Linear Elastic Range

The linear elastic range is the portion of a material’s stress-strain behavior in which deformation remains reversible and stress is proportional to strain, making it central to safe engineering design. Within this range, applied loads produce predictable changes in shape according to Hooke’s law, and the material returns to its original dimensions when the load is removed, provided the proportional and elastic limits are not exceeded. Engineers use this relationship, together with Young’s modulus, to estimate stiffness, calculate deflection, interpret tensile-test data, and establish operating limits. Identifying the range helps prevent permanent deformation and supports reliable component selection and structural analysis.

Linear Elastic Range - Related Videos

Education

JoVE Core - Mechanical Engineering

Angle of Twist - Elastic Range

0 Views •

2024

Consider a cylindrical shaft with a length denoted by L and a consistent cross-sectional radius referred to as r. This shaft undergoes a torque at the free end. The highest shearing strain within the shaft is directly proportional to the twist angle and the radial distance from the shaft axis. When the shaft behaves elastically, this shearing strain can be articulated using variables such as the applied torque, radial distance, the polar moment of inertia, and the modulus of rigidity. By...

Elasticity of a Linear Demand Curve

0 Views •

2024

A linear demand curve, which plots the relationship between price and quantity demanded, is a straight line, but the elasticity along this line is not constant. This means that the responsiveness of consumers to price changes varies at different points on the line. Vertical Intercept: Quantity demanded is zero; elasticity theoretically approaches infinity due to division by zero, making it not directly calculable. Elastic Demand Zone: Between the vertical intercept and the midpoint, demand is...

Circular Shaft - Stresses in Linear Range

0 Views •

2024

Consider a scenario where a circular shaft is subject to torque that remains within the boundaries of Hooke's Law, avoiding any permanent deformation. So, the formula for shearing strain is revisited. This formula is multiplied by the modulus of rigidity, and then Hooke's Law for the shearing stress and strain is applied. As a result, the equation for shearing stress in a shaft can be derived. Furthermore, it is crucial to remember that the sum of the moments of the elementary forces acting on...

Research

JoVE Journal - Biology

Linearization of the Bradford Protein Assay

0 Views •

Cited by 292 •

2010

The accuracy and sensitivity of protein determination by the rapid and convenient Bradford assay is compromised by intrinsic nonlinearity. We show a simple linearization procedure that greatly increases the accuracy, improves the sensitivity of the assay about 10-fold, and significantly reduces interference by detergents.

Range

0 Views •

2023

The range is one of the measures of variation. It can be defined as the difference between a dataset's highest and lowest values. For example, in the study of seven 16-ounce soda cans, the filled volume of soda was measured, thus producing the following amount (in ounces) of soda: 15.9; 16.1; 15.2; 14.8; 15.8; 15.9; 16.0; 15.5 Measurements of the amount of soda in a 16-ounce can vary since different subjects record these measurements or since the exact amount - 16 ounces of liquid, was not...

View All Results

FAQs

Related Topics