Foldable structures in small scale for medical application

A number of self foldable deployable structures have been designed and investigated in this final year project for possible medical applications, such as clamping of blood vessels in minimally invasive surgical operations and planting of retractable filters in blood vessels. In this report,...

Full description

Bibliographic Details
Main Author: Lim, Clarence Chi Yuin.
Other Authors: Chen Yan
Format: Final Year Project (FYP)
Language:English
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/10356/40562
_version_ 1811687816809152512
author Lim, Clarence Chi Yuin.
author2 Chen Yan
author_facet Chen Yan
Lim, Clarence Chi Yuin.
author_sort Lim, Clarence Chi Yuin.
collection NTU
description A number of self foldable deployable structures have been designed and investigated in this final year project for possible medical applications, such as clamping of blood vessels in minimally invasive surgical operations and planting of retractable filters in blood vessels. In this report, the author describes the process of researching through the various types of linkages and also the materials suitable for this device. The proposed design is the integration of deployable structures and Shape Memory Alloy (SMA). The foldability or deployment is achieved by the basic performance of a deployable structure while the automated actuation is the function of the SMA with the operating temperature as the control parameter. The blood vessel clamp device was achieved by integrating shape memory alloy hinges with linkages that allowed close contact foldability. The SMA hinges were trained in a configuration such that once a specific temperature is reached, the hinges will actuate the linkage to fold down from an expanded to collapsed state, thus shutting tight a blood vessel. The filter device in general adopts a similar design as the blood vessel clamp but with minor changes, such as the reversed SMA hinge configuration (from closed to open) and an addition of a netting to filter unwanted particles from the blood flow. To evaluate the effectiveness of the clamp device, a blood pump flow rig with an artificial brachial artery was used to simulate the pressures and forces involved when clamping a blood vessel. Another method of test for the hinge forces was a spring balance test. This allowed the author to know exactly what kind of load the clamps are capable of handling with the current hinge design. These results will also be used as a benchmark when future developments will improve the overall performance of the clamps. The report concludes with a comparison with similar devices currently in the market today, discussions on areas where future development should be concentrated on and also the marketability of these devices.
first_indexed 2024-10-01T05:22:20Z
format Final Year Project (FYP)
id ntu-10356/40562
institution Nanyang Technological University
language English
last_indexed 2024-10-01T05:22:20Z
publishDate 2010
record_format dspace
spelling ntu-10356/405622023-03-04T19:14:25Z Foldable structures in small scale for medical application Lim, Clarence Chi Yuin. Chen Yan School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering::Surgical assistive technology A number of self foldable deployable structures have been designed and investigated in this final year project for possible medical applications, such as clamping of blood vessels in minimally invasive surgical operations and planting of retractable filters in blood vessels. In this report, the author describes the process of researching through the various types of linkages and also the materials suitable for this device. The proposed design is the integration of deployable structures and Shape Memory Alloy (SMA). The foldability or deployment is achieved by the basic performance of a deployable structure while the automated actuation is the function of the SMA with the operating temperature as the control parameter. The blood vessel clamp device was achieved by integrating shape memory alloy hinges with linkages that allowed close contact foldability. The SMA hinges were trained in a configuration such that once a specific temperature is reached, the hinges will actuate the linkage to fold down from an expanded to collapsed state, thus shutting tight a blood vessel. The filter device in general adopts a similar design as the blood vessel clamp but with minor changes, such as the reversed SMA hinge configuration (from closed to open) and an addition of a netting to filter unwanted particles from the blood flow. To evaluate the effectiveness of the clamp device, a blood pump flow rig with an artificial brachial artery was used to simulate the pressures and forces involved when clamping a blood vessel. Another method of test for the hinge forces was a spring balance test. This allowed the author to know exactly what kind of load the clamps are capable of handling with the current hinge design. These results will also be used as a benchmark when future developments will improve the overall performance of the clamps. The report concludes with a comparison with similar devices currently in the market today, discussions on areas where future development should be concentrated on and also the marketability of these devices. Bachelor of Engineering (Mechanical Engineering) 2010-06-16T07:41:15Z 2010-06-16T07:41:15Z 2010 2010 Final Year Project (FYP) http://hdl.handle.net/10356/40562 en Nanyang Technological University 91 p. application/pdf
spellingShingle DRNTU::Engineering::Mechanical engineering::Surgical assistive technology
Lim, Clarence Chi Yuin.
Foldable structures in small scale for medical application
title Foldable structures in small scale for medical application
title_full Foldable structures in small scale for medical application
title_fullStr Foldable structures in small scale for medical application
title_full_unstemmed Foldable structures in small scale for medical application
title_short Foldable structures in small scale for medical application
title_sort foldable structures in small scale for medical application
topic DRNTU::Engineering::Mechanical engineering::Surgical assistive technology
url http://hdl.handle.net/10356/40562
work_keys_str_mv AT limclarencechiyuin foldablestructuresinsmallscaleformedicalapplication