E. de la Luna, Jeronimo Garcia, M. Sertoli, Peter Lomas, Samuele Mazzi, Ž. Štancar, M. Dunne, Nobuyuki Aiba, S. Silburn, M. Faitsch, G. Szepesi, F. Auriemma, Itziar Balboa, L. Frassinetti, L. Garzotti, S. Menmuir, D. Réfy, F. Rimini, E. Solano, Carlo Sozzi, Milos Vecsei
{"title":"探索在 JET 中使用 Be/W 壁在低碰撞性条件下使用小 ELM 的高性能 H 模式方案的物理学原理","authors":"E. de la Luna, Jeronimo Garcia, M. Sertoli, Peter Lomas, Samuele Mazzi, Ž. Štancar, M. Dunne, Nobuyuki Aiba, S. Silburn, M. Faitsch, G. Szepesi, F. Auriemma, Itziar Balboa, L. Frassinetti, L. Garzotti, S. Menmuir, D. Réfy, F. Rimini, E. Solano, Carlo Sozzi, Milos Vecsei","doi":"10.1088/1741-4326/ad5fa0","DOIUrl":null,"url":null,"abstract":"\n A new H-mode regime at low density and low edge safety factor (q95=3.2, with Ip=3 MA) that combines high energy confinement, stationary conditions for density and radiation and small Edge Localized Modes (ELMs) have been found in JET with Be/W wall. Such a regime is achieved by operating without external gas puffing, leading to a decrease in the edge density and a substantial increase in rotation and ion temperature in both the pedestal and the core region. Transport modelling shows a reduction of the turbulence, which starts in the pedestal region and extends into the plasma core, and outward impurity convection, consistent with the improved energy confinement and the lack of W accumulation observed in those conditions. In addition, large type I ELMs, typically found in gas-fuelled plasmas, are replaced by smaller and more frequent ELMs, whose appearance is correlated with a substantial reduction of the pedestal density and its gradient. Pedestals in this operating regime are stable to peeling–ballooning modes, consistent with the lack of large ELMs. This is in contrast to results in unfuelled JET-C plasmas that typically operated at higher pedestal densities and developed low frequency, large type I ELMs, thus pointing to the low density as one of the critical parameters for accessing the small ELMs in JET. This small ELMs regime exhibits the same low pedestal collisionality (ν∗\n e,ped ∼ 0.1) expected in ITER and operates at low q95, thus making it different from other small ELMs regimes typically obtained at higher q95 and higher pedestal collisionality. These features make this newly developed H-mode regime in JET with Be/W wall a valuable tool for exploring the underlying transport, the different mechanisms of turbulence stabilization, as well as the physics associated with the appearance of small ELMs in high-temperature plasmas at ITER relevant pedestal collisionality.","PeriodicalId":503481,"journal":{"name":"Nuclear Fusion","volume":" 47","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Exploring the physics of a high-performance H-mode scenario with small ELMs at low collisionality in JET with Be/W wall\",\"authors\":\"E. de la Luna, Jeronimo Garcia, M. Sertoli, Peter Lomas, Samuele Mazzi, Ž. Štancar, M. Dunne, Nobuyuki Aiba, S. Silburn, M. Faitsch, G. Szepesi, F. Auriemma, Itziar Balboa, L. Frassinetti, L. Garzotti, S. Menmuir, D. Réfy, F. Rimini, E. Solano, Carlo Sozzi, Milos Vecsei\",\"doi\":\"10.1088/1741-4326/ad5fa0\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"\\n A new H-mode regime at low density and low edge safety factor (q95=3.2, with Ip=3 MA) that combines high energy confinement, stationary conditions for density and radiation and small Edge Localized Modes (ELMs) have been found in JET with Be/W wall. Such a regime is achieved by operating without external gas puffing, leading to a decrease in the edge density and a substantial increase in rotation and ion temperature in both the pedestal and the core region. Transport modelling shows a reduction of the turbulence, which starts in the pedestal region and extends into the plasma core, and outward impurity convection, consistent with the improved energy confinement and the lack of W accumulation observed in those conditions. In addition, large type I ELMs, typically found in gas-fuelled plasmas, are replaced by smaller and more frequent ELMs, whose appearance is correlated with a substantial reduction of the pedestal density and its gradient. Pedestals in this operating