Author:
Golebiowski Jerzy,Piotr Bycul Robert
Abstract
Purpose
– The purpose of this paper is to prepare procedures for determination of characteristics and parameters of DC cables on the basis of transient and steady thermal field distribution in their cross-sections.
Design/methodology/approach
– Steady-state current rating was computed iteratively, with the use of steady thermal field distribution in the cable. The iterative process was regulated with respect to this field by changes of the mean surface temperature of the sheath of the cable. It was also controlled with respect to the unknown current rating by deviations of the temperature of the core from the maximum sustained temperature of the insulation (material zone) adjacent to the core. Heating curves were determined (in arbitrarily selected points of the cross-section of the cable) by a parallel algorithm described thoroughly in the first part of the paper. The algorithm was used for computing of transient thermal field distribution throughout the whole cross-section. Thermal time constant distributions were determined by the trapezium rule, where the upper integration limit of respective thermal field distributions was being changed.
Findings
– Using the methods prepared the following characteristics/parameters of the cable were determined: steady-state current rating, spatial-time heating curves, mean thermal time constant distribution. The results were verified and turned to be in conformance with those of the IEC 287 Standard and a commercial software – Nisa v. 16. Speedup and efficiency of the parallel computations were calculated. It was concluded that the parallel computations took less time than the sequential ones.
Research limitations/implications
– The specialized algorithms and software are dedicated to cylindrical DC cables.
Practical implications
– The knowledge of the determined characteristics and parameters contributes to optimal exploitation of a DC cable during its use.
Originality/value
– The algorithms of determination of the steady-state current rating and thermal time constant are original. The software described in the appendix has also been made by the authors.
Subject
Applied Mathematics,Computer Science Applications,Mechanical Engineering,Mechanics of Materials
Reference16 articles.
1. Atmane, M.A.
,
Chan, V.S.S.
and
Murray, D.B.
(2003), “Natural convection around a horizontal cylinder: the effects of vertical confinement”, International Journal of Heat and Mass Transfer, Vol. 46 No. 19, pp. 3661-3672.
2. Bathe, K.J.
(1990), Finite-Elemente Methoden, Springer, Berlin, New York, NY.
3. Donaldson, V.
,
Berman, F.
and
Ramamohan, P.
(1994), “Program speedup in a heterogeneous computing network”, Journal of Parallel and Distributed Computing, Vol. 21 No. 3, pp. 316-322.
4. Extensible Markup Language (XML) (2011), available at: www.w3.org/XML/ (accessed 1 March 2010).
5. GoŁębiowski, J.
and
Bycul, R.P.
(2008), “Modelling of thermal field dynamics in a DC cable with application of parallel computations. Part 1 and 2”, Archives of Electrical Engineering, Vol. LVII Nos 3-4, pp. 277-302.
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献