并联高压电抗器干扰声场的仿真分析

Zhenhuan Liu, Yulong Chen, Yuan Li
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引用次数: 0

摘要

目前,公司在噪声源控制和噪声传播路径控制方面投入了较多的科研工作和案例项目。如在噪声源治理方面,公司先后针对主要设备主体发布了多项降噪课题。通过对主要设备内部结构的研究,提出了设备内部结构的优化方案,以降低噪声辐射能量,从而实现噪声源的噪声控制。这种对噪声源的控制效果是最直接有效的,但也是最困难的。在噪声传播路径控制方面,目前主要采用吸声技术、隔声技术、消噪技术和阻尼技术。在特高压变电站中,特高压主变位于站址中心区域,对厂界及站外噪声敏感建筑的噪声贡献较小,而高压并联电抗器往往位于站界附近,对厂界及站外噪声敏感建筑的噪声贡献较大,已成为特高压变电站噪声控制的重点对象。因此,特高压变电站的声传输控制主要集中在并联电抗器上,如加高并联电抗器侧厂界墙,在电抗器上安装隔声罩等[1]。重点研究了声屏障、地面效应和声干扰效应对声传播过程的影响。在分析声屏障理论的基础上,建立了试验场,测量了人工声源在不同频率下的声场分布,分析了防护罩对人工声源噪声传播路径的影响,进而研究了防火墙、噪声源和噪声源的防护罩等对变电站噪声传播方式的影响。二是根据ISO 9613-2地效噪声传播理论,选择试验场地,进行人工声源条件下水泥地面和绿色植物(草坪)地面的声传播试验,分析不同频率和不同接收距离下地效噪声衰减情况,并对国际标准ISO 9613-2中规定的相应衰减项进行校正。再次,基于课题1中获得的并联电抗器的声源特性,分析了电抗器周围的干扰声场特性,制定了特高压变电站并联电抗器干扰声场测量试验方案。通过现场测量,分析了声干扰对变电站噪声传播方式的影响,明确了声干扰对变电站电抗器影响的程度和范围。由此得出防火墙、围护层和地面对变电站噪声传播的影响规律,并得出并联电抗器干扰效应对变电站噪声传播方式的影响规律,为特高压变电站规划布局和声环境影响评价提供关键技术支撑[2]。
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Simulation analysis of interference sound field of shunt high voltage reactor
At present, the company has invested more scientific research work and case projects in noise source control and noise transmission path control. For example, in the aspect of noise source control, the company has successively issued a number of noise reduction topics for the main equipment body. By studying the internal structure of the main equipment, it puts forward the optimization scheme for the internal structure of the equipment to reduce the noise radiation energy, so as to achieve the noise control at the noise source. This kind of control effect at the noise source is the most direct and effective, but also the most difficult. In the aspect of noise transmission path control, sound absorption technology, sound insulation technology, noise elimination technology and damping technology are mainly adopted at present. In UHV substation, UHV main transformer is located in the central area of the station site, and its contribution to noise of plant boundary and noise sensitive buildings outside the station is relatively small, while high voltage shunt reactor is often located near the station boundary, The noise contribution to the noise sensitive buildings outside the plant boundary and the station is large, which has become the key object of noise control in UHV substation. Therefore, the control of sound transmission in UHV substation focuses on shunt reactor, such as heightening the plant boundary wall at the side of shunt reactor and installing sound insulation cover on the reactor[1]. This paper focuses on the influence of sound barrier, ground effect and acoustic interference effect on the sound propagation process. Based on the analysis of the sound barrier theory, the test site is built to measure the sound field distribution of the artificial sound source at different frequencies, analyze the influence of the shelter on the noise propagation path of the artificial sound source, and then study the firewall, the noise source and the noise source The influence of enclosure and other shelter on the transmission mode of substation noise. The second is based on the noise propagation theory of ISO 9613–2 ground effect, select the test site, carry out the sound propagation test of cement ground and green plant (lawn) ground under the condition of artificial sound source, analyze the ground effect noise attenuation under different frequencies and different receiving distances, and correct the corresponding attenuation items specified in the international standard ISO 9613–2. Thirdly, based on the sound source characteristics of shunt reactor obtained in topic 1, the interference sound field characteristics around the reactor are analyzed, and then the interference sound field measurement test scheme of shunt reactor in UHV substation is formulated. The field measurement is carried out to analyze the influence of acoustic interference on substation noise propagation mode, and to clarify the extent and scope of the influence of acoustic interference on substation reactor. Thus, the influence law of firewall, enclosure and ground on substation noise propagation is obtained, and the influence law of shunt reactor interference effect on substation noise propagation mode is obtained, which provides key technical support for UHV substation planning layout and acoustic environment impact assessment [2].
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