4.4E-12 = 1000/(0.192*pi*(1.38)^(2)*0.2).