A Low TCR Nanocomposite Strain Gage for High Temperature Aerospace Applications

O. Gregory, Xi-ming Chen
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引用次数: 12

Abstract

Ceramic strain gages are being developed to monitor the structural integrity of gas turbine engine components employed in aerospace propulsion and power generation systems. Specifically, ceramic thin film strain gages based on indium-tin-oxide (ITO) and refractory metal (Pt, W, Ni, NiCoCrAlY) nanocomposites were investigated to achieve very low TRC's in the active strain element. Nanocomposite sensor elements were prepared from a number of ITO/Pt combinatorial libraries by co-sputtering onto alumina substrates placed in between ITO and Pt sputtering targets. Temperature coefficient of resistance (TCR) measurements of the resulting nanocomposites were made by thermally cycling the strain sensors from room temperature to 1000degC and measuring the piezoresistive response from room temperature to 1200degC at strain levels up to 1000 muepsiv. The chemical composition of the most promising combinatorial libraries was analyzed by EDS /SEM. Preliminary results indicated that a near zero TCR could be achieved over an extended temperature range in nanocomposite strain sensors containing less than 10% ITO. Even though EDS revealed that the bulk of the nanocomposite strain sensor was platinum, a relatively large gage factor (~26.0) and low drift rate (0.018%/hr) were realized with the nanocomposite. Based on these results, other combinatorial libraries employing ITO-refractory metal nanocomposites including ITO-W, ITO-Ni and ITO-NiCoCrAlY were investigated for high temperature strain gage applications. These combinations did not perform as well as ITO-Pt in terms of TCR and piezoresistive response when compared to those established for the ITO-Pt nanocomposite gages.
用于高温航空航天的低TCR纳米复合应变计
陶瓷应变片用于监测航空航天推进和发电系统中燃气涡轮发动机部件的结构完整性。具体来说,基于氧化铟锡(ITO)和难熔金属(Pt, W, Ni, NiCoCrAlY)纳米复合材料的陶瓷薄膜应变片在有效应变单元中获得了非常低的TRC。纳米复合传感器元件由多个ITO/Pt组合文库通过共溅射到放置在ITO和Pt溅射目标之间的氧化铝衬底上制备。通过将应变传感器从室温热循环至1000℃,并在应变水平高达1000 μ epsiv时测量从室温至1200℃的压阻响应,测量所得纳米复合材料的电阻温度系数(TCR)。利用EDS /SEM分析了最有前途的组合文库的化学组成。初步结果表明,在ITO含量低于10%的纳米复合应变传感器中,可以在更大的温度范围内实现接近零的TCR。尽管EDS显示纳米复合应变传感器的主体为铂,但该纳米复合材料具有较大的应变系数(~26.0)和较低的漂移速率(0.018%/hr)。基于这些结果,ITO-W、ITO-Ni和ITO-NiCoCrAlY等ito -难熔金属纳米复合材料组合文库也被用于高温应变片的研究。与ITO-Pt纳米复合材料相比,这些组合在TCR和压阻响应方面的表现不如ITO-Pt。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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