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用于国家点火装置铁不透明度研究项目的时间分辨不透明度光谱仪(OpSpecTR)的设计与特性描述。

Design and characterization of the time-resolved opacity spectrometer (OpSpecTR) for the NIF iron opacity campaign.

作者信息

Opachich Y P, Golick B, Buscho J G, Carpenter A C, Funsten B T, Garafalo A M, Heinmiller J, Dutra E C, Knight R, Max D, Mayes D C, Morioka S B, Moy K J, Nyholm P R, Peterson A E, Petre R B, Posadas R S, Sharp A M, Tran V, Trent S D, Wallace M S, Winget D E, Perry T S, Urbatsch T J, Heeter R F

机构信息

Lawrence Livermore National Laboratory, Livermore, California 94550, USA.

Nevada National Security Sites, Livermore, California 94550, USA.

出版信息

Rev Sci Instrum. 2024 Aug 1;95(8). doi: 10.1063/5.0218014.

Abstract

A new time-resolved opacity spectrometer (OpSpecTR) is currently under development for the National Ignition Facility (NIF) opacity campaign. The spectrometer utilizes Icarus version 2 (IV2) hybridized complementary metal-oxide-semiconductor sensors to collect gated data at the time of the opacity transmission signal, unlocking the ability to collect higher-temperature measurements on NIF. Experimental conditions to achieve higher temperatures are feasible; however, backgrounds will dominate the data collected by the current time-integrating opacity spectrometer. The shortest available OpSpecTR integration time of ∼2 ns is predicted to reduce self-emission and other late-time backgrounds by up to 80%. Initially, three Icarus sensors will be used to collect data in the self-emission, backlighter, and absorption regions of the transmission spectrum, with plans to upgrade to five Daedalus sensors in future implementations with integration times of ∼1.3 ns. We present the details of the diagnostic design along with recent characterization results of the IV2 sensors.

摘要

一种新型的时间分辨不透明度光谱仪(OpSpecTR)目前正在为国家点火装置(NIF)的不透明度测量活动而研发。该光谱仪利用伊卡洛斯版本2(IV2)混合互补金属氧化物半导体传感器,在不透明度传输信号出现时收集选通数据,从而能够在NIF上进行更高温度的测量。实现更高温度的实验条件是可行的;然而,背景信号将主导当前时间积分不透明度光谱仪收集的数据。预计OpSpecTR最短可用积分时间约为2纳秒,可将自发射和其他后期背景信号减少多达80%。最初,将使用三个伊卡洛斯传感器在传输光谱的自发射、背光源和吸收区域收集数据,并计划在未来的实施中升级为五个代达罗斯传感器,积分时间约为1.3纳秒。我们展示了诊断设计的细节以及IV2传感器最近的表征结果。

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