Specific Dependence on Absolute Humidity and Saturation Deficit of Air Discharge Currents from Electrostatic Discharge Generator with Different Approach Speeds

Takeshi Ishida, O. Fujiwara
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引用次数: 1

Abstract

The International Electro-technical Commission (IEC) specifies air discharge immunity testing for electronic equipment in the standard 61000-4-2 under the climatic conditions of relative humidity from 30 to 60 % and ambient temperature from 15 to 35 degrees Celsius. For aiming to improve the testing reproducibility, to clarify effects of the above climate parameters on air discharge testing, we previously measured air discharge currents from an electrostatic discharge (ESD) generator with an approach speed of 80 mm/s under 6 combinations of relative humidity and temperature. The result showed that the same absolute humidity provides almost similar waveforms of the discharge currents despite different relative humidity and temperature. In this study, to further examine such combined effects, we measure air discharge currents from the ESD generator at a test voltage of 15 kV with three different approach speeds of 20 mm/s, 50 mm/s and 80 mm/s under 9 combinations of relative humidity and temperature inside and outside the IEC specified climate ranges. As a result, air discharge current behavior is affected by not only absolute humidity (AH) but also saturation deficit (SD) or the difference between the AH and the saturated water vapor amount. The humidity dependence differs according to the IEC specified and non-specified climate ranges, while it can well be explained by the SD. Under the IEC specified conditions, at faster approach speeds, the peak currents of air discharges have maximum values at AH7.70 g/m3 and SD15.36 g/m3, whereas they are 1.2 to 1.4 times larger compared to those at almost the same AH7.71 g/m3 and smaller SD5.14 g/m3, respectively. In the IEC non-specified climate range, however, regardless of the approach speeds, the current peaks noticeably reach maximum values at AH3.81 g/m3 and SD19.26 g/m3, which are 3.6 to 5.2 times larger than those at roughly the same AH3.96 g/m3 and larger SD35.64 g/m3, respectively.
不同进近速度下静电放电发生器空气放电电流对绝对湿度和饱和亏缺的特定依赖性
国际电工委员会(IEC)在标准61000-4-2中规定了在相对湿度为30 ~ 60%,环境温度为15 ~ 35摄氏度的气候条件下,电子设备的空气放电抗扰度测试。为了提高测试的重复性,明确上述气候参数对空气放电测试的影响,我们在6种相对湿度和温度组合下,以80 mm/s的接近速度测量了静电放电(ESD)发生器的空气放电电流。结果表明,在相同的绝对湿度条件下,尽管相对湿度和温度不同,但放电电流波形基本相似。在本研究中,为了进一步研究这种综合效应,我们在IEC规定的气候范围内外的9种相对湿度和温度组合下,以15 kV的测试电压、20 mm/s、50 mm/s和80 mm/s三种不同的接近速度测量ESD发生器的空气放电电流。因此,空气放电电流的行为不仅受到绝对湿度(AH)的影响,还受到饱和亏缺(SD)或饱和水汽量与AH的差值的影响。根据IEC规定的和非规定的气候范围,湿度依赖关系有所不同,而SD可以很好地解释它。在IEC规定的条件下,在更快的接近速度下,空气放电的峰值电流在AH7.70 g/m3和SD15.36 g/m3时达到最大值,而在几乎相同的AH7.71 g/m3和较小的SD5.14 g/m3时分别大1.2 ~ 1.4倍。然而,在IEC非规定气候范围内,无论接近速度如何,电流峰值在AH3.81 g/m3和SD19.26 g/m3时明显达到最大值,分别是大致相同的AH3.96 g/m3和更大的SD35.64 g/m3时的3.6 ~ 5.2倍。
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