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Multiphysics Simulations of Thermal Shock Testing of Nanofibrous High Power Targets 纳米纤维高功率靶材热冲击测试的多物理场模拟
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.19496
W. AsztalosIllinois Institute of Technology, Y. TorunIllinois Institute of Technology, S. BidharFermi National Accelerator Laboratory, F. PellemoineFermi National Accelerator Laboratory, P. RathIndian Institute of Technology Bhubaneswar
{"title":"Multiphysics Simulations of Thermal Shock Testing of Nanofibrous High Power Targets","authors":"W. AsztalosIllinois Institute of Technology, Y. TorunIllinois Institute of Technology, S. BidharFermi National Accelerator Laboratory, F. PellemoineFermi National Accelerator Laboratory, P. RathIndian Institute of Technology Bhubaneswar","doi":"arxiv-2405.19496","DOIUrl":"https://doi.org/arxiv-2405.19496","url":null,"abstract":"Increase of primary beam power for neutrino beam-lines leads to a reduced\u0000lifespan for production targets. New concepts for robust targets are emerging\u0000from the field of High Power Targetry (HPT); one idea being investigated by the\u0000HPT R&D Group at Fermilab is an electrospun nanofiber target. As part of their\u0000evaluation, samples with different densities were sent to the HiRadMat facility\u0000at CERN for thermal shock tests. The samples with the higher density,\u0000irradiated under a high intensity beam pulse, exhibit major damage at the\u0000impact site whereas those with the lower density show no apparent damage. The\u0000exact cause of this failure was unclear at the time. In this paper, we present\u0000the results of multiphysics simulations of the thermal shock experienced by the\u0000nanofiber targets that suggest the failure originates from the reduced\u0000permeability of the high density sample to air flow. The air present in the\u0000porous target expands due to heating from the beam, but is unable to flow\u0000freely in the high density sample, resulting in a larger back pressure that\u0000blows apart the nanofiber mat. We close with a discussion on how to further\u0000validate this hypothesis.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"47 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189878","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Optimization of a Welding Procedure for Making Critical Aluminum Welds on the LBNF Absorber Core Block 优化在 LBNF 吸收器芯块上进行关键铝焊接的焊接程序
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2406.12883
K. E. AndersonFermi National Accelerator Laboratory, Batavia, IL, USA, A. DeshpandeFermi National Accelerator Laboratory, Batavia, IL, USA, V. I. SidorovFermi National Accelerator Laboratory, Batavia, IL, USA, J. ZahuronesFermi National Accelerator Laboratory, Batavia, IL, USA
{"title":"Optimization of a Welding Procedure for Making Critical Aluminum Welds on the LBNF Absorber Core Block","authors":"K. E. AndersonFermi National Accelerator Laboratory, Batavia, IL, USA, A. DeshpandeFermi National Accelerator Laboratory, Batavia, IL, USA, V. I. SidorovFermi National Accelerator Laboratory, Batavia, IL, USA, J. ZahuronesFermi National Accelerator Laboratory, Batavia, IL, USA","doi":"arxiv-2406.12883","DOIUrl":"https://doi.org/arxiv-2406.12883","url":null,"abstract":"The LBNF Absorber consists of thirteen 6061-T6 aluminum core blocks. The core\u0000blocks are water cooled with de-ionized (DI) water which becomes radioactive\u0000during beam operations. The cooling water flows through gun-drilled channels in\u0000the core blocks. A weld quality optimization was performed to produce National\u0000Aeronautical Standard 1514 Class I quality welds on the aluminum core blocks.\u0000This was not successful in all cases. An existing Gas Tungsten Arc Welding\u0000Procedure Specification was fine tuned to minimize, in most cases, and\u0000eliminate detect-able tungsten inclusions in the welds. All the weld coupons,\u0000however passed welding inspection as per the piping code: ASME B31.3 Normal\u0000Fluid Service. Tungsten electrode diameter, type, and manufacturer were varied.\u0000Some of the samples were pre-heated and others were not. It was observed that\u0000larger diameter electrodes, 5/32 in., with pre-heated joints resulted in welds\u0000with the least number of tungsten inclusions. It is hypothesized that thinner\u0000electrodes breakdown easily and get lodged into the weld pool during the\u0000welding process. This breakdown is further enhanced by the large temperature\u0000differential between the un-preheated sample and the hot electrode.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"142 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141526859","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Coherent synchrotron radiation instability in low-emittance electron storage rings 低幅射电子储存环中的相干同步辐射不稳定性
