svc reactive power compensation

SVC (Static Var Compensator) reactive  power compensation  is a high-tech equipment to control  the  voltage, reducing  the  line loss  and improving power factor  in electrical  system. SVC may also maintain a balance of the reactive power demand by interacting in dynamically varying proportions with the company’s MG system, ensuring safe and efficient operation while reducing energy loss. This saves energy and also extends the life of electrical equipment, with tremendous cost savings to industry.

 

Power factor is an important measure of the efficiency of electric power distribution. A low power factor wastes electricity and increases the KWh usage of a system which in turn causes higher electricity bills. By utilizing Zhifeng SVC technology, the industry is able to raise their power factor by injecting or absorbing reactive power in the network, optimize and save on electricity costs as well as EPC-manage overall system performance. By means of PIS Thyristor Contactless Switching Switch systems businesses are able to attain optimal use of energy and decrease operation costs.

Improve Power Factor and Reduce Electricity Costs with SVC Technology

Voltage unbalance or such conditions can cause power loss in sophisticated (complex) electrical networks. Zhifeng has been supplying SVC systems for the purposes of voltage stability and electricity loss reduction within electrical networks. Through the continuous control of reactive power generation, SVC systems facilitate efficient energy transfer and provide stability during use, offering a more reliable operation and less downtime for processes in industry.

Stability of system and regulation of voltage for non interrupted quality power supply and disturbance free operation is very crucial. The SVC control technology of Zhifeng can provide accurate, flexible and adaptive reactive power support to maintain stable voltage and minimize the cost performance. Due to use of sophisticated control algorithms, SVC systems are capable of rapid response to demand variations and power system architecture stability retention, which ultimately leads towards enhanced overall system reliability and resilience.

 

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