Linjin Zheng, M.T. Kotschenreuther, F.L. Waelbroeck, M.E. Austin, W.L. Rowan, P. Valanju, X. Liu
{"title":"在考虑 MHD 稳定性的情况下,负三角形托卡马克用于聚变等离子体先进稳态约束的前景","authors":"Linjin Zheng, M.T. Kotschenreuther, F.L. Waelbroeck, M.E. Austin, W.L. Rowan, P. Valanju, X. Liu","doi":"10.1016/j.fpp.2024.100051","DOIUrl":null,"url":null,"abstract":"<div><p>The steady-state confinement, beta limit, and divertor heat load are among the most concerned issues for toroidal confinement of fusion plasmas. In this work, we show that the negative triangularity tokamak has promising prospects to address these issues. We first demonstrate that the negative triangularity tokamak generates the filed line rotation transform more effectively. This brings bright prospects for the advanced steady-state tokamak scenario. Given this, the MHD stability and equilibrium confinement of negative triangularity tokamak are investigated. We point out that the negative triangularity configuration with a broad pressure profile is indeed more unstable for low-<span><math><mi>n</mi></math></span> magnetohydrodynamic modes than the positive triangularity case so that the H-mode confinement can hardly be achieved in this configuration, where <span><math><mi>n</mi></math></span> is the toroidal mode number. Nevertheless, we found that the negative triangularity configuration with high bootstrap current fraction, high poloidal beta, and peaked pressure profiles can achieve higher normalized beta for low-<span><math><mi>n</mi></math></span> modes than the positive triangularity case. In a certain parameter domain, the normalized beta can reach about twice the extended Troyon limit, while the same computation indicates that the positive triangularity configuration is indeed constrained by the Troyon limit. This shows that the negative triangularity tokamaks are not only favorable for divertor design to avoid the edge localized modes but also can have promising prospects for advanced steady-state confinement of fusion plasmas in high beta.</p></div>","PeriodicalId":100558,"journal":{"name":"Fundamental Plasma Physics","volume":"10 ","pages":"Article 100051"},"PeriodicalIF":0.0000,"publicationDate":"2024-04-26","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S2772828524000165/pdfft?md5=7226485704d08552a46a853c6c20fd6c&pid=1-s2.0-S2772828524000165-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Prospects of negative triangularity tokamak for advanced steady-state confinement of fusion plasmas in MHD stability consideration\",\"authors\":\"Linjin Zheng, M.T. Kotschenreuther, F.L. Waelbroeck, M.E. Austin, W.L. Rowan, P. Valanju, X. 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We point out that the negative triangularity configuration with a broad pressure profile is indeed more unstable for low-<span><math><mi>n</mi></math></span> magnetohydrodynamic modes than the positive triangularity case so that the H-mode confinement can hardly be achieved in this configuration, where <span><math><mi>n</mi></math></span> is the toroidal mode number. Nevertheless, we found that the negative triangularity configuration with high bootstrap current fraction, high poloidal beta, and peaked pressure profiles can achieve higher normalized beta for low-<span><math><mi>n</mi></math></span> modes than the positive triangularity case. In a certain parameter domain, the normalized beta can reach about twice the extended Troyon limit, while the same computation indicates that the positive triangularity configuration is indeed constrained by the Troyon limit. 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引用次数: 0
摘要
稳态约束、贝塔极限和分流器热负荷是聚变等离子体环形约束最关心的问题。在这项工作中,我们证明负三角形托卡马克有望解决这些问题。我们首先证明了负三角形托卡马克能更有效地产生锉线旋转变换。这为先进的稳态托卡马克方案带来了光明的前景。有鉴于此,我们对负三角形托卡马克的 MHD 稳定性和平衡约束进行了研究。我们指出,对于低 n 磁流体力学模式而言,具有宽压力曲线的负三角形构型确实比正三角形构型更不稳定,因此在这种构型(n 为环形模式数)中很难实现 H 模式约束。尽管如此,我们发现,负三角形配置具有高自举电流分数、高极坐标贝塔值和峰值压力剖面,与正三角形情况相比,可以实现更高的低 n 模式归一化贝塔值。在一定的参数域中,归一化贝塔值可以达到扩展特洛伊恩极限的两倍左右,而同样的计算表明,正三角构型确实受到特洛伊恩极限的限制。这表明负三角形托卡马克不仅有利于分流器的设计以避免边缘局部模式,而且对于高贝塔聚变等离子体的先进稳态约束具有广阔的前景。
Prospects of negative triangularity tokamak for advanced steady-state confinement of fusion plasmas in MHD stability consideration
The steady-state confinement, beta limit, and divertor heat load are among the most concerned issues for toroidal confinement of fusion plasmas. In this work, we show that the negative triangularity tokamak has promising prospects to address these issues. We first demonstrate that the negative triangularity tokamak generates the filed line rotation transform more effectively. This brings bright prospects for the advanced steady-state tokamak scenario. Given this, the MHD stability and equilibrium confinement of negative triangularity tokamak are investigated. We point out that the negative triangularity configuration with a broad pressure profile is indeed more unstable for low- magnetohydrodynamic modes than the positive triangularity case so that the H-mode confinement can hardly be achieved in this configuration, where is the toroidal mode number. Nevertheless, we found that the negative triangularity configuration with high bootstrap current fraction, high poloidal beta, and peaked pressure profiles can achieve higher normalized beta for low- modes than the positive triangularity case. In a certain parameter domain, the normalized beta can reach about twice the extended Troyon limit, while the same computation indicates that the positive triangularity configuration is indeed constrained by the Troyon limit. This shows that the negative triangularity tokamaks are not only favorable for divertor design to avoid the edge localized modes but also can have promising prospects for advanced steady-state confinement of fusion plasmas in high beta.