...
首页> 外文期刊>Archives of acoustics >Application of Ultrasonic Methods for Evaluation of High-Pressure Physicochemical Parameters of Liquids
【24h】

Application of Ultrasonic Methods for Evaluation of High-Pressure Physicochemical Parameters of Liquids

机译:超声方法在评估液体高压理化参数中的应用

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

An emerging ultrasonic technology aims to control high-pressure industrial processes that use liquids at pressures up to 800 MPa. To control these processes it is necessary to know precisely physicochemical properties of the processed liquid (e.g., Camelina sativa oil) in the high-pressure range. In recent years, Camelina sativa oil gained a significant interest in food and biofuel industries. Unfortunately, only a very few data characterizing the high-pressure behavior of Camelina sativa oil is available. The aim of this paper is to investigate high pressure physicochemical properties of liquids on the example of Camelina sativa oil, using efficient ultrasonic techniques, i.e., speed of sound measurements supported by parallel measurements of density. It is worth noting that conventional low-pressure methods of measuring physicochemical properties of liquids fail at high pressures. The time of flight (TOF) between the two selected ultrasonic impulses was evaluated with a cross-correlation method. TOF measurements enabled for determination of the speed of sound with very high precision (of the order of picoseconds). Ultrasonic velocity and density measurements were performed for pressures 0.1-660 MPa, and temperatures 3-30℃. Isotherms of acoustic impedance Z_α, surface tension σ and thermal conductivity k were subsequently evaluated. These physicochemical parameters of Camelina sativa oil are mainly influenced by changes in the pressure p, i.e., they increase about two times when the pressure increases from atmospheric pressure (0.1 MPa) to 660 MPa at 30℃. The results obtained in this study are novel and can be applied in food, and chemical industries.
机译:一项新兴的超声技术旨在控制使用压力高达800 MPa的液体的高压工业过程。为了控制这些过程,有必要精确地知道高压范围内的被处理液体(例如,山茶油)的理化性质。近年来,茶花油在食品和生物燃料行业引起了极大的兴趣。不幸的是,仅有很少的表征茶花油的高压行为的数据。本文的目的是使用有效的超声技术,以亚麻油为例,研究液体的高压物理化学特性,即通过平行测量密度来支持声音测量的速度。值得注意的是,测量液体的物理化学性质的常规低压方法在高压下会失效。使用互相关方法评估了两个选定的超声脉冲之间的飞行时间(TOF)。 TOF测量可以非常精确地(皮秒级)确定声速。在压力0.1-660 MPa,温度3-30℃下进行超声速度和密度测量。随后评估了声阻抗Z_α,表面张力σ和导热系数k的等温线。茶花油的这些理化参数主要受压力p的变化影响,即,当压力从30℃的大气压(0.1 MPa)增加到660 MPa时,其增加约两倍。在这项研究中获得的结果是新颖的,可应用于食品和化学工业。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号