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A. Hassanein

Publications and source records attributed to A. Hassanein.

3 recordsLinked to original sources

Understanding Vacuum Arcs and Gradient Limits

Although a general model of vacuum arcs and gradient limits would be widely useful, roughly 120 years after the first good experimental data on these arcs, this important field continues to be unsettled. This problem is a limitation in a number of technologies and has applications in many fields. Large tokamaks are sensitive to arcing on the plasma facing components, linac costs depend on their maximum operating fields, power transmission efficiency depends on the voltage that can be maintained, and the efficiency of Atom Probe Tomography depends on avoiding sample failures. A multidisciplinary study of this field could improve the precision and applicability of the theoretical models used. We outline the basic mechanisms involved in arcing and the issues that determine the physics of arcs. We divide the process into four stages; the trigger, plasma formation, plasma evolution and surface damage, in order to look at the physical principles involved. We try to identify the dominant mechanisms, critical issues and desirable aspects of an R&D program to produce a more precise and general model.

physics.plasm-ph

Double electric layer influence on dynamic of EUV radiation from plasma of high-current pulse diode in tin vapor

Generation of high-power pulses of extreme ultraviolet radiation from multi-charged tin plasma are of great interest to many applications. We studied the electric potential distribution in the discharge gap in kind formed double layer. The local plasma heating by electron beam, formed in the double layer, leads to generation of peak radiation pulses and as a result to an increase in the radiation power.

physics.plasm-ph

An integrated Approach to Understanding Vacuum Arcs

Although used in the design and costing of large projects such as linear colliders and tokamaks, the theory of vacuum arcs and gradient limits is not well understood. Almost 120 years after the isolation of vacuum arcs, the exact mechanisms of the arcs and the damage they produce still being debated. We describe our simple and general model of the vacuum arc that can incorporate all active mechanisms and aims to explain all relevant data. Our four stage model, is based on experiments done at 805 MHz with a variety of cavity geometries, magnetic fields, and experimental techniques as well as data from Atom Probe Tomography and failure analysis of microelectronics. The model considers the trigger, plasma formation, plasma evolution and surface damage phases of the arc. Our data clearly shows surface damage produced by differential cooling capable of producing local high field enhancements $β\sim 200$, and arcing in subsequent pulses. We update the model and discuss new features while also pointing out where new data would be useful in extending the model to a wider range of frequencies.

physics.acc-ph