Pahari Sambaran, Lachhvani Lavkesh, Bajpai Manu, Rathod Karan, Yeole Yogesh, Chattopadhyay P K
Bhabha Atomic Research Centre, Visakhapatnam-530012, India.
Institute for Plasma Research, Gandhinagar-382428, India.
Rev Sci Instrum. 2015 Aug;86(8):083504. doi: 10.1063/1.4927715.
A suitable charge-collector has been designed and developed to estimate charge-content of electron plasmas in a Small Aspect Ratio Toroidal Experiment in a C-shaped trap (SMARTEX-C). The electrons are periodically injected and held in the trap with the aid of electrostatic end-fields and a toroidal magnetic field. After a preset "hold" time, the trapped charges are dumped onto a grounded collector (by gating it). As the charges flow along the magnetic field lines onto the collector, the integrated current gives the charge-content of the plasma at the instant of dump. In designing such a charge collector, several challenges peculiar to the geometry of the trap and the nature of the plasma had to be addressed. Instantaneous charge measurements synchronised with the E × B drift of the plasma, along with fast transit times of electrons to the collector (few 100 ns or less) (due to the low aspect ratio of the trap) essentially require fast gating of the collector. The resulting large capacitive transients alongside low charge content (few nC) of such plasmas further lead to increasing demands on response and sensitivity of the collector. Complete cancellation of such transients is shown to be possible, in principle, by including the return path in our measurement circuit but the "non-neutrality" of the plasma acts as a further impediment. Ultimately, appropriate shielding and measurement circuits allow us to (re)distribute the capacitance and delineate the paths of these currents, leading to effective cancellation of transients and marked improvement in sensitivity. Improved charge-collector has thus been used to successfully estimate the time evolution of total charge of the confined electron plasma in SMARTEX-C.
已经设计并开发了一种合适的电荷收集器,用于在C形陷阱(SMARTEX-C)中的小纵横比环形实验中估计电子等离子体的电荷含量。借助静电端场和环形磁场,电子被周期性地注入并保持在陷阱中。在预设的“保持”时间之后,捕获的电荷被倾倒到接地的收集器上(通过对其进行门控)。当电荷沿着磁力线流向收集器时,积分电流给出了倾倒瞬间等离子体的电荷含量。在设计这样的电荷收集器时,必须解决与陷阱几何形状和等离子体性质相关的几个特殊挑战。与等离子体的E×B漂移同步的瞬时电荷测量,以及电子到收集器的快速传输时间(几百纳秒或更短)(由于陷阱的低纵横比)基本上需要对收集器进行快速门控。这种等离子体产生的大电容瞬变以及低电荷含量(几纳库仑)进一步导致对收集器响应和灵敏度的要求不断提高。原则上,通过在我们的测量电路中包括返回路径,可以显示出完全消除这种瞬变的可能性,但等离子体的“非中性”起到了进一步的阻碍作用。最终,适当的屏蔽和测量电路使我们能够(重新)分配电容并描绘这些电流的路径,从而有效地消除瞬变并显著提高灵敏度。因此,改进后的电荷收集器已成功用于估计SMARTEX-C中受限电子等离子体总电荷的时间演化。