| Literature DB >> 35233047 |
Donghua Xiao1,2, Junjie Wu1,2, Shengfa Wu1,2, Chengjie Zhong1,2, Huibin Qiu3,4, Xiaobin Li1,2, Xingkun Peng1,2, Youlong Yuan1,2, Qilong Cai1,2, Jinming Chang1,2, Tianyi Hu1,2, Zuozhi Hu1,2, Yuqing Zhu1,2.
Abstract
The consideration of nonextensivity effects is crucial to the accurate diagnosis of plasma parameters; common plasma nonextensive parameters include electron nonextensive parameter and ion nonextensive parameter, and the former can be measured, while the ion nonextensive parameter cannot be measured yet. Here we show the measurement of ion nonextensive parameter of plasma based on the theory of nonextensive geodesic acoustic modes. We assume that the plasma to be measured can be described by nonextensive statistical mechanics, and on this basis, the nonextensive geodesic acoustic mode theory is established. Utilizing this theory, we have measured the ion nonextensive parameter [Formula: see text] which cannot be diagnosed even by a nonextensive single electric probe. Our research points out that the proposed measurement method of ion nonextensive parameter may play a role in plasma diagnosis and will help us to grasp the nonextensivity of plasma more precisely. We hope the proposed method of ion nonextensive parameter diagnosis based on the nonextensive geodesic acoustic mode theory can be the starting point of more complex ion nonextensive parameter diagnosis methods. In addition, the measurement of ion nonextensive parameter is closely related to the study of various plasma waves, instabilities, turbulence and abnormal transport, and a defined and quantitative test of nonextensive geodesic acoustic mode theory will bound up deeply with such developments.Entities:
Year: 2022 PMID: 35233047 PMCID: PMC8888714 DOI: 10.1038/s41598-022-07295-0
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic of ion nonextensive parameter diagnosis method based on nonextensive geodesic acoustic mode theory.
Figure 2Analysis diagram of nonextensive geodesic acoustic mode law. (a) The theory of nonextensive geodesic acoustic mode shows that: the frequency of geodesic acoustic mode is directly proportional to ion sound velocity, but the proportional coefficient depends on the safety factor and ion nonextensive parameters. At the extensive limit, the relevant conclusions return to the results under the Boltzmann–Gibbs statistical framework. (b) The analysis of 58 experimental data points of 6 major devices also supports the conclusion that the geodesic acoustic mode frequency is proportional to the ion sound velocity. (c) The variation curve of S in the geodesic acoustic mode scaling law with the safety factor q shows that the geodesic acoustic mode frequency decreases as the safety factor q increases when the ion sound velocity and the large radius are constant. (d) The variation curve of S in the geodesic acoustic mode scaling law with the ion nonextensive parameter indicates that as the ion nonextensive parameter decreases, the geodesic acoustic mode frequency gradually increases (for details see the information of figure given in the “Methods”).
Parameters related to plasma generated by 36815 shot on T-10 Tokamak device.
| 1.003 | 0.284 | 0.992 | 3.3 | 1.565 |
Figure 3Analysis diagram of geodesic acoustic mode experimental data on T-10 device. An analysis of 4 experimental data obtained from 36815 shot on T-10 device using the HIBP and 2nd ECE harmonic methods[10] shows that the slope of the curve obtained by no-intercept linear fitting was 1.003, as shown in Table 1 (for details see the information of figure given in “Methods”).
Figure 4Measurement diagram of ion nonextensive parameter of plasma generated by 36815 shot on T-10 device. The four curves are the figure given by Eq. (2) combining with the slope (Table 1) obtained from Fig. 3. As you can see from the diagram, there are four groups of solutions, and here, from a physical point of view, we only consider the group of solutions represented by the red real curve. is the ion nonextensive parameter of plasma generated by 36815 shot (safety factor[11] ) on T-10 device.
Figure 5Analysis graphs of statistics SSE and for the optimal ion nonextensive parameter . For details, see the information of figure given in “Methods”.