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.18738
Sara Dastan, Demin Zhou, Takuya Ishibashi, Emanuel Karantzoulis, Simone Di Mitri, Ryan Lindberg
{"title":"Coherent synchrotron radiation instability in low-emittance electron storage rings","authors":"Sara Dastan, Demin Zhou, Takuya Ishibashi, Emanuel Karantzoulis, Simone Di Mitri, Ryan Lindberg","doi":"arxiv-2405.18738","DOIUrl":"https://doi.org/arxiv-2405.18738","url":null,"abstract":"Longitudinal impedances at high frequencies, which extend far beyond the\u0000width of the beam spectrum, can pose a threat to the performance of modern\u0000low-emittance electron storage rings, as they can establish a relatively low\u0000threshold for microwave instability. In such rings, coherent synchrotron\u0000radiation (CSR) emerges as a prominent contributor to these high-frequency\u0000impedances. This paper undertakes a systematic investigation into the effects\u0000of CSR on electron rings, utilizing Elettra 2.0, a ring of fourth-generation\u0000light sources, and the SuperKEKB low-energy ring, a ring of $e^+e^-$ circular\u0000colliders, as illustrative examples. Our work revisits theories of microwave\u0000instability driven by CSR impedance, extending the analysis to encompass other\u0000high-frequency impedances such as resistive wall and coherent wiggler\u0000radiation. Through instability analysis and numerical simulations conducted on\u0000the two aforementioned rings, the study explored the impact of high-frequency\u0000impedances and their interactions with broadband impedances from\u0000discontinuities in vacuum chambers.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"61 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189757","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Pressure Spike in The LBNF Absorber Core s Gun Drilled Cooling Channel from an Accident Beam Pulse 事故光束脉冲在 LBNF 吸收器核心的枪钻冷却通道中产生的压力峰值
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.19448
A. DeshpandeFNAL, Batavia, IL, USA, P. HurhFNAL, Batavia, IL, USA, J. HylenFNAL, Batavia, IL, USA, A. LeeFNAL, Batavia, IL, USA, J. LewisFNAL, Batavia, IL, USA, I. RakhnoFNAL, Batavia, IL, USA, V. I. SidorovFNAL, Batavia, IL, USA, Z. TangFNAL, Batavia, IL, USA, S. Tariq I. TropinFNAL, Batavia, IL, USA
{"title":"Pressure Spike in The LBNF Absorber Core s Gun Drilled Cooling Channel from an Accident Beam Pulse","authors":"A. DeshpandeFNAL, Batavia, IL, USA, P. HurhFNAL, Batavia, IL, USA, J. HylenFNAL, Batavia, IL, USA, A. LeeFNAL, Batavia, IL, USA, J. LewisFNAL, Batavia, IL, USA, I. RakhnoFNAL, Batavia, IL, USA, V. I. SidorovFNAL, Batavia, IL, USA, Z. TangFNAL, Batavia, IL, USA, S. Tariq I. TropinFNAL, Batavia, IL, USA","doi":"arxiv-2405.19448","DOIUrl":"https://doi.org/arxiv-2405.19448","url":null,"abstract":"The LBNF Absorber consists of thirteen 6061-T6 aluminum core blocks. The core\u0000blocks are water cooled with de-ionized (DI) water which becomes radioactive\u0000during beam operations. The cooling water flows through gun-drilled channels in\u0000the core blocks. The cooling water is supplied by the LBNF Absorber Radioactive\u0000Water (RAW) cooling system which is designed as per ASME B31.3 Normal Fluid\u0000Service [1]. An uninhibited beam accident pulse striking the water channels was\u0000identified as a credible accident scenario. In this study, it is assumed that\u0000the beam pulse hits the Absorber directly without interacting with any of the\u0000other upstream beamline components. The beam parameters used for the LBNF beam\u0000are 120 GeV, 2.4 MW with a 1.2 s cycle time. The accident pulse lasts for 10\u0000{mu}s. The maximum energy is deposited in the 3rd aluminum core block. For the\u0000sake of simplicity, it is assumed that the accident pulse strikes the 1 in. ID\u0000water channel directly. The analysis here simulates the pressure rise in the\u0000water during and after the beam pulse and its effects on the aluminum piping\u0000components that deliver water to the core blocks. The weld strengths as\u0000determined by the Load and Resistance Factor Design (LRDF) and the Allowable\u0000Strength Design (ASD) are compared to the forces generated in the weld owing to\u0000the pressure spike. A transient structural analysis was used to determine the\u0000equivalent membrane, peak, and bending stresses and they were com-pared to\u0000allowable limits.