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Electrical, Optical and acoustic diagnostics of atmospheric pressure gas discharges

机译:大气压气体放电的电气,光学和声学诊断

摘要

This thesis presents original diagnostic investigations of atmospheric pressure gaseous discharges, operating in owing helium and helium with low concentrations (0.1 - 1 %) of gas admixtures, together with novel biomedical surfaceudfunctionalisations.udThe initial body of this work focuses on comprehensive electrical and optical diagnostics of the operation of an industrial scale dielectric barrier discharge (DBD), maintained in a 10 l/min w of both helium and helium withud1% admixed oxygen. The experimental results reveal a coupling between the power dissipated in the discharge and the discharge homogeneity which, in turn, correlates to a shift in the power supply operating frequency and speciesudoptical emission intensities. The shift in the operating frequency is shown to be dependent upon increased charge deposition on the electrodes, as the input power is increased, thus changing the overall system capacitance through charge-voltage LIssajous gure analyses. Furthermore it is demonstrated that the gas temperature did not exceed approximately 380-410 K over the full parameter space, in the helium discharge, through model tting of the rstudnegative system of the N+2 band around 391.4 nm.udA real-time, PC based monitoring diagnostic system has been developed which is used to perform long term analyses of a laboratory DBD chamber in helium and helium with 0.1% admixtures of both oxygen and nitrogen. Post analysis of the results, through multivariate analysis of the large experimental datasets, show that rapid system characterisations are faciltated using this method, the outcomes of which are compared with both global and uid model outputs within the literature.udPassive acoustic diagnostics of a plasma jet system, together with signal analysis in the time, frequency and time-frequency domains are explored. Here it is found that udow induced mode transitions from buoyant, through laminar,udto turbulent regimes may be identied using time-frequency scalogram plots.udIt is shown that the scalogram plots may also be used to identify the point at which power coupling together with the plume length are maximised. The transition into a fully turbulent plume structure is shown to be accompanied by low frequency acoustic signals which modulate the acoustic rst harmonic in the time-frequency domain. Moreover, a non invasive measurement of the power coupled into the discharge is demonstrated through passive acoustic sensing whilst the jet ow is laminar.udFinally, surface modications of disposable plastics for biosensor applications are performed. In this work it is shown that the density of packing of both 40 nm and 80 nm gold nanoparticles may be tailored, through variation of the gas input ow rate of a linear eld jet, in order to enhance the optical signal according to the Mie theory for light extinction at a metal nanoparticle interface. The functionalisation using long chain polethyleneglycol hasudalso been demonstrated to provide a protein repellent surface for non-specic protein binding reduction.
机译:本文提出了大气压力下气体放电的原始诊断研究,该工作是由于氦气和低浓度(0.1-1%)混合气中的氦气,以及新颖的生物医学表面超功能化。 ud这项工作的最初主体侧重于综合电气工业规模介电势垒放电(DBD)的操作的光学诊断和诊断,氦气和氦气中的氧气混合浓度为ud1%。实验结果表明,放电中消耗的功率与放电均匀性之间存在耦合,而耦合又与电源工作频率和物种非典型发射强度的变化相关。如图所示,随着输入功率的增加,工作频率的变化取决于在电极上增加的电荷沉积,从而通过电荷电压LIssajous gure分析来改变整个系统的电容。此外,通过对391.4 nm附近的N + 2波段的第一负离子系统进行模型拟合,证明了在氦气放电的整个参数空间中,气体温度未超过约380-410K。当时,已经开发出了基于PC的监测诊断系统,该系统可用于对实验室DBD室的氦气和氦气以及0.1%的氧气和氮气混合气进行长期分析。通过对大型实验数据集进行多变量分析,对结果进行后期分析,结果表明,使用此方法可促进快速的系统表征,并将其结果与文献中的全局和uid模型输出进行比较。喷射系统,以及在时域,频域和时频域的信号分析。在此发现, udow诱导的从浮力到层流的模态转变可以使用时频比例图来识别。 ud表明,该比例图也可以用于识别功率耦合点。与羽流长度一起被最大化。示出了向完全湍流的羽流结构的过渡伴随着低频声信号,该低频声信号在时频域中调制声一次谐波。此外,当射流呈层流状态时,通过无源声波传感可以证明耦合到放电的功率的非侵入性测量。 u最后,对生物传感器应用的一次性塑料进行表面处理。在这项工作中表明,可以通过改变线性场射流的气体输入流速来调整40 nm和80 nm金纳米颗粒的堆积密度,从而根据米氏理论增强光信号。用于金属纳米粒子界面处的消光。还已证明使用长链聚乙二醇进行的功能化可为非特异性蛋白质结合减少提供蛋白质排斥表面。

著录项

  • 作者

    OConnor Niall;

  • 作者单位
  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 en
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