Design of manufacturing simulations of a flatplate pulsating heat pipe

M. Pontecorvo
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Abstract

: Currently, a research team in the University of Brighton, in collaboration with the European Space Agency (ESA), is developing a pulsating heat pipe that will eventually be launched and tested in space, with the International Space Station (ISS) as destination, for research into passive thermal devices and their behaviour in a vacuum. The approved pulsating heat pipe design incorporates one titanium plate, which is classified as a metal, and one aluminum-oxide sapphire plate that is classified as a ceramic. At the moment, the team is faced with the challenge of bonding the two plates together since, using convectional manufacturing methods, the parts fail due to the high level of induced stress. A research into manufacturing processes to bond together titanium and sapphire is essential to ensure that the final device will operate for several weeks (maybe even months) without leaking and the need for maintenance. The project explores potential manufacturing processes aimed to bond together these materials and subsequently propose a solution. Furthermore, static and thermal analyses are carried out with the aid of SolidWorks to exploit potential points of failure due to stress concentrations induced by cooling after bonding. The results indicate that both titanium and sapphire are capable of sustaining the induced stresses but, due to the complex geometry of the pulsating heat pipe at the contact surface, the bonding agent is likely to fail due to the induced stresses.
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平板脉动热管制造仿真设计
当前,布莱顿大学的一个研究小组正在与欧洲航天局(ESA)合作开发一种脉动热管,该热管最终将在国际空间站(ISS)作为目的地发射并在太空中进行测试,用于研究被动热设备及其在真空中的行为。经批准的脉动热管设计包括一块被归类为金属的钛板和一块被归类为陶瓷的氧化铝蓝宝石板。目前,该团队面临着将两个板粘合在一起的挑战,因为使用传统的制造方法,零件由于高水平的诱导应力而失效。研究将钛和蓝宝石结合在一起的制造工艺对于确保最终设备能够运行数周(甚至数月)而不泄漏和不需要维护至关重要。该项目探索了潜在的制造工艺,旨在将这些材料粘合在一起,并随后提出解决方案。此外,在SolidWorks的帮助下进行了静态和热分析,以利用由于粘接后冷却引起的应力集中而导致的潜在故障点。结果表明,钛和蓝宝石均能承受诱发应力,但由于接触面脉动热管的复杂几何形状,粘结剂容易因诱发应力而失效。
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