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Normal Strain under Axial Loading01:20

Normal Strain under Axial Loading

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Normal strain under axial loading is an important concept in the field of mechanics of materials. Axial loading implies the application of a force along the axis of a material, like a column or bar. This force can either compress or stretch the material. In the context of axial loading, normal strain is the deformation experienced by the material in the direction of the loading force. It's calculated as the change in length divided by the original length of the material. This unitless ratio...
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Information is everywhere and its presentation—such as how and when items are presented—can impact our perceptions and decisions surrounding the info. This broad concept umbrellas framing effects—influences that occur due to the way information is framed in its appearance, whether it’s purely the order or the specific wording of a message. Let’s take a look at numerous ways in which two versions of something can objectively say the same thing, yet we respond in...
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Frames are essential components of various mechanical and structural systems used daily. These structures are known for their stability and ability to bear heavy loads. A frame is constructed using two-force and multi-force members, interconnected using pin joints. In contrast, trusses are made entirely of two-force members.
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Related Experiment Video

Updated: Jan 29, 2026

Echocardiographic Measurement of Right Ventricular Diastolic Parameters in Mouse
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Quantitative Parameters of High-Frame-Rate Strain in Patients with Echocardiographically Normal Function.

Martin V Andersen1, Cooper Moore2, Peter Søgaard3

  • 1Aalborg University, Aalborg, Denmark.

Ultrasound in Medicine & Biology
|February 19, 2019
PubMed
Summary

High-frame-rate echocardiography quantifies myocardial strain and mechanical events in the left ventricle. This provides a baseline for disease states and reveals contraction propagation patterns for improved cardiac function assessment.

Keywords:
AlgorithmDeformation imagingEchocardiographyFeature trackingHigh frame rateSpeckle trackingStrainUltrasound

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Area of Science:

  • Cardiovascular Imaging
  • Biomedical Engineering
  • Echocardiography

Background:

  • High-frame-rate echocardiography (HFR-Echo) enables novel quantitative assessments of cardiac mechanics.
  • Understanding normal myocardial mechanics is crucial for identifying pathological changes.

Purpose of the Study:

  • To establish baseline longitudinal strain parameters and mechanical event timing in healthy individuals using HFR-Echo.
  • To investigate the spatial and temporal propagation of mechanical events within the left ventricle.

Main Methods:

  • Acquired B-Mode echocardiographic images at 500-1000 images/second using a 3.5 MHz linear array.
  • Employed a specialized speckle tracking algorithm for HFR-Echo analysis.
  • Defined four key mechanical events from myocardial strain curves in six left ventricular regions.

Main Results:

  • Observed statistically significant differences in the onset timing of myocardial shortening across different segments (p < 0.01).
  • Identified the interventricular septum's middle region as the spatial origin of tissue shortening in normal hearts.
  • Demonstrated HFR-Echo's capability to reveal contraction propagation patterns.

Conclusions:

  • Quantitative HFR-Echo strain parameters provide a baseline for assessing myocardial contractile function and abnormality.
  • The timing patterns of mechanical events relative to the Q wave may serve as a novel metric for cardiac function assessment.
  • This approach holds potential for improved diagnosis and prognosis in cardiovascular diseases.