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THERMAL MODELING AND DESIGN ANALYSIS OF A HYBRID MICRODEVICE FOR CONTINUOUS-FLOW PCR USING ONE HEATER

机译:一种采用加热器的连续流PCR混合微设备的热建模和设计分析

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In microfluidic devices, polymerase chain reaction (PCR) is a biomedical technique with great potential for on-site evidence collection system of various pathology and food samples. Although microfluidics has exhibited the ability to miniaturize and automate many laboratory procedures, an essential comprehension of the thermofluidic modeling tools is ultimately critical to streamline the design process of microfluidic device. One of the main obstacles for device miniaturization and process simplification of continuous-flow PCR (CF-PCR) device is employing two or more heaters which lead to process complexity. To overcome these complexities, a novel metal alloy assisted hybrid microdevice (polydimethylsiloxane and glass) for CF-PCR employing one heater is considered. In this paper, a two-step conjugate thermal model, solid domain and one pass model, is developed to optimize the thermal efficiency of a hybrid CF-PCR device using one heater. The effects of heat transfer on temperature distribution and thermal gradients in hybrid CF-PCR device are analyzed using ANSYS CFX 15. For optimized design of PCR chip, parameters, such as protrusion length (3 cm, 4 cm, and 5 cm), metal alloy thickness (1 mm, 2 mm, and 3 mm) and boundary conditions are varied to analyze the effect on temperature distribution in a microchannel. The proposed schemes pave the way for system integration and minimizing the accessories, realizing a portable microfluidic device applicable for on-site and direct field uses.
机译:在微流控设备中,聚合酶链反应(PCR)是一种生物医学技术,对于各种病理学和食品样品的现场证据收集系统具有巨大的潜力。尽管微流体技术已经显示出使许多实验室程序小型化和自动化的能力,但对热流体建模工具的基本理解最终对于简化微流体设备的设计过程至关重要。连续流PCR(CF-PCR)装置小型化和简化工艺的主要障碍之一是采用两个或多个加热器,这会导致工艺复杂化。为了克服这些复杂性,考虑了一种使用一个加热器的用于CF-PCR的新型金属合金辅助混合微器件(聚二甲基硅氧烷和玻璃)。本文开发了两步共轭热模型,实体域和单程模型,以优化使用一个加热器的混合CF-PCR装置的热效率。使用ANSYS CFX 15分析了传热对混合CF-PCR装置中温度分布和热梯度的影响。为优化PCR芯片的设计,需要使用参数,例如突出长度(3 cm,4 cm和5 cm),金属改变合金厚度(1 mm,2 mm和3 mm)和边界条件以分析对微通道中温度分布的影响。所提出的方案为系统集成和最小化附件铺平了道路,从而实现了适用于现场和直接现场使用的便携式微流体设备。

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