regime are stable to peeling–ballooning modes, consistent with the lack of large ELMs. This is in contrast to results in unfuelled JET-C plasmas that typically operated at higher pedestal densities and developed low frequency, large type I ELMs, thus pointing to the low density as one of the critical parameters for accessing the small ELMs in JET. This small ELMs regime exhibits the same low pedestal collisionality (ν∗\\n e,ped ∼ 0.1) expected in ITER and operates at low q95, thus making it different from other small ELMs regimes typically obtained at higher q95 and higher pedestal collisionality. These features make this newly developed H-mode regime in JET with Be/W wall a valuable tool for exploring the underlying transport, the different mechanisms of turbulence stabilization, as well as the physics associated with the appearance of small ELMs in high-temperature plasmas at ITER relevant pedestal collisionality.\",\"PeriodicalId\":503481,\"journal\":{\"name\":\"Nuclear Fusion\",\"volume\":\" 47\",\"pages\":\"\"},\"PeriodicalIF\":0.0000,\"publicationDate\":\"2024-07-05\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Nuclear Fusion\",\"FirstCategoryId\":\"1085\",\"ListUrlMain\":\"https://doi.org/10.1088/1741-4326/ad5fa0\",\"RegionNum\":0,\"RegionCategory\":null,\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"\",\"JCRName\":\"\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Nuclear Fusion","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1088/1741-4326/ad5fa0","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
摘要
在带 Be/W 壁的 JET 中发现了低密度和低边缘安全系数(q95=3.2,Ip=3 MA)下的新 H 模式机制,它结合了高能量约束、密度和辐射的静态条件以及小边缘局部模式(ELM)。这种机制是在没有外部气体膨化的情况下实现的,从而导致边缘密度降低,基座和核心区域的旋转和离子温度大幅上升。传输模型显示,从基座区开始延伸到等离子体核心的湍流和向外的杂质对流减少了,这与在这些条件下观察到的能量限制改善和 W 积累的缺乏是一致的。此外,通常在气体燃料等离子体中出现的大型 I 型 ELM 被更小、更频繁的 ELM 所取代,而 ELM 的出现与基座密度及其梯度的大幅降低有关。在这种运行机制下,基座对剥离-气球模式是稳定的,这与缺乏大型 ELM 是一致的。这与未加燃料的 JET-C 等离子体的结果形成鲜明对比,后者通常在较高的基座密度下运行,并发展出低频、大型 I 型 ELM,从而表明低密度是在 JET 中获得小型 ELM 的关键参数之一。这种小型 ELMs 机制与预期在热核实验堆中出现的低基座碰撞性(ν∗ e,ped ∼ 0.1)相同,并在低 q95 下运行,因此有别于通常在较高 q95 和较高基座碰撞性下获得的其他小型 ELMs 机制。这些特点使得在带有 Be/W 壁的 JET 中新开发的 H 模式体系成为探索基本输运、湍流稳定的不同机制以及在热核实验堆相关基座碰撞性高温等离子体中出现小型 ELMs 的相关物理学的宝贵工具。
Exploring the physics of a high-performance H-mode scenario with small ELMs at low collisionality in JET with Be/W wall
A new H-mode regime at low density and low edge safety factor (q95=3.2, with Ip=3 MA) that combines high energy confinement, stationary conditions for density and radiation and small Edge Localized Modes (ELMs) have been found in JET with Be/W wall. Such a regime is achieved by operating without external gas puffing, leading to a decrease in the edge density and a substantial increase in rotation and ion temperature in both the pedestal and the core region. Transport modelling shows a reduction of the turbulence, which starts in the pedestal region and extends into the plasma core, and outward impurity convection, consistent with the improved energy confinement and the lack of W accumulation observed in those conditions. In addition, large type I ELMs, typically found in gas-fuelled plasmas, are replaced by smaller and more frequent ELMs, whose appearance is correlated with a substantial reduction of the pedestal density and its gradient. Pedestals in this operating regime are stable to peeling–ballooning modes, consistent with the lack of large ELMs. This is in contrast to results in unfuelled JET-C plasmas that typically operated at higher pedestal densities and developed low frequency, large type I ELMs, thus pointing to the low density as one of the critical parameters for accessing the small ELMs in JET. This small ELMs regime exhibits the same low pedestal collisionality (ν∗
e,ped ∼ 0.1) expected in ITER and operates at low q95, thus making it different from other small ELMs regimes typically obtained at higher q95 and higher pedestal collisionality. These features make this newly developed H-mode regime in JET with Be/W wall a valuable tool for exploring the underlying transport, the different mechanisms of turbulence stabilization, as well as the physics associated with the appearance of small ELMs in high-temperature plasmas at ITER relevant pedestal collisionality.