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研究生: 沈芸如
Yun-ru Shen
論文名稱: 醫療用電療貼片之研究
A Study on Neurostimulation Electrode Patch for Medical Therapy Application
指導教授: 邱顯堂
Hsien-Tang Chiu
口試委員: 楊銘乾
Ming-Chien Yang
陳志堅
Jyh-Chien Chen
學位類別: 碩士
Master
系所名稱: 工程學院 - 材料科學與工程系
Department of Materials Science and Engineering
論文出版年: 2014
畢業學年度: 102
語文別: 中文
論文頁數: 95
中文關鍵詞: 高分子電解質壓克力樹脂導電碳黑電刺激
外文關鍵詞: Polyelectrolyte, Acrylic resin, Carbon Black, Neurostimulation
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  • 本研究主要開發電療貼片,以高分子樹脂材料經不同配比加工後,模擬市售電療貼片,欲達到相同導電度及物性,並期望在示波器產生之訊號上達到一致性。一般市售電療貼片,組成分為絕緣層、導電層及黏著層。絕緣層以市售之EVA發泡材作為材料。導電層以壓克力樹脂(Acrylic resin)為主體,再將不同比例之碳黑(Carbon black)混合。黏著層以高分子電解質(polyelectrolytes)為基材,加入不同比例之硬化劑,比較其物性、黏性及手感上之差異性。


    The main propose of the research is to develop neurostimulation electrode patch. It simulates the ready-made neurostimulation electrode patch via manufactured in different ratio with polymer resin. Moreover, we desire to the same conductivity and physical property, and anticipate reaching its uniformity of signal produced by oscillograph.Ready-made electrotherapy patches consist of insulation layer, conductor layer, and adhesive layer. Insulation layer is made of foaming material. Conductor layer is mainly made of acrylic resin,and mixed with carbon black from different ratio.Adhesive layer is made of polyelectrolytes, adding different ratio of agent treated with stand and heating, respectively. We compare its physical property, adhesive, and hand feeling.

    摘要 I Abstract II 目錄 III 圖目錄 V 表目錄 VII 第1章 前言 1 1.1 研究背景與動機 1 1.2 壓克力 3 1.2.1 發展[3] 3 1.2.2 聚合方式[4] 6 1.2.3 聚合機構 9 1.3 高分子電解質(PEL) 10 1.3.1 簡介 10 1.3.2 發展 12 1.4 共振波 20 1.4.1 簡介 20 1.4.2 治療發展 21 第2章 文獻回顧 23 2.1 電刺激 23 2.1.1 發展 23 2.1.2 波形 26 2.1.3 頻率 27 第3章 實驗 39 3.1 市售貼片之分析 39 3.1.1 外觀結構及阻抗性能 39 3.1.2 各層材料之組成及熱性能分析 40 3.2 實驗架構 41 3.3 實驗材料 42 3.3.1 絕緣層 42 3.3.2 導電層 42 3.3.3 黏著層 42 3.4 實驗配方 43 3.4.1 絕緣層 43 3.4.2 導電層 43 3.4.3 黏著層 43 3.5 實驗方法 44 3.5.1 絕緣層樣品製備 44 3.5.2 導電層樣品製備 44 3.5.3 黏著層樣品製備 44 3.5.4 儀器原理及測試方法 45 第4章 結果與討論 51 4.1 絕緣層 51 4.1.1 掃描式電子顯微鏡 (Scanning electronic microscopy,SEM ) 51 4.1.2 熱重損失分析儀 (Thermal Gravimetric Analyzer,TGA) 54 4.1.3 電學性能測試 55 4.2 導電層 56 4.2.1 流變儀 ( Rheometer) 56 4.2.2 百格試驗之測定 (Cross-cut) 58 4.2.3 電學性能測試 59 4.3 黏著層 61 4.3.1 流變儀 ( Rheometer) 61 4.3.2 傅立葉轉換紅外線光譜儀 (Fourier Transform Infrared Spectrometer,FTIR) 63 4.3.3 滾球試驗 (Tack Rolling Ball) 65 4.3.4 剝離試驗 (Peeling strength) 66 4.3.5 電學性能測試 70 4.4 示波器測試 74 第5章 結論 78 第6章 參考文獻 79

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