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THERMAL STRESS ANALYSIS OF GYPSUM SHELL CRACKING IN POLYJET-BASED RAPID CASTING OF CELLULAR METALS

机译:基于多凹型快速铸造的石膏壳开裂的热应力分析

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Cellular (or lattice) metals are increasingly gaining attention for their having combinations of mechanical, thermal, and acoustic properties that provide potential opportunities for diverse multifunctional structural implementations. These include ultra-light structures with high specific strength and high specific strain, excellent impact absorption, acoustic insulation, heat dissipation media and compact heat exchangers. The emerging 3D printing technologies including direct and indirect additive manufacturing processes may accelerate the realization of their structural applications of cellular metals. For indirect additive manufacturing processes, sacrificial patterns are 3D printed with castable polymers, followed by metal filling into a mold cavity to make final cellular metals. With a high stiffness of a castable polymer, e.g., VisiJet Procast, it is possible to build network lattice cellular structures, replacing wax which has been used for traditional investment casting processes. In general, a high thermal stress is expected during burning-out process of the rapid casing. Due to the castable polymer's new properties, no literature is available on thermal stress between the castable polymer and ceramic shells for indirect additive manufacturing of cellular structures. The objective of this study is to investigate i) thermal stress by thermal expansion mismatch between a sacrificial pattern made of a castable polymer and a coated gypsum shell and ii) an effect of the thickness of the coated gypsum shell on thermal cracking. Starting with thermal analysis, glass transition temperature, melting temperature and thermal expansion coefficient are obtained from experiments. An analytical model for thermal stress analysis is constructed with thermo-mechanical constitutive equations and compatibility equations, followed by a failure analysis at the coated shells where gypsum is used for coating the sacrificial pattern. The thermo-mechanical analysis is conducted as a function of temperature and coated shell thickness followed by a numerical validation with a finite element (FE) based simulation. The castable polymer has the potential to be used as a base material for manufacturing 3D network cellular sacrificial patterns with thin cell walls over conventional wax materials due to its high modulus and low thermal expansion coefficient during the burning out process of the sacrificial pattern.
机译:蜂窝(或晶格)金属正日益受到关注他们的具有机械,热学和声学特性,对于不同的多官能结构实现提供潜在机会的组合。这些包括具有高比强度和高比应变,优异的冲击吸收,隔音,散热媒体和紧凑式换热器超轻结构。新兴的3D印刷技术,包括直接和间接的添加制造工艺可以加速实现蜂窝金属的它们的结构的应用程序。对于间接添加剂的制造工艺,牺牲图案是3D印刷有可浇铸的聚合物,随后金属填充到模腔中,以使最终细胞金属。用可浇注的聚合物,例如,VisiJet PROCAST的高刚度,所以可以构建网络晶格细胞结构,替换其中已被用于传统的熔模铸造工艺的蜡。在一般情况下,高的热应力在快速壳体的燃烧出处理预期。由于浇注料聚合物的新的属性,可以用浇注料聚合物和陶瓷壳间接添加剂制造蜂窝结构之间的热应力没有文献。本研究的目的是通过由可浇铸聚合物的牺牲图案和涂覆石膏壳,和ii)在热裂化涂覆石膏壳的厚度的效果之间的热膨胀失配,调查ⅰ)的热应力。用热分析,玻璃化转变温度,熔融温度及热膨胀系数开始从实验中获得的。对于热应力分析的分析模型被构造成具有热机械构方程和兼容性方程,随后在涂覆的壳的故障分析,其中的石膏用于涂覆牺牲图案。热机械分析如随后用有限元(FE)基于仿真的数值验证温度和涂布的壳厚度的函数进行。可浇铸的聚合物具有被用作用于制造三维网络与薄细胞壁优于常规蜡材料蜂窝牺牲图案的基体材料的电势由于在牺牲图案的烧出过程的高模量和低的热膨胀系数。

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