vix.ing · top · new · best · stats · spec

The structure and pressure characteristics of graduated compression stockings: experimental and numerical study

2019/06/08 by Luolan Zhang, Guangwu Sun, Jiecong Li +4 · 1 citation
Engineering · Medicine · #Composite material #Compression (physics) #Computer science #Conical surface #Engineering #Exercise and Physiological Responses #Materials science #Mechanical engineering #RADIUS #Sports injuries and prevention #Structural engineering #Tendon Structure and Treatment #Tension (geology) #Work (physics)

paper · doi:10.1177/0040517519855319

crossref issued 2019/06/08 · crossref published 2019/06/08 · crossref published-online 2019/06/08 · openalex publication_date 2019/06/08 · crossref created 2019/06/08 · crossref published-print 2019/12/01 · openalex created_date 2025/10/10 · crossref deposited 2026/05/01 · crossref indexed 2026/08/05 · openalex updated_date 2026/08/06

Abstract

The incorporation of pressure levels and pressure gradients in the design of compression stockings offers excellent potential to enhance function in the sport science, clinical research and rehabilitation fields. Yet, the connection of processing parameters and structure accompanying the pressure characteristic of current graduated compression stockings (GCS) is not well quantitatively studied. To bridge this knowledge gap, this study aims to analyze the effects of processing parameters, such as elastane yarn count, loop length and elastane feeding tension, on the structure and pressure behavior of GCS in our work. In addition, to investigate the mechanism of the pressure characteristic, two numerical models, the cylinder model and the conical model, are employed to predict the pressure value and the pressure gradient of stockings. The experimental results of the statistical analysis indicate that the loop length is a key factor to control the wale density, length of stockings and final pressure values. Moreover, the elastane feeding tension could affect the course density, girth of stockings and pressure gradient. On the other hand, the numerical results reveal that the conical model is suited for predicting the pressure values because of the change in radius of the limb in the model. The entire experimental and numerical work provide the mechanism for the study basis of processing, structure and pressure characteristics of GCS.

Cited by