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Fusion plasma confinement research at the gas dynamic trap

机译:气体动态阱处的融合等离子体约束研究

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A so called vortex confinement of plasma in axially symmetric mirror device was studied. This recently developed approach enables to significantly reduce transverse particle and heat losses typically caused by MHD instabilities which can be excited in this case. Vortex confinement regime was established by application of different potentials to the radial plasma limiters and end-plates. As a result, the sheared plasma flow at periphery appears and wraps the plasma core. Experiments were carried out at the Gas Dynamic Trap device, where hot ions with a mean energy of Eh≈9 keV and the maximum density of energetic ions nh≈5·1019m−3 were produced by oblique injection of deuterium or hydrogen neutral beams into a collisional warm plasma with the electron temperature up to 250 eV and density nw≈2·1019m−3. Local plasma α approaching 0.6 was measured. The measured transverse heat losses were considerably smaller than the axial ones. The measured axial losses were found to be in a good agreement with the results of numerical simulations. Recent experimental results support the concept of the neutron source based on the gas dynamic trap.
机译:研究了轴对称反射镜装置中等离子体的所谓涡旋约束。这种最近开发的方法能够显着减少通常由MHD不稳定性引起的横向颗粒和热量损失,在这种情况下,MHD不稳定性会被激发。通过在径向等离子限制器和端板上施加不同的电势来建立涡流限制机制。结果,在外围出现了剪切的等离子体流并包裹了等离子体芯。在气体动力捕集阱装置上进行了实验,其中平均能量为E h ≈9keV的热离子和高能离子n h ≈5·的最大离子10 19 m −3 是通过将氘或氢中性束倾斜注入电子温度高达250 eV和密度n w的碰撞热等离子体中而产生的≈2·10 19 m -3 。测量了接近0.6的局部血浆α。测得的横向热量损失明显小于轴向热量损失。发现测得的轴向损耗与数值模拟结果非常吻合。最近的实验结果支持了基于气体动态阱的中子源的概念。

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