首页> 外文会议>Electromagnetic Compatibility Symposium Record, 1968 IEEE >Heavy-ion inertial fusion: Suggested experiments on disk heating and beam transport using accelerator test facilities
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Heavy-ion inertial fusion: Suggested experiments on disk heating and beam transport using accelerator test facilities

机译:重离子惯性聚变:建议使用加速器测试设备进行磁盘加热和束传输实验

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Our calculations suggest that experiments relating to disk heating, as well as beam deposition, focusing and transport can be performed within the context of current design proposals for accelerator test-facilities. Since the test-facilities have lower ion kinetic energy and beam pulse power as compared to reactor drivers, we achieve high-beam intensities at the focal spot by using short focal distance and properly designed beam optics. In this regard, the low beam emittance of suggested multi-beam designs(l, 2) are very useful. Preliminary results suggest that intensities close to 1014 W/cm2 are achievable. Given these intensities, deposition experiments with heating of disks to greater than a million degrees Kelvin (100 eV) are expected. We could also expect as much as 1–3 kA of incident ion current on these disks with beam intensities almost comparable to that of reactor targets. Thus, if any anomalous plasma effects on deposition emerge, the conditions should be available for testing some of them. We might also note that these deposition experiments have low ion kinetic energy per nucléon. About 4–5 MeVucleon is achievable if lighter ions such as sodium were used. But for lighter ions, plasma effects in deposition might be more severe because heavy-ion beams are more "stiff".
机译:我们的计算表明,与磁盘加热以及束沉积,聚焦和传输有关的实验可以在当前针对加速器测试设施的设计建议的背景下进行。由于与反应堆驱动器相比,测试设施具有较低的离子动能和束脉冲功率,因此我们可以通过使用短焦距和适当设计的束光学器件,在焦点处实现高束强度。在这方面,建议的多光​​束设计(1、2)的近光发射非常有用。初步结果表明,可以达到接近10 14 W / cm 2 的强度。考虑到这些强度,可以预料将磁盘加热到超过一百万度开尔文(100 eV)的沉积实验。我们还可以期望在这些磁盘上有高达1-3 kA的入射离子电流,并且其光束强度几乎可以与反应堆靶材相媲美。因此,如果出现任何异常的等离子体对沉积的影响,则该条件应可用于测试其中的一些条件。我们可能还会注意到,这些沉积实验每个核素的离子动能较低。如果使用钠等较轻的离子,则大约可以达到4-5 MeV /核仁。但是对于较轻的离子,沉积中的等离子体效应可能会更严重,因为重离子束更“僵硬”。

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