Related Experiment Video
Updated: Sep 15, 2025

07:52
Author Spotlight: Enhancing Small Animal Bone Compression Testing for Research
Published on: December 1, 2023
1.9K
Lumbar stress distribution in sitting posture with considering spinal alignment: A finite element analysis
Ryota Toyohara1,2, Takahiro Hiramukai3, Toshiro Ohashi1
1Faculty of Engineering, Hokkaido University, Sapporo, Japan.
Bio-Medical Materials and Engineering
|July 14, 2025
Summary
Sitting shallowly and tilting the seat pan forward reduces lower back pain. This ergonomic adjustment decreases stress on intervertebral discs and sacroiliac joints (SIJs) by altering trunk-thigh angles.
Area of Science:
- Biomechanics
- Ergonomics
- Spinal Health
Background:
- Prolonged sitting on chairs places significant stress on the lower back.
- This posture can lead to the development of lower back pain.
- Understanding lumbar stress distribution is crucial for ergonomic design.
Purpose of the Study:
- To analyze lumbar stress distribution under various sitting conditions.
- To visualize stress on intervertebral discs and sacroiliac joints (SIJs).
- To identify optimal sitting postures for reducing lower back load.
Main Methods:
- Measured body pressure distribution on chair backrests and seat pans for six subjects.
- Created finite element models of the spine and pelvis to simulate sitting postures.
- Analyzed lower back stress distribution based on pressure measurements and finite element analysis.
Main Results:
- Forward-tilted seat pans reduced backrest pressure; larger sitting distances increased it.
- Shallow sitting and forward-tilted seat pans decreased equivalent stresses on SIJs and intervertebral discs.
- These postures increase the trunk-thigh angle, reducing the moment applied to the sacrum.
Conclusions:
- Sitting shallowly with a forward-tilted seat pan reduces the load on the lower back.
- Ergonomic adjustments to chair design can mitigate risks of lower back pain.
- Optimizing sitting posture is key to improving spinal health during seated activities.
Related Concept Videos
Flexural Stress
363
When analyzing bending in symmetric members, it's crucial to understand how stresses distribute when subjected to bending moments. This stress distribution is effectively described by applying fundamental mechanics and material science principles, particularly Hooke's Law for elastic materials.
Hooke's Law states that within the material's elastic limits, stress is directly proportional to strain. In a member experiencing a bending moment, the strain at any point is relative to...
Hooke's Law states that within the material's elastic limits, stress is directly proportional to strain. In a member experiencing a bending moment, the strain at any point is relative to...
363
Stress: General Loading Conditions
380
To grasp the intricacy of real-world conditions where multiple loads are applied simultaneously to a structure, one might visualize a section passing through a specific point within a body, aligned parallel to the xy plane. This section is subjected to various forces, including original loads, normal forces, and shearing forces.
The shearing force, possessing potential directionality within the plane of the section, is simplified into two component forces running parallel to the x and y axes....
The shearing force, possessing potential directionality within the plane of the section, is simplified into two component forces running parallel to the x and y axes....
380
Stresses under Combined Loadings
233
When analyzing a bent tube with a circular cross-section subjected to multiple forces, it is crucial to determine the stress distribution in order to maintain structural integrity under varied load conditions.
The process begins by slicing the tube at critical points and analyzing the internal forces and stress components at these sections, focusing on the centroid. Normal stresses, generated by axial forces and bending moments, are either compressive or tensile and vary across the section from...
The process begins by slicing the tube at critical points and analyzing the internal forces and stress components at these sections, focusing on the centroid. Normal stresses, generated by axial forces and bending moments, are either compressive or tensile and vary across the section from...
233
Saint-Venant's Principle
848
The principle of Saint-Venant postulates that the stress distribution within a structural member does not rely on the precise method of load application except in the vicinity of the load application points. Consider a scenario where loads are centrally applied on two plates. In this case, the plates move toward each other without any rotation. This movement causes the member to contract in length and expand in width and thickness. Uniform deformation across all elements and maintaining...
848
Plastic Deformations of Members with a Single Plane of Symmetry
127
When a structural member undergoes plastic deformation due to bending, it is crucial to understand the position of the neutral axis and the stress distribution. This member, characterized by a single plane of symmetry, exhibits a uniform stress distribution, with negative stress above the neutral axis and positive stress below. Notably, the neutral axis does not align with the centroid of the cross-section. This misalignment is typical in cases where the cross-section is not rectangular or...
127
Eccentric Axial Loading in a Plane of Symmetry
288
Eccentric axial loading occurs when an axial load is applied away from the centroidal axis of a structural member. This scenario is common in engineering, where structural elements may not be directly aligned due to various design or functional requirements.
288

