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首页> 外文期刊>Applied radiation and isotopes: including data, instrumentation and methods for use in agriculture, industry and medicine >Demonstration of a high-intensity neutron source based on a liquid-lithium target for Accelerator based Boron Neutron Capture Therapy
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Demonstration of a high-intensity neutron source based on a liquid-lithium target for Accelerator based Boron Neutron Capture Therapy

机译:基于液锂靶的加速器硼中子俘获治疗的高强度中子源演示

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A free surface liquid-lithium jet target is operating routinely at Soreq Applied Research Accelerator Facility (SARAF), bombarded with a similar to 1.91 MeV, similar to 1.2 mA continuous-wave narrow proton beam. The experiments demonstrate the liquid lithium target (LiLiT) capability to constitute an intense source of epithermal neutrons, for Accelerator based Boron Neutron Capture Therapy (BNCT). The target dissipates extremely high ion beam power densities ( > 3 kW/cm(2), >0.5 MW/cm(3)) for long periods of time, while maintaining stable conditions and localized residual activity. LiLiT generates similar to 3 x 10(10) n/s, which is more than one order of magnitude larger than conventional Li-7(p,n)-based near threshold neutron sources. A shield and moderator assembly for BNCT, with LiLiT irradiated with protons at 1.91 MeV, was designed based on Monte Carlo (MCNP) simulations of BNCT-doses produced in a phantom. According to these simulations it was found that a 15 mA near threshold proton current will apply the therapeutic doses in similar to 1 h treatment duration. According to our present results, such high current beams can be dissipated in a liquid-lithium target, hence the target design is readily applicable for accelerator-based BNCT. (C) 2015 Elsevier Ltd. All rights reserved.
机译:自由表面液-锂射流靶通常在Soreq Applied Research加速器设施(SARAF)上运行,受到类似于1.91 MeV,类似于1.2 mA连续波窄质子束的轰击。实验证明,基于加速器的硼中子俘获疗法(BNCT),液态锂靶(LiLiT)能够构成超热中子的强烈来源。目标会长时间耗散极高的离子束功率密度(> 3 kW / cm(2),> 0.5 MW / cm(3)),同时保持稳定的条件和局部的残余活性。 LiLiT产生类似于3 x 10(10)n / s的信号,比传统的基于Li-7(p,n)的近阈值中子源大一个数量级。基于蒙特卡罗(MCNP)对幻像中产生的BNCT剂量的模拟,设计了BNCT的屏蔽和减速器组件,其中LiLiT受到质子在1.91 MeV的照射。根据这些模拟,发现接近阈值质子电流的15 mA电流将在大约1小时的治疗时间内施加治疗剂量。根据我们目前的结果,这种高电流束可以消散在液态锂靶中,因此靶设计很容易应用于基于加速器的BNCT。 (C)2015 Elsevier Ltd.保留所有权利。

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