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"68 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189756","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
First high peak and average power single-pass THz FEL based on high brightness photoinjector 首个基于高亮度光注入器的高峰值和平均功率单通太赫兹 FEL
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.19152
M. Krasilnikov, Z. Aboulbanine, G. Adhikari, N. Aftab, A. Asoyan, P. Boonpornprasert, H. Davtyan, G. Georgiev, J. Good, A. Grebinyk, M. Gross, A. Hoffmann, E. Kongmon, X. -K. Li, A. Lueangaramwong, D. Melkumyan, S. Mohanty, R. Niemczyk, A. Oppelt, H. Qian, C. Richard, F. Stephan, G. Vashchenko, T. Weilbach, X. Zhang, M. Tischer, E. Schneidmiller, P. Vagin, M. Yurkov, E. Zapolnova, W. Hillert, J. Rossbach A. Brachmann, N. Holtkamp, H. -D. Nuhn
{"title":"First high peak and average power single-pass THz FEL based on high brightness photoinjector","authors":"M. Krasilnikov, Z. Aboulbanine, G. Adhikari, N. Aftab, A. Asoyan, P. Boonpornprasert, H. Davtyan, G. Georgiev, J. Good, A. Grebinyk, M. Gross, A. Hoffmann, E. Kongmon, X. -K. Li, A. Lueangaramwong, D. Melkumyan, S. Mohanty, R. Niemczyk, A. Oppelt, H. Qian, C. Richard, F. Stephan, G. Vashchenko, T. Weilbach, X. Zhang, M. Tischer, E. Schneidmiller, P. Vagin, M. Yurkov, E. Zapolnova, W. Hillert, J. Rossbach A. Brachmann, N. Holtkamp, H. -D. Nuhn","doi":"arxiv-2405.19152","DOIUrl":"https://doi.org/arxiv-2405.19152","url":null,"abstract":"Advanced experiments using THz pump and X-ray probe pulses at modern\u0000free-electron lasers (FELs) like the European X-ray FEL require a\u0000frequency-tunable, high-power, narrow-band THz source maintaining the\u0000repetition rate and pulse structure of the X-ray pulses. This paper reports the\u0000first results from a THz source, that is based on a single-pass high-gain THz\u0000FEL operating with a central wavelength of 100 micrometers. The THz FEL\u0000prototype is currently in operation at the Photo Injector Test facility at DESY\u0000in Zeuthen (PITZ) and uses the same type of electron source as the European\u0000XFEL photo injector. A self-amplified spontaneous emission (SASE) FEL was\u0000envisioned as the main mechanism for generating the THz pulses. Although the\u0000THz FEL at PITZ is supposed to use the same mechanism as at X-ray facilities,\u0000it cannot be considered as a simple scaling of the radiation wavelength because\u0000there is a large difference in the number of electrons per radiation\u0000wavelength, which is five orders of magnitude higher for the THz case. The\u0000bunching factor arising from the electron beam current profile contributes\u0000strongly to the initial spontaneous emission starting the FEL process.\u0000Proof-of-principle experiments were done at PITZ using an LCLS-I undulator to\u0000generate the first high-power, high-repetition-rate single-pass THz FEL\u0000radiation. Electron bunches with a beam energy of ~17 MeV and a bunch charge of\u0000up to several nC are used to generate THz pulses with a pulse energy of several\u0000tens of microjoules. For example, for an electron beam with a charge of ~2.4\u0000nC, more than 100 microjoules were generated at a central wavelength of 100\u0000micrometers. The narrowband spectrum was also demonstrated by spectral\u0000measurements. These proof-of-principle experiments pave the way for a tunable,\u0000high-repetition-rate THz source providing pulses with energies in the\u0000millijoule range.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"41 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189668","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Bayesian optimization scheme for the design of a nanofibrous high power target 设计纳米纤维高功率靶的贝叶斯优化方案
