中国电机工程学报
中國電機工程學報
중국전궤공정학보
Proceedings of the CSEE
2015年
22期
5950-5956
,共7页
王东阳%周利军%江俊飞%王路伽%郭蕾
王東暘%週利軍%江俊飛%王路伽%郭蕾
왕동양%주리군%강준비%왕로가%곽뢰
变压器油%低频激励%频域介电响应%低频弥散%电极极化
變壓器油%低頻激勵%頻域介電響應%低頻瀰散%電極極化
변압기유%저빈격려%빈역개전향응%저빈미산%전겁겁화
transformer oil%low frequency excitation%frequency domain dielectric response%low frequency dispersion%electrode polarization
针对变压器油频域介电谱低频部分弥散现象的原因,即电极极化进行了研究。分析了变压器油隙在低频正弦激励下内部离子动态分布的过程,建立了离子分布模型,依据离子分布构建了弛豫时间和德拜(Debye)长度的表达函数,并用于 Debye 弛豫模型的参数计算,从而得到了以电极极化为基础的介电参数方程。计算并分析了所述试验条件下的电极极化参数,通过仿真与实测数据的对比,验证了电极极化模型及其相应介电参数方程的正确性。研究结果表明:仿真电流与试验测试电流相符合,建立的离子分布模型能够有效地表征变压器油隙频域介电响应中的电极极化机制;介电参数计算值与试验测值相符合,建立的介电参数方程能够有效地表征变压器油频域介电响应中受电极极化作用时的介电参数。所建立的离子分布模型与介电参数方程能够给油纸绝缘频域介电谱低频弥散特性研究提供基础,以便更好的将频域介电谱技术应用到工程中。
針對變壓器油頻域介電譜低頻部分瀰散現象的原因,即電極極化進行瞭研究。分析瞭變壓器油隙在低頻正絃激勵下內部離子動態分佈的過程,建立瞭離子分佈模型,依據離子分佈構建瞭弛豫時間和德拜(Debye)長度的錶達函數,併用于 Debye 弛豫模型的參數計算,從而得到瞭以電極極化為基礎的介電參數方程。計算併分析瞭所述試驗條件下的電極極化參數,通過倣真與實測數據的對比,驗證瞭電極極化模型及其相應介電參數方程的正確性。研究結果錶明:倣真電流與試驗測試電流相符閤,建立的離子分佈模型能夠有效地錶徵變壓器油隙頻域介電響應中的電極極化機製;介電參數計算值與試驗測值相符閤,建立的介電參數方程能夠有效地錶徵變壓器油頻域介電響應中受電極極化作用時的介電參數。所建立的離子分佈模型與介電參數方程能夠給油紙絕緣頻域介電譜低頻瀰散特性研究提供基礎,以便更好的將頻域介電譜技術應用到工程中。
침대변압기유빈역개전보저빈부분미산현상적원인,즉전겁겁화진행료연구。분석료변압기유극재저빈정현격려하내부리자동태분포적과정,건립료리자분포모형,의거리자분포구건료이예시간화덕배(Debye)장도적표체함수,병용우 Debye 이예모형적삼수계산,종이득도료이전겁겁화위기출적개전삼수방정。계산병분석료소술시험조건하적전겁겁화삼수,통과방진여실측수거적대비,험증료전겁겁화모형급기상응개전삼수방정적정학성。연구결과표명:방진전류여시험측시전류상부합,건립적리자분포모형능구유효지표정변압기유극빈역개전향응중적전겁겁화궤제;개전삼수계산치여시험측치상부합,건립적개전삼수방정능구유효지표정변압기유빈역개전향응중수전겁겁화작용시적개전삼수。소건립적리자분포모형여개전삼수방정능구급유지절연빈역개전보저빈미산특성연구제공기출,이편경호적장빈역개전보기술응용도공정중。
This paper studied the electrode polarization which is the reason of the low frequency dispersion existing in the dielectric spectroscopy of transformer oil. The ionic dynamic distribution of oil gap was analyzed when it was applied low frequency sinusoidal excitation. A model was established which describes the distribution of ionic concentration during the testing process. The expressions of relaxation time and Debye length were obtained based on the ionic distribution model. The electrode polarization parameters were used to calculate the parameters of Debye relaxation model, then the expression of dielectric constants were obtained. The validity of established model and the expression about dielectric constants were testified by comparing the simulated and measured results. The results show that: the simulated current can match the measured current well, thus the established model can reflect the mechanism of electrode polarization existing in the dielectric response of transformer oil; the calculated dielectric parameters can match the measured dielectric parameters well, thus the established expressions about dielectric parameters is effective when the dielectric response of transformer oil is under the effects of electrode polarization. The established ionic distribution model and dielectric parameters expressions can provide the basis of studying the characteristics of low frequency dispersion existing in dielectric spectroscopy of oil-paper insulation and be help for the usage of frequency domain spectroscopy technique in engineering.