Considering the effects of expansion and deformation after accessory installation on the reliability of cable accessory in service
a new optimal design scheme was proposed for high voltage cable accessory. The deformation and displacement equations of cable accessory during expansion were deduced in detail with the theory of elasticity
then the production structure was obtained via the optimized structure relaxation in an expansive state to ensure the optimum electrical field after accessory installation. According to the structure parameters of the domestic 35 kV cold shrinkage cable
the effects on electrical field distribution of cable accessory were analyzed by comparing the proposed and the traditional design schemes
then the deformation and recovery method were verified. The simulation and calculation show that the displacement nonlinearly decreases from inside to outside of the insulation during cable accessory expansion; the expanded accessory leads to a thinner main insulation thickness and a shorter length; the angle of stress cone and the end shape of high voltage shielding tube deviate from the design structure
which results in enhanced electric field at the interface and the end of HV shielding tube.
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references
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