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Classification of Bones01:18

Classification of Bones

The bones of the human skeletal system are of varied shapes, sizes, and functions. They can be classified based on their shape and function into four major classes: long bones, short bones, flat bones, and irregular bones. Some classifications include a fifth type, the sesamoid bones, as a separate class, whereas others categorize them under short bones.
Long and Short Bones
The appendicular skeleton, particularly the upper and lower limbs, is primarily made of long and short bones. The long...
Gross Anatomy of Bone01:17

Gross Anatomy of Bone

The two main features of a long bone are the diaphysis and the epiphysis.
The diaphysis is the tubular shaft that runs between the proximal and distal ends of the bone. The walls of the diaphysis are composed of dense and hard compact bone made of numerous osteons — the functional unit of the compact bone. The hollow region in the diaphysis is called the medullary cavity, which harbors the bone marrow. In infants and children, this marrow cavity is filled with red marrow, whereas in adults, it...
Compact Bone01:27

Compact Bone

Most bones contain compact and spongy osseous tissue, but their distribution and concentration vary based on the bone's overall function.
Compact bone, also called cortical bone, is the denser, stronger of the two types of bone tissue. It is found under the periosteum and in the diaphyses of long bones, where it provides support and protection. The microscopic structural unit of compact bone is called an osteon, or haversian system. Each osteon is composed of concentric rings of calcified...
Bone Structure01:55

Bone Structure

Within the skeletal system, the structure of a bone, or osseous tissue, can be exemplified in a long bone, like the femur, where there are two types of osseous tissue: cortical and cancellous.
X-ray Imaging01:24

X-ray Imaging

German physicist Wilhelm Röntgen (1845–1923) was experimenting with electrical current when he discovered that a mysterious and invisible "ray" would pass through his flesh but leave an outline of his bones on a screen coated with a metal compound. In 1895, Röntgen made the first durable record of the internal parts of a living human: an "X-ray" image (as it came to be called) of his wife’s hand. Scientists worldwide quickly began their own experiments with X-rays, and by 1900, X-ray was widely...

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Related Experiment Video

Updated: Jul 10, 2026

Outer-Boundary Assisted Segmentation and Quantification of Trabecular Bones by an Imagej Plugin
09:36

Outer-Boundary Assisted Segmentation and Quantification of Trabecular Bones by an Imagej Plugin

Published on: March 14, 2018

Image-based strength assessment of bone.

Thomas N Hangartner1

  • 1BioMedical Imaging Laboratory of Wright State University and Miami Valley Hospital, Dayton, OH 45409, USA. thomas.hangartner@wright.edu

Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
|November 16, 2007
PubMed
Summary

Radiologic density is a common but imprecise measure of bone strength. This study reveals that bone strength is better predicted by a power law relationship involving elastic modulus, improving fracture risk assessment.

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Last Updated: Jul 10, 2026

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Published on: March 14, 2018

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Area of Science:

  • Biomedical Engineering
  • Orthopedics
  • Radiology

Background:

  • Bone status assessment commonly relies on radiologic methods.
  • Radiologic density is often used as a surrogate for bone strength, despite limitations.
  • Existing strength-related parameters often assume a linear relationship with density, which may be inaccurate.

Purpose of the Study:

  • To explore the relationship between bone mechanical properties and radiologic density.
  • To identify more accurate parameters for assessing bone strength and fracture risk.
  • To propose theoretical improvements for bone status evaluation.

Main Methods:

  • Review of mechanical deformation principles in bone.
  • Analysis of the relationship between elastic modulus and bone density.
  • Theoretical derivation of strength-related parameters based on material science.

Main Results:

  • Bone strength is related to density via a power law, not a linear relationship.
  • The elastic modulus follows a power law with density, with an exponent near 2.
  • Current linear models may not accurately reflect true bone strength.

Conclusions:

  • A power law model, incorporating elastic modulus, offers a more accurate representation of bone strength.
  • Modifications to existing strength-related parameters are suggested for improved clinical relevance.
  • This approach has the potential to better reflect a patient's true bone status and fracture probability.