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Article type: Research Article
Authors: Kumar, Bipin; | Das, Apurba | Alagirusamy, R.
Affiliations: Department of Textile Technology, IIT Delhi, New Delhi, India
Note: [] Address for correspondence: Mr. Bipin Kumar, Research Scholar, Department of Textile Technology, Indian Institute of Technology, New Delhi 110016, India. Tel.: +91 99 9024 0340; E-mail: [email protected]
Abstract: BACKGROUND: Internal stress in a compression bandage wrapped over a limb in vitro is expected to reduce over time because of fatigue which may occur due to repetitive and prolonged variations in the extension of the bandage during posture change and exercise. This phenomenon may cause significant variation in the sub-bandage pressure over time. OBJECTIVE: To examine the effect of composition and construction of material on the sub-bandage pressure variation over time in the dynamic state of a limb in the laboratory. METHODS: Yarns comprising fibers of polyester, viscose, cotton and elastomeric yarn were used to prepare different knitted bandage samples having varying thread densities in the structure. A leg-segment prototype was used for the measurement of the interface pressure over a mannequin limb to analyse different bandages under similar dynamic conditions. RESULTS: The pressure drop in the dynamic state of the mannequin limb was greater than that in the static state. The mean pressure drop in 2 h in the dynamic state was greater by >30% for bandages made of pure cotton or viscose yarns than for bandages having elastomeric yarns in their structure. At the same applied tension, increasing the number of yarns per unit length in the bandage structure resulted in a smaller drop in pressure in the dynamic mode. CONCLUSION: Elastomeric yarn improves the elasticity and fatigue resistance of the bandage. Therefore, these yarns should be used in bandages to obtain sustained compression effects under dynamic conditions.
Keywords: Compression bandage, composition, mannequin limb, interface pressure, fatigue
DOI: 10.3233/BIR-130628
Journal: Biorheology, vol. 50, no. 1-2, pp. 83-94, 2013
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