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.19490
W. AsztalosIllinois Institute of Technology, Y. TorunIllinois Institute of Technology, S. BidharFermi National Accelerator Laboratory, F. PellemoineFermi National Accelerator Laboratory, P. RathIndian Institute of Technology Bhubaneswar
{"title":"Bayesian optimization scheme for the design of a nanofibrous high power target","authors":"W. AsztalosIllinois Institute of Technology, Y. TorunIllinois Institute of Technology, S. BidharFermi National Accelerator Laboratory, F. PellemoineFermi National Accelerator Laboratory, P. RathIndian Institute of Technology Bhubaneswar","doi":"arxiv-2405.19490","DOIUrl":"https://doi.org/arxiv-2405.19490","url":null,"abstract":"High Power Targetry (HPT) R&D is critical in the context of increasing beam\u0000intensity and energy for next generation accelerators. Many target concepts and\u0000novel materials are being developed and tested for their ability to withstand\u0000extreme beam environments; the HPT R&D Group at Fermilab is developing an\u0000electrospun nanofiber material for this purpose. The performance of these\u0000nanofiber targets is sensitive to their construction parameters, such as the\u0000packing density of the fibers. Lowering the density improves the survival of\u0000the target, but reduces the secondary particle yield. Optimizing the lifetime\u0000and production efficiency of the target poses an interesting design problem,\u0000and in this paper we study the applicability of Bayesian optimization to its\u0000solution. We first describe how to encode the nanofiber target design problem\u0000as the optimization of an objective function, and how to evaluate that function\u0000with computer simulations. We then explain the optimization loop setup.\u0000Thereafter, we present the optimal design parameters suggested by the\u0000algorithm, and close with discussions of limitations and future refinements.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"80 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189990","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Proton beam dynamics in bare IOTA with intense space-charge 带强空间电荷的裸 IOTA 质子束动力学
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.19163
N. BanerjeeFermilab, Batavia, Illinois, USA, A. RomanovFermilab, Batavia, Illinois, USA, M. WallbankFermilab, Batavia, Illinois, USA
{"title":"Proton beam dynamics in bare IOTA with intense space-charge","authors":"N. BanerjeeFermilab, Batavia, Illinois, USA, A. RomanovFermilab, Batavia, Illinois, USA, M. WallbankFermilab, Batavia, Illinois, USA","doi":"arxiv-2405.19163","DOIUrl":"https://doi.org/arxiv-2405.19163","url":null,"abstract":"We are commissioning a 2.5-MeV proton beam for the Integrable Optics Test\u0000Accelerator at Fermilab, allowing experiments in the strong space-charge regime\u0000with incoherent betatron tune shifts nearing 0.5. Accurate modelling of\u0000space-charge dynamics is vital for understanding planned experiments. We\u0000compare anticipated emittance growth and beam loss in the bare IOTA\u0000configuration using transverse space-charge models in Xsuite, PyORBIT, and MADX\u0000simulation codes. Our findings reveal agreement within a factor of 2 in core\u0000phase-space density predictions up to 100 synchrotron periods at moderate beam\u0000currents, while tail distributions and beam loss show significant differences.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"77 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189740","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Space charge dominated momentum spread and compensation strategies in the post-linac section of Proton Improvement Plan-II at Fermilab 费米实验室质子改进计划-II 后直线部分的空间电荷主导动量传播和补偿策略
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-29 DOI: arxiv-2405.19515
A. PathakFermi National Accelerator Laboratory, Batavia, USA, O. NapolyFermi National Accelerator Laboratory, Batavia, USA, J. -F. OstiguyFermi National Accelerator Laboratory, Batavia, USA
