The Neutronic Engine: A Platform for Operando Neutron Diffraction in Internal Combustion Engines

IF 1.1 Q3 TRANSPORTATION SCIENCE & TECHNOLOGY SAE International Journal of Engines Pub Date : 2023-11-09 DOI:10.4271/03-17-02-0016
Martin Wissink, Christopher L. Wray, P.M. Lee, Matthew M. Hoffmeyer, Matthew J. Frost, Ke An, Yan Chen
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Abstract

Neutron diffraction is a powerful tool for noninvasive and nondestructive characterization of materials and can be applied even in large devices such as internal combustion engines thanks to neutrons’ exceptional ability to penetrate many materials. While proof-of-concept experiments have shown the ability to measure spatially and temporally resolved lattice strains in a small aluminum engine on a timescale of minutes over a limited spatial region, extending this capability to timescales on the order of a crank angle degree over the full volume of the combustion chamber requires careful design and optimization of the engine structure to minimize attenuation of the incident and diffracted neutrons to maximize count rates. We present the design of a “neutronic engine,” which is analogous to an optical engine in that the materials and external geometry of a typical automotive engine have been optimized to maximize access of the diagnostic while maintaining the internal combustion chamber geometry and operability of the engine. The high transparency of aluminum to neutrons makes it the ideal window material for neutron diagnostics, which allows the neutronic engine to be a truly all-metal engine with the same load and boundary condition capabilities of a modern downsized passenger car engine. The neutronic engine will enable 3D and time-resolved measurements of strain, stress, and temperature fields as well as phase transformation, texture, and microstructure throughout the metal components of the combustion chamber.
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中子发动机:内燃机中操作中子衍射的平台
中子衍射是一种非侵入性和非破坏性表征材料的强大工具,由于中子具有穿透许多材料的特殊能力,它甚至可以应用于内燃机等大型设备。虽然概念验证实验已经表明,在有限的空间区域内,在几分钟的时间尺度上测量小型铝制发动机的空间和时间分解晶格应变的能力,但将这种能力扩展到燃烧室内整个体积的曲柄角度数量级的时间尺度上,需要仔细设计和优化发动机结构,以最大限度地减少入射和衍射中子的衰减,从而最大化计数率。我们提出了一种“中子发动机”的设计,它类似于光学发动机,因为典型汽车发动机的材料和外部几何形状已经过优化,以最大限度地提高诊断的可达性,同时保持发动机的内燃室几何形状和可操作性。铝对中子的高透明度使其成为中子诊断的理想窗口材料,这使得中子发动机成为真正的全金属发动机,具有与现代小型乘用车发动机相同的负载和边界条件能力。该中子发动机将实现对整个燃烧室金属部件的应变、应力和温度场以及相变、织构和微观结构的3D和时间分辨测量。
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来源期刊
SAE International Journal of Engines
SAE International Journal of Engines TRANSPORTATION SCIENCE & TECHNOLOGY-
CiteScore
2.70
自引率
8.30%
发文量
38
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