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Supersonic Plasma Jet Modelling at Low Pressure Using Recent Advances of the Enthalpy Probe Measurement Technique

机译:使用焓探头测量技术的最近进步的低压超声等离子体喷射建模

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This paper describes the investigation of low pressure supersonic plasma jets as found in LPPS processes. The main objective is to develop and validate a two-dimensional axisymmetric mathematical model representing such flows. Due to the supersonic nature of the jet, insertion of a measurement probe leads to the appearance of a detached shock in front of the probe. Consequently plasma values are measured behind the probe-induced shock, namely the stagnation enthalpy (h{sub}o), the stagnation pressure (p{sub}o) and the static pressure (p). The first two values are taken from enthalpy probe measurements while the third value comes from a new technique. Combining these measurements, a new interpretation method enables the calculation of the free-stream supersonic plasma jet properties. The mathematical model is validated using the enthalpy probe measurements and the free-stream properties from the new interpretation method. Results show that the model does not predict a static pressure as large as the new interpretation method. The principal cause for this discrepancy is attributed to the LTE assumption which is questionable for a 40 mbar plasma jet. The modelling effort reported here confirms the need to develop more detailed mathematical models for low pressure supersonic plasma jets in the future.
机译:本文介绍了LPPS过程中发现的低压超声血浆喷气机的研究。主要目的是开发和验证代表这种流动的二维轴对称数学模型。由于射流的超音速性质,测量探针的插入导致探针前方的分离冲击的外观。因此,等离子体值被测量在探针引起的冲击后面,即停滞焓(H {Sub} O),停滞压力(P {Sub} O)和静压(P)。前两个值取自焓探针测量,而第三个值来自新技术。结合这些测量,一种新的解释方法使得能够计算自由流式超声等离子体喷射性能。使用焓探测测量和来自新解释方法的自由流性质进行验证数学模型。结果表明,该模型不会预测静态压力与新的解释方法一样大。该差异的主要原因归因于LTE假设,该LTE假设可用于40毫巴等离子体射流。这里报道的建模努力证实了需要在将来开发更详细的低压超声波等离子体喷气机的数学模型。

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