{"title":"Space charge dominated momentum spread and compensation strategies in the post-linac section of Proton Improvement Plan-II at Fermilab","authors":"A. PathakFermi National Accelerator Laboratory, Batavia, USA, O. NapolyFermi National Accelerator Laboratory, Batavia, USA, J. -F. OstiguyFermi National Accelerator Laboratory, Batavia, USA","doi":"arxiv-2405.19515","DOIUrl":"https://doi.org/arxiv-2405.19515","url":null,"abstract":"The upcoming Proton Improvement Plan-II (PIP-II), designated for enhancements\u0000to the Fermilab accelerator complex, features a new 800 MeV superconducting\u0000linac and a Beam Transfer Line (BTL) to transport the beam to the existing\u0000Booster synchrotron. To mitigate the space charge tune shift associated with a\u0000high intensity accumulated beam, the low emittance linac beam is used to paint\u0000the ring phase space both transversely and longitudinally. To prevent losses\u0000caused by particles injected outside the rf separatrix while painting\u0000longitudinal phase space, the momentum spread of the incoming beam should not\u0000exceed 2.1 x 10^-4. Detailed simulations showed that due to space charge, the\u0000rms momentum spread increases to 4 x 10^-4 while it is transported in the BTL\u0000--about twice the allowable limit. In this paper, we outline a mitigation\u0000strategy involving a debuncher cavity. We discuss location, operating\u0000frequency, and gap voltage under both nominal and perturbed beam conditions,\u0000specifically accounting for momentum jitter. The impact of cavity misalignments\u0000is also assessed. The paper concludes by recommending an optimized\u0000configuration.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"130 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189670","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Novel materials for next-generation accelerator target facilities 用于下一代加速器靶设施的新型材料
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-28 DOI: arxiv-2405.18545
K. AmmiganFermi National Accelerator Laboratory, Batavia, IL, USA, G. AroraFermi National Accelerator Laboratory, Batavia, IL, USA, S. BidharFermi National Accelerator Laboratory, Batavia, IL, USA, A. BurleighFermi National Accelerator Laboratory, Batavia, IL, USA, F. PellemoineFermi National Accelerator Laboratory, Batavia, IL, USA, A. CouetUniversity of Wisconsin-Madison, Madison, WI, USA, N. CrnkovichUniversity of Wisconsin-Madison, Madison, WI, USA, I. SzlufarskaUniversity of Wisconsin-Madison, Madison, WI, USA
{"title":"Novel materials for next-generation accelerator target facilities","authors":"K. AmmiganFermi National Accelerator Laboratory, Batavia, IL, USA, G. AroraFermi National Accelerator Laboratory, Batavia, IL, USA, S. BidharFermi National Accelerator Laboratory, Batavia, IL, USA, A. BurleighFermi National Accelerator Laboratory, Batavia, IL, USA, F. PellemoineFermi National Accelerator Laboratory, Batavia, IL, USA, A. CouetUniversity of Wisconsin-Madison, Madison, WI, USA, N. CrnkovichUniversity of Wisconsin-Madison, Madison, WI, USA, I. SzlufarskaUniversity of Wisconsin-Madison, Madison, WI, USA","doi":"arxiv-2405.18545","DOIUrl":"https://doi.org/arxiv-2405.18545","url":null,"abstract":"As beam power continues to increase in next-generation accelerator\u0000facilities, high-power target systems face crucial challenges. Components like\u0000beam windows and particle-production targets must endure significantly higher\u0000levels of particle fluence. The primary beam's energy deposition causes rapid\u0000heating (thermal shock) and induces microstructural changes (radiation damage)\u0000within the target material. These effects ultimately deteriorate the\u0000components' properties and lifespan. With conventional materials already\u0000stretched to their limits, we are exploring novel materials including\u0000High-Entropy Alloys and Electrospun Nanofibers that offer a fresh approach to\u0000enhancing tolerance against thermal shock and radiation damage. Following an\u0000introduction to the challenges facing high-power target systems, we will give\u0000an overview of the promising advancements we have made so far in customizing\u0000the compositions and microstructures of these pioneering materials. Our focus\u0000is on optimizing their in-beam thermomechanical and physics performance.\u0000Additionally, we will outline our ongoing plans for in-beam irradiation\u0000experiments and advanced material characterizations. The primary goal of this\u0000research is to push the frontiers of target materials, thereby enabling future\u0000multi-MW facilities that will benefit various programs in high-energy physics\u0000and beyond.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"27 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189739","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
