电力电容器补偿的原理?

2025-03-05 01:11:32
推荐回答(3个)
回答(1):

电容柜切断电容后,电容内部仍带有大量电荷,未释放完时再次投入,残余电荷会使电容产生的峰值电压最高达额定电压两倍,对电气设备和电容器本身产生非常严重的危害。我们设计电容柜时都装有放电装置,电容器内的残留电压在电容器切断30s内降至50V以下。
为了减少正常运行过程中在放电电阻中的电能损耗,放电电阻的电能损耗不应超过1W(电网在额定电压时)。
电压问题
当用电场所处于低负载时,电容器的补偿容量就会过大,使母线电压升高,而电容实际补偿容量和实际电压的平方成正比,电压升高会使补偿容量进一步增大,反过来又会使电压再升高,就会导致变压器,电动机等电气设备损耗增大,并影响使用寿命。通常是采用过电压保护或避雷器来对电容实施保护,其缺点是由于受器件本身的灵敏度影响,保护往往不够及时,我公司生产的无功功率补偿电容柜可通过控制器设定过压保护值,不仅更贴近用户实际情况,而且反应速度快,可有效保电容器,提高电容柜使用寿命。
3、谐波问题
谐波电流叠加在电容器的基波电流上使电容电流有效值增大,谐波电压叠加在电容器的基波电压上使电容电压峰值增大,极易造成电容器损坏。而且并联电容器对谐波有放大作用,严重时会破坏电网正常运行。通常给并联电容串接一定的电抗器,改变系统阻抗的谐振点。
4、涌流问题
   电容投入时一般会产生涌流,过大的涌流会使电容器温度升高,影响电容器的使用寿命,特别在投切较为频繁的场所,电容器的寿命会明显缩短。一般采用串联电抗器的办法,低压也可采用电容器专用接触器,大多数情况可以满足需要
原理
在实际电力系统中,大部分负载为异步电动机。其等效电路可看作电阻和电感的串联电路,其电压与电流的相位差较大,功率因数较低。并联电容器后,电容器的电流将抵消一部分电感电流,从而使电感电流减小,总电流随之减小,电压与电流的相位差变小,使功率因数提高。
襄樊赫特电气为您提供高低压电容补偿柜

回答(2):

电力电容器补偿的原理如下:
电容柜切断电容后,电容内部仍带有大量电荷。
未释放完时再次投入,残余电荷会使电容产生的峰值电压最高达额定电压两倍。
对电气设备和电容器本身产生非常严重的危害,设计电容柜时都装有放电装置,电容器内的残留电压在电容器切断30s内降至50V以下。
电容器在原理上相当于产生容性无功电流的发电机。其无功补偿的原理是把具有容性功率负荷的装置和感性功率负荷并联在同一电容器上,能量在两种负荷间相互转换。
这样,电网中的变压器和输电线路的负荷降低,从而输出有功能力增加。在输出一定有功功率的情况下,供电系统的损耗降低。比较起来电容器是减轻变压器、供电系统和
工业
配电负荷的最简便、最经济的方法。因此,电容器作为电力系统的无功补偿势在必行。当前,采用并联电容器作为无功补偿装置已经非常普遍。
电力电容器,用于电力系统和电工设备的电容器。任意两块金属导体,中间用绝缘介质隔开,即构成一个电容器。电容器电容的大小,由其几何尺寸和两极板间绝缘介质的特性来决定。当电容器在交流电压下使用时,常以其无功功率表示电容器的容量,单位为乏或千乏。

回答(3):

利用电容电流与电感电流的方向相反(矢量相对方向),以并联的电容电流来抵消电感电流,以使得总电路中电感无功分量减小,即相对的使功率因素提高

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