Dynamics of changes in the temperature coefficient of electrical conductivity of distilled water in conductometric cells during heating and cooling

I. Ageev, Yuri M. Rybin
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Abstract

The problem of taking into account the influence of air on the properties of distilled water is considered, namely the lack of a single generally accepted method for calculating such an influence. The sensitivity of the structure of water to the influence of external factors is described and the possibility of recording and studying such factors by changes in the temperature coefficient of electrical conductivity of water is shown. The dependences of the temperature coefficient of electrical conductivity of distilled water on the rate of change in water temperature, the degree of filling of conductometric cells, as well as on the intensity of the exchange of carbon dioxide between water and air across their interface have been studied. It is noted that these metabolic processes are currently insufficiently studied. A hardware-software measuring complex has been developed and manufactured to study the temperature coefficient of electrical conductivity of water when its temperature changes within the range of 20–55 °C. The temperature coefficient of electrical conductivity of water in sealed conductometric cells was measured at different degrees of filling the cells with distilled water and the rate of heating and cooling of water. The degree of filling of the cells varied within the range of 10–100 %, the rate of change in water temperature varied within the range of 0.04–2.00 °C/min. With a constant heating and cooling time of 15 minutes in all experiments, the change in speed was achieved by changing the temperature of the heating element. The integral temperature coefficient of electrical conductivity is calculated based on the initial and final values of electrical conductivity and water temperature in each measurement cycle. The dependences of the temperature coefficient of electrical conductivity on the rate of change in water temperature at several constant degrees of cell filling were obtained. It has been shown that with a constant ratio of the volumes of water and air in the cell and an increase in the rate of heating of water, the temperature coefficient of electrical conductivity of water decreases by 19–22 %. It has been established that at a constant rate of water heating, with a decrease in the volume of water in the cell, the temperature coefficient of electrical conductivity of water decreases by 40–42 %. The results obtained can be used to quantify the dissociation coefficient of carbonic acid, the mobility of hydrogen ions, as well as the intensity of the gas exchange process under various external influences on water. Refinement of data on the electrical conductive properties of water and processes at the water/air interface is necessary for the development of models of atmospheric phenomena and climate change, as well as for the creation of sensors for weak changes in environmental parameters for the purposes of both environmental monitoring and medical diagnostics.
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加热和冷却过程中电导测量池中蒸馏水电导率温度系数的动态变化
考虑到空气对蒸馏水特性的影响问题,即缺乏计算这种影响的单一公认方法。描述了水的结构对外部因素影响的敏感性,并展示了通过水的导电温度系数的变化来记录和研究这些因素的可能性。我们研究了蒸馏水的电导率温度系数与水温变化率、电导池的填充程度以及水和空气在界面上交换二氧化碳的强度之间的关系。值得注意的是,目前对这些新陈代谢过程的研究还不够充分。为了研究水在 20-55 °C 范围内温度变化时的电导率温度系数,我们开发并制造了一个硬件-软件测量综合装置。在不同的蒸馏水填充度以及水的加热和冷却速度下,测量了密封电导池中水的电导率温度系数。电池的填充度在 10-100 % 的范围内变化,水温变化率在 0.04-2.00 °C/min 的范围内变化。在所有实验中,加热和冷却时间恒定为 15 分钟,速度的变化是通过改变加热元件的温度来实现的。根据每个测量周期中电导率和水温的初始值和最终值,计算出电导率的积分温度系数。得出了在几个恒定的电池填充度下,电导率温度系数与水温变化率的关系。结果表明,当电池中水和空气的体积比保持不变,且水的加热速率增加时,水的导电率温度系数会降低 19-22%。实验证明,在水加热速度不变的情况下,随着电池中水体积的减少,水的导电温度系数会降低 40-42%。所获得的结果可用于量化碳酸的解离系数、氢离子的流动性以及水在各种外部影响下气体交换过程的强度。完善有关水的导电特性和水/空气界面过程的数据,对于开发大气现象和气候变化模型,以及创建用于环境监测和医疗诊断的环境参数微弱变化传感器都是必要的。
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