Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis

Traditional methods for adipose tissue removal have progressed from invasive methods such as liposuction to more modern methods of noninvasive lipolysis. This research entails the development and evaluation of an omnidirectional-capable flat-coil electromagnetic shock wave generator (EMSWG) for lipo...

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Main Authors: Ming Hau Chang, San Yih Lin
Format: Article
Language:English
Published: Hindawi Limited 2017-01-01
Series:Journal of Healthcare Engineering
Online Access:http://dx.doi.org/10.1155/2017/9258512
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spelling doaj-0f860998589649829add75a981035c3d2020-11-24T21:16:22ZengHindawi LimitedJournal of Healthcare Engineering2040-22952040-23092017-01-01201710.1155/2017/92585129258512Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for LipolysisMing Hau Chang0San Yih Lin1Department of Aeronautics and Astronautics, National Cheng Kung University, No. 1, University Road, Tainan City 701, TaiwanDepartment of Aeronautics and Astronautics, National Cheng Kung University, No. 1, University Road, Tainan City 701, TaiwanTraditional methods for adipose tissue removal have progressed from invasive methods such as liposuction to more modern methods of noninvasive lipolysis. This research entails the development and evaluation of an omnidirectional-capable flat-coil electromagnetic shock wave generator (EMSWG) for lipolysis. The developed EMSWG has the advantage of omnidirectional-capable operation. This capability increases the eventual clinical usability by adding three designed supports to the aluminum disk of the EMSWG to allow omnidirectional operation. The focal pressures of the developed EMSWG for different operating voltages were measured, and its corresponding energy intensities were calculated. The developed EMSWG was mounted in a downward orientation for lipolysis and evaluated as proof of concept. In vitro tests on porcine fatty tissues have been carried out. It is found that at a 6 kV operating voltage with 1500 shock wave exposures, a 2 cm thick subcutaneous hypodermis of porcine fatty tissue can be ruptured, resulting in a damaged area of 1.39 mm2. At a 6.5 kV operating voltage with 2000 shock wave exposures, the damaged area is increased to about 5.20 mm2, which can be enlarged by changing the focal point location, resulting in significant lipolysis for use in clinical applications.http://dx.doi.org/10.1155/2017/9258512
collection DOAJ
language English
format Article
sources DOAJ
author Ming Hau Chang
San Yih Lin
spellingShingle Ming Hau Chang
San Yih Lin
Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis
Journal of Healthcare Engineering
author_facet Ming Hau Chang
San Yih Lin
author_sort Ming Hau Chang
title Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis
title_short Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis
title_full Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis
title_fullStr Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis
title_full_unstemmed Development of an Omnidirectional-Capable Electromagnetic Shock Wave Generator for Lipolysis
title_sort development of an omnidirectional-capable electromagnetic shock wave generator for lipolysis
publisher Hindawi Limited
series Journal of Healthcare Engineering
issn 2040-2295
2040-2309
publishDate 2017-01-01
description Traditional methods for adipose tissue removal have progressed from invasive methods such as liposuction to more modern methods of noninvasive lipolysis. This research entails the development and evaluation of an omnidirectional-capable flat-coil electromagnetic shock wave generator (EMSWG) for lipolysis. The developed EMSWG has the advantage of omnidirectional-capable operation. This capability increases the eventual clinical usability by adding three designed supports to the aluminum disk of the EMSWG to allow omnidirectional operation. The focal pressures of the developed EMSWG for different operating voltages were measured, and its corresponding energy intensities were calculated. The developed EMSWG was mounted in a downward orientation for lipolysis and evaluated as proof of concept. In vitro tests on porcine fatty tissues have been carried out. It is found that at a 6 kV operating voltage with 1500 shock wave exposures, a 2 cm thick subcutaneous hypodermis of porcine fatty tissue can be ruptured, resulting in a damaged area of 1.39 mm2. At a 6.5 kV operating voltage with 2000 shock wave exposures, the damaged area is increased to about 5.20 mm2, which can be enlarged by changing the focal point location, resulting in significant lipolysis for use in clinical applications.
url http://dx.doi.org/10.1155/2017/9258512
work_keys_str_mv AT minghauchang developmentofanomnidirectionalcapableelectromagneticshockwavegeneratorforlipolysis
AT sanyihlin developmentofanomnidirectionalcapableelectromagneticshockwavegeneratorforlipolysis
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