First results of AUP Nb3Sn quadrupole horizontal tests AUP Nb3Sn 四极水平测试的初步结果
arXiv - PHYS - Accelerator Physics Pub Date : 2024-05-28 DOI: arxiv-2405.18530
M. BaldiniFermi National Accelerator Laboratory, Batavia, Illinois, USA, G. AmbrosioFermi National Accelerator Laboratory, Batavia, Illinois, USA, G. ApollinariFermi National Accelerator Laboratory, Batavia, Illinois, USA, J. BlowersFermi National Accelerator Laboratory, Batavia, Illinois, USA, R. BossertFermi National Accelerator Laboratory, Batavia, Illinois, USA, R. CarcagnoFermi National Accelerator Laboratory, Batavia, Illinois, USA, G. ChlachidzeFermi National Accelerator Laboratory, Batavia, Illinois, USA, J. DiMarcoFermi National Accelerator Laboratory, Batavia, Illinois, USA, S. FeherFermi National Accelerator Laboratory, Batavia, Illinois, USA, S. KraveFermi National Accelerator Laboratory, Batavia, Illinois, USA, V. LombardoFermi National Accelerator Laboratory, Batavia, Illinois, USA, L. MartinFermi National Accelerator Laboratory, Batavia, Illinois, USA, C. NarugFermi National Accelerator Laboratory, Batavia, Illinois, USA, T. H. NicolFermi National Accelerator Laboratory, Batavia, Illinois, USA, V. NikolicFermi National Accelerator Laboratory, Batavia, Illinois, USA, A. NobregaFermi National Accelerator Laboratory, Batavia, Illinois, USA, V. MarinozziFermi National Accelerator Laboratory, Batavia, Illinois, USA, C. OrozcoFermi National Accelerator Laboratory, Batavia, Illinois, USA, T. PageFermi National Accelerator Laboratory, Batavia, Illinois, USA, S. StoynevFermi National Accelerator Laboratory, Batavia, Illinois, USA, T. StraussFermi National Accelerator Laboratory, Batavia, Illinois, USA, M. TurenneFermi National Accelerator Laboratory, Batavia, Illinois, USA, D. TurrioniFermi National Accelerator Laboratory, Batavia, Illinois, USA, A. VourisFermi National Accelerator Laboratory, Batavia, Illinois, USA, M. YuFermi National Accelerator Laboratory, Batavia, Illinois, USA, A. BaskysLawrence Berkeley National Laboratory, Berkeley CA, D. ChengLawrence Berkeley National Laboratory, Berkeley CA, J. F. CroteauLawrence Berkeley National Laboratory, Berkeley CA, P. FerracinLawrence Berkeley National Laboratory, Berkeley CA, L. Garcia FajardoLawrence Berkeley National Laboratory, Berkeley CA, E. LeeLawrence Berkeley National Laboratory, Berkeley CA, A. LinLawrence Berkeley National Laboratory, Berkeley CA, M. Marchev-skyLawrence Berkeley National Laboratory, Berkeley CA, M. NausLawrence Berkeley National Laboratory, Berkeley CA, H. PanLawrence Berkeley National Laboratory, Berkeley CA, I. PongLawrence Berkeley National Laboratory, Berkeley CA, S. PrestemonLawrence Berkeley National Laboratory, Berkeley CA, K. RayLawrence Berkeley National Laboratory, Berkeley CA, G. SabbiLawrence Berkeley National Laboratory, Berkeley CA, C. SanabriaLawrence Berkeley National Laboratory, Berkeley CA, G. ValloneLawrence Berkeley National Laboratory, Berkeley CA, X. WangLawrence Berkeley National Laboratory, Berkeley CA, K. AmmBrookhaven National Laboratory, Upton, NY, M. AnerellaBrookhaven National Laboratory, Upton, NY, A. Ben YahiaBrookhaven National Laboratory, Upton, NY, H. HockerBrookhaven National Laboratory, Upton, NY, P. JoshiBrookhaven National Laboratory, Upton, NY, J. MuratoreBrookhaven National Laboratory, Upton, NY, J. SchmalzleBrookhaven National Laboratory, Upton, NY, H. SongBrookhaven National Laboratory, Upton, NY, P. WandererBrookhaven National Laboratory, Upton, NY
