Self-field AC losses in PbBi-2223 Ag sheathed tapes were measured at different temperatures and frequencies using a lock-in amplifier and a Rogowski coil. For Jd~, the E'(d) characteristics converge rapidly to a frequency independent function, as the losses become dominated by a resistive mechanism
Characteristics of the a.c. losses in Ag-sheathed PbBi2223 tapes
โ Scribed by Y. Yang; T. Hughes; C. Beduz
- Publisher
- Elsevier Science
- Year
- 1997
- Tongue
- English
- Weight
- 598 KB
- Volume
- 37
- Category
- Article
- ISSN
- 0011-2275
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โฆ Synopsis
A mini review of our latest results on the a.c. losses in Ag-sheathed PbBi2223 tapes is presented with the focus on self-field losses in a variety of situations and external losses with and without a d.c. transport current. Comparative measurements with the thermometric and electric methods have demonstrated the validity of the electric method despite the problem of a distribution of the loss electric field. Using these two methods the effect of a longitudinal distribution of critical current along the tape has been shown. The influence of a transverse distribution of the local J, through the core of the tape is also examined. Studies of the magnetic field dependence of the self-field losses have shown that different regions of the core have a different J,(B) dependence, in contrast to the temperature dependence where all regions of the core show a similar dependence. Measurements at higher frequencies show the importance of flux diffusion where an increased dB/dt gives an increased induced critical current. At sufficiently higher frequencies ( > 200 Hz) the self-field of the core is shown to induce eddy current losses within the silver sheath of the tape. For the external a.c. field case in parallel fields the losses are well described by the infinite slab geometry. For the case of the perpendicular field the losses are considerably less than those expected from either the thin ellipse or rectangle geometry. Possible mechanisms for this discrepancy include granularity of the tape or partial uncoupling of the filaments. For the combined action of an a.c. external field and a dc. transport current our results show that the total losses cannot be obtained using only using a pick-up loop to measure the flux changes within the tape. An additional loss sustained by the d.c. current source also needs to be measured via a pair of voltage taps.
๐ SIMILAR VOLUMES
The AC transport self-field losses at 77 K were investigated on the double-layer cylindrical conductors composed of Ag-sheathed Bi2223 tapes. The multifilamentary tapes as the strands are arranged in a parallel way on the cylindrical former with a diameter of 10.5 mm. The loss values are strongly in
We present the results of a.c. loss measurements of silver clad monocore tapes of Bi-2223 and TI-1223 prepared by the powder-in-tube method. Losses arising from external a.c. magnetic field are compared with those generated by a.c. transport currents (self-field losses). Experimental results, obtain
The measured self-field a.c. losses in mono-and multi-filamentary tapes with varying transport current, frequency and voltage tap configurations are compared to theoretical models. The observed losses are found to approach asymptotic values when the loop of the voltage taps is comparable to the widt