The use of MgO–ZnO ceramics to record pressure and temperature conditions in the piston–cylinder apparatus

IF 1.8 3区 地球科学 Q2 MINERALOGY European Journal of Mineralogy Pub Date : 2024-06-14 DOI:10.5194/ejm-36-473-2024
Nicholas Farmer, Hugh St. C. O'Neill
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Abstract

Abstract. The factors affecting the calibration of pressure in the piston–cylinder and other solid-media apparatus are so multifaceted and complex as to challenge existing approaches. Here we demonstrate how MgO–ZnO ceramics may be used in piston–cylinder assemblies to routinely record the pressure–temperature conditions experienced by samples in each run. The miscibility gap between rock-salt- and wurtzite-structured phases in the binary system MgO–ZnO is well suited for this purpose as it is capable of recording pressure and/or temperature in situ with a typical sensitivity to pressure of ± 0.02 GPa (1 standard deviation) if temperature is known, or variations in temperature around a sample of ∼ 10 °C assuming pressure is constant. MgO–ZnO ceramics can simply replace the widely used MgO surrounding samples under most conditions, since they are almost as inert chemically as MgO and have similar mechanical properties. As a demonstration, we apply the method to a redetermination of the quartz–coesite univariant phase transition in the piston–cylinder, using different assembly materials, sizes, and pressure–temperature path protocols. Continuous monitoring of piston travel during the entirety of each run helps reveal the differences in behaviour of the apparatus under these variables. We show that several assumptions about the behaviour of the piston–cylinder apparatus are ill-founded, that there may be a discrepancy of ∼ 10 % in pressure between otherwise identical experiments conducted using slightly different experimental protocols, and that the effects of the various options for assembly materials are complex, depending on the pressure–temperature path of the experiment throughout its duration. We have also used the sensitivity of the miscibility gap to temperature to map the temperature distribution in two dimensions surrounding a platinum capsule in a piston–cylinder experiment. The routine inclusion of the ceramic in piston–cylinder assemblies would provide an archive of actual experimental P–T conditions experienced by samples.
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使用氧化镁-氧化锌陶瓷记录活塞-气缸装置中的压力和温度条件
摘要影响活塞缸和其他固体介质仪器中压力校准的因素是多方面的,也是复杂的,对现有方法提出了挑战。在此,我们展示了如何在活塞缸组件中使用氧化镁-氧化锌陶瓷来常规记录每次运行中样品所经历的压力-温度条件。二元系统 MgO-ZnO 中的岩盐结构相与钨锆结构相之间的混溶隙非常适合这一目的,因为它能够原位记录压力和/或温度,如果温度已知,对压力的典型灵敏度为 ± 0.02 GPa(1 个标准偏差);如果压力恒定,样品周围的温度变化为 ∼ 10 °C。在大多数条件下,氧化镁-氧化锌陶瓷可以简单地取代广泛使用的氧化镁周围样品,因为它们的化学惰性几乎与氧化镁相同,并且具有相似的机械性能。作为演示,我们使用不同的装配材料、尺寸和压力-温度路径协议,将该方法应用于活塞-气缸中石英-绿泥石单变量相变的重新测定。在每次运行的整个过程中,对活塞行程的连续监测有助于揭示仪器在这些变量下的行为差异。我们的研究表明,关于活塞-气缸装置行为的一些假设是没有根据的,在使用略有不同的实验方案进行的完全相同的实验之间,压力可能会有 10 % 的差异,而且装配材料的各种选择所产生的影响是复杂的,这取决于整个实验过程中的压力-温度路径。我们还利用混溶间隙对温度的敏感性,绘制了活塞-气缸实验中铂金胶囊周围的二维温度分布图。在活塞-气缸组件中例行加入陶瓷将为样品所经历的实际实验 P-T 条件提供档案。
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来源期刊
CiteScore
2.80
自引率
9.50%
发文量
40
审稿时长
6-12 weeks
期刊介绍: EJM was founded to reach a large audience on an international scale and also for achieving closer cooperation of European countries in the publication of scientific results. The founding societies have set themselves the task of publishing a journal of the highest standard open to all scientists performing mineralogical research in the widest sense of the term, all over the world. Contributions will therefore be published primarily in English. EJM publishes original papers, review articles and letters dealing with the mineralogical sciences s.l., primarily mineralogy, petrology, geochemistry, crystallography and ore deposits, but also biomineralogy, environmental, applied and technical mineralogy. Nevertheless, papers in any related field, including cultural heritage, will be considered.
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