论文标题

Sherpad:测试从Dafne的环上的正上音缓慢提取正电子

SHERPAD: test of Slow high-efficiency extraction of Positrons from a Ring At DAFNE

论文作者

Valente, Paolo, Annucci, Davide, Garcia, Oscar Roberto Blanco, Garattini, Marco, Gianotti, Paola, Guiducci, Susanna, Liedl, Andrea, Raggi, Mauro

论文摘要

使用BTF设施中的Linac从Linac中提取的束,LNF的PadME实验利用了高能正电子束在产生新的,非常微弱的相互作用粒子的目标上使用固定目标歼灭的想法。从同步加速器中提取光束将通过几个数量级来改进Linac的占空比,从而大大扩展了此类实验的物理范围。通过在弯曲晶体中使用相干现象来代替或补充标准的整数共振技术缓慢1/3的选择,例如Sherpa实验已经研究了通道。都考虑使用使用DAFNE主正电子环或较小的阻尼环(累加器)作为Linac的脉冲扩展器。 We here propose to demonstrate the feasibility of this technique performing an experiment on the DAFNE positron main ring, installing in a suitable vacuum goniometer a thin Silicon crystal, bent in the (110) direction in order to provide a ~1 mrad kick, and then simulating the extraction process with a virtual septum: instead of performing a real extraction, the crossing of the gap of a septum magnet is simulated by detecting通过在罗马锅的次要真空中插入的硅像素探测器,位于其位置(在接近1/4的位置接近1/4)的位置。

The idea of using fixed-target annihilations of a high-energy positron beam on a target for producing a new, very feebly interacting particle has been exploited by the PADME experiment at LNF using the extracted beam from the LINAC in the BTF facility. Extracting the beam from a synchrotron would improve by several orders of magnitude the duty-cycle of the LINAC, thus greatly extending the physics reach of such experiments. The option of substituting or complementing the standard, slow 1/3 of integer resonant extraction technique by using coherent phenomena in a bent crystal, like the channeling has been studied by the SHERPA experiment. Both using the DAFNE main positron ring or the smaller damping ring (accumulator) as pulse extender of the LINAC have been considered. We here propose to demonstrate the feasibility of this technique performing an experiment on the DAFNE positron main ring, installing in a suitable vacuum goniometer a thin Silicon crystal, bent in the (110) direction in order to provide a ~1 mrad kick, and then simulating the extraction process with a virtual septum: instead of performing a real extraction, the crossing of the gap of a septum magnet is simulated by detecting positrons at its position (at phase advance close to 1/4) by means of a Silicon pixel detector inserted in the ring, in a secondary vacuum of a Roman pot.

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