[Design and evaluation of a liquid chromatographic column oven with adaptive and precise temperature control].

Xing-Fa Ren, Feng-Wei Shao, Yong Wu, Xin-Ming Liao, Zhuo Wang, Lin-Juan Zhou, Xu-Hong He, Wei-Bing Zhang
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Abstract

High performance liquid chromatography (HPLC) is a key analytical technique that is used in a number of fields. Improving the separation efficiency, stability, and universality of HPLC has been a continuing analytical-chemistry focus. In chromatographic separation, factors such as the composition and ratio of the mobile phase, the type of stationary phase, and the dimensions of the chromatographic column significantly affect the separation efficiency. In addition, the temperatures of the chromatographic column and mobile phase are also important for achieving separation. The column oven is usually used to stably control the column temperature in the HPLC separation system. Indeed, highly accurate temperature control ensures superior separation performance, short analysis times, and repeatability. In this study, we innovatively improved the traditional column oven by combining a variety of temperature-control algorithms to deliver continuous and highly accurate temperature control in the wide 4-90 ℃ range, and by exploring a new chromatographic-method development route. Instead of focusing on the complex hardware system, we optimized the software to achieve highly stable and accurate (±0.1 ℃) temperature control. Temperature-control performance was further improved by optimizing the structure of the thermal insulation and employing reliable and environmentally friendly thermal-insulation materials. Additionally, the thermal conduction of the heat-source device is discussed based on the heat-transfer principle with the aim of improving the performance of the column oven. The improved column oven delivered significantly enhanced chromatographic-separation repeatability and stability thereby reliably guaranteeing the development of highly efficient chromatographic analysis methods.

Abstract Image

Abstract Image

Abstract Image

一种具有自适应精确温度控制的液相色谱柱炉的设计与评价。
高效液相色谱(HPLC)是一种关键的分析技术,在许多领域都有应用。提高高效液相色谱的分离效率、稳定性和通用性一直是分析化学领域关注的焦点。在色谱分离中,流动相的组成和比例、固定相的类型、色谱柱的尺寸等因素对分离效率有显著影响。此外,色谱柱和流动相的温度对实现分离也很重要。在高效液相色谱分离系统中,柱箱通常用于稳定控制柱温。事实上,高度精确的温度控制确保了卓越的分离性能,短的分析时间和可重复性。本研究通过结合多种控温算法对传统柱式炉进行创新性改进,在4 ~ 90℃范围内实现连续高精度控温,探索出一条色谱方法发展的新路线。而不是专注于复杂的硬件系统,我们优化了软件,以实现高度稳定和精确(±0.1℃)的温度控制。通过优化保温结构和采用可靠、环保的保温材料,进一步提高了保温性能。此外,根据传热原理对热源装置的导热进行了讨论,以期提高塔式烘箱的性能。改进后的色谱柱烘箱显著提高了色谱分离的重复性和稳定性,从而可靠地保证了高效色谱分析方法的开发。
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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