1. 湖北省输电线路工程技术研究中心(三峡大学),宜昌,443002
2. 三峡大学电气与新能源学院,宜昌,443002
3. 先进输电技术全国重点实验室(全球能源互联网研究院有限公司),北京,102209
4. 国网湖北省电力有限公司宜昌供电公司,宜昌,443002
纸质出版:2025
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陈彬, 沈辰轩, 张涛, 等. 高频变压器多层共振复合吸声结构优化与设计[J]. 高电压技术, 2025,(11):5648-5660.
CHEN Bin, SHEN Chenxuan, ZHANG Tao, et al. 高频变压器多层共振复合吸声结构优化与设计[J]. 2025, (11): 5648-5660.
陈彬, 沈辰轩, 张涛, 等. 高频变压器多层共振复合吸声结构优化与设计[J]. 高电压技术, 2025,(11):5648-5660. DOI: 10.13336/j.1003-6520.hve.20241176.
CHEN Bin, SHEN Chenxuan, ZHANG Tao, et al. 高频变压器多层共振复合吸声结构优化与设计[J]. 2025, (11): 5648-5660. DOI: 10.13336/j.1003-6520.hve.20241176.
大容量高频变压器通常处于高频方波电压激励下,大量的电压谐波分量会造成高频变压器铁芯振动过程中含有大量的高阶振动分量,进而引起高次谐波处声压级显著增大,造成严重的噪声污染。为此,该文首先设计了一种新型多层共振复合吸声结构,基于传递矩阵法对比分析了6种不同吸声结构的吸声性能;然后建立了高频变压器电磁-结构-声三维仿真模型,分析了高频变压器加与未加复合吸声装置下声场分布特性;在此基础上,采用中心组合试验设计与有限元仿真相结合的方法,获得吸声装置在不同结构参数下的声场仿真结果,通过构建径向基神经网络模型来预测声压级,并利用全局灵敏度分析技术研究吸声装置结构参数对声压级水平的影响程度;最后,基于融合正余弦和柯西变异的麻雀搜索优化算法,获得了吸声装置最优设计参数并通过仿真验证。结果表明:优化后的吸声结构噪声抑制效果显著,相比未优化前声压级水平降低10.176 dB,验证了多层共振复合吸声结构对高频变压器具有较好的抑噪效果。
Large-capacity high-frequency transformers (HFT) are typically under the excitation of high-frequency square wave voltage
and a large number of voltage harmonic components will cause a large number of high-order vibration components in the core vibration process of HFT
which in turn will cause a significant increase in the sound pressure level at high-order harmonics
resulting in serious noise pollution. To solve this issue
a new multi-layer resonance composite sound-absorbing structure was first designed. The sound absorption performance of six different sound-absorbing structures was compared and analyzed by using the transfer matrix method. Subsequently
a three-dimensional electromagnetic-structure-acoustic simulation model for HFT was established to analyze characteristics of the sound field distribution in the presence and absence of the composite sound-absorbing device. On this basis
a method combining central composite experimental design with finite element simulation was adopted to obtain the sound field simulation results of the sound-absorbing device under different structural parameters. Then
a radial basis function (RBF) neural network model was established to predict sound pressure levels
and global sensitivity analysis technology is used to study the influence degree of the structural parameters of the sound absorbing device on the sound pressure level. Finally
the sparrow search optimization algorithm fused with Sine-cosine and Cauchy mutation was applied to obtain the optimal design parameters of sound-absorbing device and its was verified through simulation. The simulation results show that the noise suppression effect of the optimized sound-absorbing structure is significant
and the sound pressure level is decreased by 10.176 dB compared to the non-optimized structure. Therefore
it is verified that the multi-layer resonance composite sound-absorbing structure has a good noise suppression effect on high-frequency transformers.
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