超聲電導(dǎo)治療儀的設(shè)計(jì)與實(shí)現(xiàn)
[Abstract]:In recent years, with the rapid development of medicine, patients also have more choices in the way of drug delivery. However, traditional administration methods such as oral administration, injection due to some of its own shortcomings, has been unable to meet the needs of patients for certain drugs. Transdermal drug delivery system (TDS), as a drug delivery route through the skin surface, can be treated locally or all over the body. Therefore, it is of great theoretical and engineering significance to study this route of administration for the treatment of patients' condition in the future. In view of the blocking effect of the cuticle of the skin, physical and chemical methods are needed to assist the infiltration of most drugs that are difficult to penetrate under the skin. Although electroporation, iontophoresis and ultrasound can all be used as new percutaneous absorption methods, it has been found that when these three methods act alone, the permeation effect of some specific drugs is not obvious. In view of the problem that the above three methods can not satisfy the permeability of some drugs when they act alone, this paper designs and studies the electroporation, which is based on the current development technology and demand of the transdermal drug delivery apparatus. Modern iontophoresis and ultrasonic cavitation technology as one of the ultrasonic conductivity therapeutic apparatus. The therapeutic instrument is based on the enhanced 8051 single chip microcomputer STC90C58RD as the core control unit, external expansion of the hole module, conductivity module, ultrasonic module, electrode anomaly detection module, human-computer interaction module and identity card interface module. In addition, through the self-made reader and writer, the related control function of the identification card to the therapeutic instrument is completed, which brings convenience to the management of the therapeutic instrument under the control of no one. The background of this thesis is based on the development of the ultrasonic conductivity therapy instrument which the author participated in during his internship in a company in Nanjing. The research results have passed the examination of the relevant departments of the state successfully after the omni-directional debugging process, but for a transdermal drug delivery field, There is still a lot of work to be further studied and promoted.
【學(xué)位授予單位】:南京理工大學(xué)
【學(xué)位級別】:碩士
【學(xué)位授予年份】:2013
【分類號】:TP368.12
【參考文獻(xiàn)】
相關(guān)期刊論文 前10條
1 向華平;唐敖;;基于雙骨架模型的自頂向下設(shè)計(jì)方法[J];四川兵工學(xué)報(bào);2011年02期
2 傅勤毅,李海浪;單片機(jī)與液晶顯示器的接口及應(yīng)用[J];今日電子;2005年06期
3 徐春龍;胡卓蕊;田華;;壓電超聲換能器電端匹配電路研究[J];紡織高校基礎(chǔ)科學(xué)學(xué)報(bào);2007年02期
4 王勇,田曉東;數(shù)控電位器X9313及其應(yīng)用[J];國外電子元器件;1997年07期
5 楊芳芳;張永萍;;促進(jìn)藥物透皮吸收物理方法的應(yīng)用概述[J];貴陽中醫(yī)學(xué)院學(xué)報(bào);2006年02期
6 蔡怡娟;;促進(jìn)藥物透皮吸收方法的研究進(jìn)展[J];海峽藥學(xué);2006年03期
7 張軍;薛萬鐵;朱玉琛;郭海雷;;OCMJ4×8B模塊在分析儀器中的應(yīng)用[J];艦船防化;2011年03期
8 李衛(wèi)敏,車曉平;促進(jìn)藥物透皮吸收的概述[J];繼續(xù)醫(yī)學(xué)教育;2005年07期
9 連紅運(yùn);齊崢;王書雙;;20MHz超聲聚焦換能器的設(shè)計(jì)及其應(yīng)用[J];科技導(dǎo)報(bào);2009年02期
10 姚德法;;單片機(jī)應(yīng)用中的鍵盤模塊設(shè)計(jì)[J];信息技術(shù)與信息化;2005年06期
相關(guān)博士學(xué)位論文 前1條
1 溫世杰;數(shù)字式醫(yī)學(xué)超聲內(nèi)窺鏡成像系統(tǒng)的研究[D];天津大學(xué);2009年
相關(guān)碩士學(xué)位論文 前10條
1 徐從娟;經(jīng)皮給藥原理與數(shù)學(xué)模型分析[D];山東大學(xué);2011年
2 張曉磊;工程機(jī)械控制器的設(shè)計(jì)與實(shí)現(xiàn)[D];南京理工大學(xué);2012年
3 梁英;一種新型超聲波電源的研究設(shè)計(jì)[D];西北工業(yè)大學(xué);2005年
4 辛雅寧;一種新型超聲電源換能系統(tǒng)的研究設(shè)計(jì)[D];西北工業(yè)大學(xué);2005年
5 方翔;超聲波氣體流量計(jì)的研制[D];華中科技大學(xué);2004年
6 姜勇;時差法超聲波流量計(jì)設(shè)計(jì)與研發(fā)[D];浙江大學(xué);2006年
7 鞠文濤;超聲波熱量表的設(shè)計(jì)與研發(fā)[D];浙江大學(xué);2008年
8 翟錫亮;聲傳播時間海流計(jì)的技術(shù)研究[D];哈爾濱工程大學(xué);2008年
9 霍樹青;耦合式超聲復(fù)合加工裝置的設(shè)計(jì)研究[D];南京航空航天大學(xué);2009年
10 李根旺;無串?dāng)_超聲測距系統(tǒng)硬件設(shè)計(jì)與激勵方法[D];天津大學(xué);2009年
,本文編號:2434035
本文鏈接:http://sikaile.net/kejilunwen/jisuanjikexuelunwen/2434035.html