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Test Results of the CERN HL-LHC Low-$eta$ Quadrupole Short Models MQXFS3c and MQXFS4

机译:CERN HL-LHC低- $ beta $ 四极杆短模型MQXFS3c和MQXFS4的测试结果

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For the high luminosity upgrade of the CERN large hadron collider, lower beta* quadrupole magnets based on advanced Nb3Sn conductors will be installed on each side of the ATLAS and compact muon solenoid (CMS) experiment insertion zones. As part of the technological developments needed to achieve the required field gradient of 132.6 T/m within a 150-mm aperture, short length model magnets, named MQXFS, are tested both at the CERN SM18 and Fermilab test facilities. The model magnets rely on two types of Nb3Sn conductors (restack rod process (RRP) and powderin-tube (PIT)) and on an innovative bladders and keys design to provide mechanical support against the Lorentz forces. In 2016 and 2017, the powering tests of the first two models MQXFS3 (RRP) and MQXFS5 (PIT) proved that nominal performance (16.5 kA) could be reached with excellent memory of the quench current after thermal cycle. However both magnets showed a slow training behavior with clear observations of voltage disturbances before the quench. Besides, only MQXFS5 could reach ultimate current (17.9 kA) whereas erratic behavior was observed on MQXFS3 due to conductor local degradation at the head of one of the coils. In 2018, this limiting coil was changed and the applied azimuthal prestress increased. While ultimate current could then be reached, no stable current could be maintained due to identified defect on the outer layer of the new coil. Finally the outcome of the test of the new model MQXFS4, featuring the final RRP conductors that will be used for the series production and variation on the inner layer quench heater designs are here reported in details.
机译:为了提高CERN大型强子对撞机的亮度,将在ATLAS和紧凑型μ子螺线管(CMS)实验插入区的每侧安装基于先进Nb3Sn导体的低β*四极磁体。作为在150 mm孔径内达到要求的132.6 T / m磁场梯度所需要的技术发展的一部分,在CERN SM18和Fermilab测试设施上对名为MQXFS的短长度模型磁体进行了测试。模型磁铁依靠两种类型的Nb3Sn导体(重迭棒工艺(RRP)和粉管(PIT))以及创新的球胆和键设计来提供抵抗洛伦兹力的机械支撑。在2016年和2017年,前两种型号MQXFS3(RRP)和MQXFS5(PIT)的电源测试证明,出色的热循环后淬灭电流记忆能力可达到标称性能(16.5 kA)。然而,两种磁体均表现出缓慢的训练行为,并且在淬火之前清楚地观察到电压扰动。此外,只有MQXFS5可以达到极限电流(17.9 kA),而在MQXFS3上观察到不稳定的行为,这是由于其中一个线圈顶部的导体局部退化所致。在2018年,改变了限位线圈并增加了所施加的方位角预应力。虽然随后可以达到极限电流,但是由于在新线圈的外层上发现了缺陷,因此无法保持稳定的电流。最后,在此详细报告了新模型MQXFS4的测试结果,该模型具有最终的RRP导体,这些导体将用于批量生产和内层淬火加热器设计的变化。

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