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Calculation of current carrying capacity of high-voltage cables | Calculation method and influencing factors of current carrying capacity of high-voltage cables

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1. Calculation method and influencing factors of current carrying capacity of high-voltage cables

1. Careful calculation method of current carrying capacity of high-voltage cables High voltage cables are an indispensable part of the power system, which can effectively transmit the high-voltage electrical energy generated by power plants to various power stations. The current carrying capacity of high-voltage cables is an important indicator for measuring the conductivity of cables. Calculating the current carrying capacity of high-voltage cables requires consideration of factors such as cable cross-sectional area, material resistivity, and ambient temperature. Generally speaking, the calculation formula for the current carrying capacity of high-voltage cables is I=K * S * (θ+Kt), where I is the maximum current carrying capacity of the cable, S is the cross-sectional area of the cable, θ is the ambient temperature, K and Kt are constants, and are related to the conductor material and cable structure of the cable. 2. Factors that affect the current carrying capacity of high-voltage cables are not only related to the structure and material of the cable itself, but also influenced by various factors. The first influencing factor is the ambient temperature of the cable. Generally speaking, high temperature environments can increase the electrical resistivity of cables, thereby reducing their conductivity. Secondly, the load on the cable will also affect its current carrying capacity. When a cable is subjected to a large charge, its resistivity increases, resulting in a decrease in the transmission efficiency of the cable. In addition, factors such as the contact quality and length of cable connectors, and the layin

Calculation of current carrying capacity of high-voltage cables
g method of cables can also have a significant impact on the current carrying capacity of cables. To improve the current carrying capacity of high-voltage cables, it is necessary to start from multiple aspects. Firstly, high-quality high-voltage cables should be selected. Some low-quality and unqualified cable materials may cause safety issues such as cable short circuits and leakage. Secondly, attention should be paid to the laying method of cables and the contact quality of cable connectors. The cable connector should be firmly and reliably connected to avoid poor contact. Finally, the ambient temperature should be controlled to ensure that the cable operates within a suitable temperature range. Overall, improving the current carrying capacity of high-voltage cables requires a comprehensive consideration of various measures such as scientifically and reasonably selecting cable materials, paying attention to cable laying and joint connection quality, and controlling environmental temperature.

2. How to calculate the current carrying capacity of high-voltage cables? When selecting the high voltage side cable of a 2000kVA transformer, considering the voltage is 10kV, according to the power calculation formula P=UI, where I=P ÷ U, the current can be obtained as 200A. In order to ensure sufficient slag carrying capacity, the required cable cross-sectional area is 200A ÷ 3.5=57.143 square millimeters, calculated with a current carrying capacity of 3.5A/mm ². Therefore, it is recommended to use aluminum wire with a cross-sectional area of 57.143 square millimeters. For a 1000kVA transformer, using the same formula, the current is 100A. If calculated based on a current carrying capacity of 4A/mm ², the cross-sectional

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