{"title":"First results of AUP Nb3Sn quadrupole horizontal tests","authors":"M. BaldiniFermi National Accelerator Laboratory, Batavia, Illinois, USA, G. AmbrosioFermi National Accelerator Laboratory, Batavia, Illinois, USA, G. ApollinariFermi National Accelerator Laboratory, Batavia, Illinois, USA, J. BlowersFermi National Accelerator Laboratory, Batavia, Illinois, USA, R. BossertFermi National Accelerator Laboratory, Batavia, Illinois, USA, R. CarcagnoFermi National Accelerator Laboratory, Batavia, Illinois, USA, G. ChlachidzeFermi National Accelerator Laboratory, Batavia, Illinois, USA, J. DiMarcoFermi National Accelerator Laboratory, Batavia, Illinois, USA, S. FeherFermi National Accelerator Laboratory, Batavia, Illinois, USA, S. KraveFermi National Accelerator Laboratory, Batavia, Illinois, USA, V. LombardoFermi National Accelerator Laboratory, Batavia, Illinois, USA, L. MartinFermi National Accelerator Laboratory, Batavia, Illinois, USA, C. NarugFermi National Accelerator Laboratory, Batavia, Illinois, USA, T. H. NicolFermi National Accelerator Laboratory, Batavia, Illinois, USA, V. NikolicFermi National Accelerator Laboratory, Batavia, Illinois, USA, A. NobregaFermi National Accelerator Laboratory, Batavia, Illinois, USA, V. MarinozziFermi National Accelerator Laboratory, Batavia, Illinois, USA, C. OrozcoFermi National Accelerator Laboratory, Batavia, Illinois, USA, T. PageFermi National Accelerator Laboratory, Batavia, Illinois, USA, S. StoynevFermi National Accelerator Laboratory, Batavia, Illinois, USA, T. StraussFermi National Accelerator Laboratory, Batavia, Illinois, USA, M. TurenneFermi National Accelerator Laboratory, Batavia, Illinois, USA, D. TurrioniFermi National Accelerator Laboratory, Batavia, Illinois, USA, A. VourisFermi National Accelerator Laboratory, Batavia, Illinois, USA, M. YuFermi National Accelerator Laboratory, Batavia, Illinois, USA, A. BaskysLawrence Berkeley National Laboratory, Berkeley CA, D. ChengLawrence Berkeley National Laboratory, Berkeley CA, J. F. CroteauLawrence Berkeley National Laboratory, Berkeley CA, P. FerracinLawrence Berkeley National Laboratory, Berkeley CA, L. Garcia FajardoLawrence Berkeley National Laboratory, Berkeley CA, E. LeeLawrence Berkeley National Laboratory, Berkeley CA, A. LinLawrence Berkeley National Laboratory, Berkeley CA, M. Marchev-skyLawrence Berkeley National Laboratory, Berkeley CA, M. NausLawrence Berkeley National Laboratory, Berkeley CA, H. PanLawrence Berkeley National Laboratory, Berkeley CA, I. PongLawrence Berkeley National Laboratory, Berkeley CA, S. PrestemonLawrence Berkeley National Laboratory, Berkeley CA, K. RayLawrence Berkeley National Laboratory, Berkeley CA, G. SabbiLawrence Berkeley National Laboratory, Berkeley CA, C. SanabriaLawrence Berkeley National Laboratory, Berkeley CA, G. ValloneLawrence Berkeley National Laboratory, Berkeley CA, X. WangLawrence Berkeley National Laboratory, Berkeley CA, K. AmmBrookhaven National Laboratory, Upton, NY, M. AnerellaBrookhaven National Laboratory, Upton, NY, A. Ben YahiaBrookhaven National Laboratory, Upton, NY, H. HockerBrookhaven National Laboratory, Upton, NY, P. JoshiBrookhaven National Laboratory, Upton, NY, J. MuratoreBrookhaven National Laboratory, Upton, NY, J. SchmalzleBrookhaven National Laboratory, Upton, NY, H. SongBrookhaven National Laboratory, Upton, NY, P. WandererBrookhaven National Laboratory, Upton, NY","doi":"arxiv-2405.18530","DOIUrl":"https://doi.org/arxiv-2405.18530","url":null,"abstract":"The Large Hadron Collider will soon undergo an upgrade to increase its\u0000luminosity by a factor of ~10 [1]. A crucial part of this upgrade will be\u0000replacement of the NbTi focusing magnets with Nb3Sn magnets that achieve a ~50%\u0000increase in the field strength. This will be the first ever large-scale\u0000implementation of Nb3Sn magnets in a particle accelerator. The High-Luminosity\u0000LHC Upgrade, HL-LHC is a CERN project with a world-wide collaboration. It is\u0000under construction and utilizes Nb3Sn Magnets (named MQXF) as key ingredients\u0000to increase tenfold the integrated luminosity delivered to the CMS and ATLAS\u0000experiments in the next decade. The HL-LHC AUP is the US effort to contribute approximately 50% of the\u0000low-beta focusing magnets and crab cavities for the HL-LHC. This paper will present the program to fabricate the Nb3Sn superconducting\u0000magnets. We are reporting the status of the HL-LHC AUP project present the\u0000results from horizontal tests of the first fully assembled cryo-assembly.","PeriodicalId":501318,"journal":{"name":"arXiv - PHYS - Accelerator Physics","volume":"181 1","pages":""},"PeriodicalIF":0.0,"publicationDate":"2024-05-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"141189996","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
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