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Experimental Investigation and Modelling of Laser Machining of Sapphire for High Temperature Pressure Transducers

机译:高温压力传感器蓝宝石激光加工试验研究

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Sensing of pressure at high temperatures is currently limited by melting temperature and the plastic deformation undergone by silicon based technologies due to brittle to ductile transition.1 Sapphire has been proposed as an alternative sensing material that can overcome these temperature limitations using photonic methods. In order to manufacture the sensors, an ultra-short pulsed laser is utilized to machine sapphire as opposed to plasma etching methods used in silicon-based microelectromechanical systems (MEMS) technology. Here we quantify the change in mechanical properties of sapphire due to laser machining. Vicker's indentations were applied to both pristine and laser machined specimens showing that there is a toughening effect due to the machining process. The underlying mechanisms associated with toughening were quantified using transmission electron microscopy (TEM) and a single crystal plasticity model using finite element analysis. The TEM cross-sections illustrated dense sub-surface regions of dislocations only in laser machined specimens. To further understand the toughening, finite element modeling of nanoindentations were conducted and compared with data illustrating complex evolution of the single crystal sapphire material underneath the nanoindent. The modeling and data comparison suggest hardening occurs locally that can be associated with an increase in the elastic properties as well as local damage.
机译:在高温下的感测压力目前通过熔化温度和由于脆性转型而通过硅基技术的塑性变形来限制,这已经提出了可以使用光子方法克服这些温度限制的替代传感材料。为了制造传感器,超短脉冲激光器用于在基于硅基微机电系统(MEMS)技术中使用的等离子体蚀刻方法而使蓝宝石。在这里,我们由于激光加工而定量了蓝宝石机械性能的变化。 Vicker的压痕应用于原始和激光加工标本,表明由于加工过程引起的增韧效果。使用有限元分析使用透射电子显微镜(TEM)和单晶可塑性模型来定量与增韧相关的潜在机制。 TEM横截面仅在激光加工标本中示出了位错的致密子表面区域。为了进一步了解增韧的,进行了纳米indentation的有限元建模,并与说明在纳米下茚满的单晶蓝宝石材料的复杂演化的数据进行比较。建模和数据比较建议在本地发生硬化,这可以与弹性特性的增加以及局部损坏相关联。

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