首页> 外文会议>HT2008;ASME summer heat transfer conference >THERMAL MODELING FOR DESIGN OPTIMIZATION OF A MICROFLUIDIC DEVICE FOR CONTINUOUS FLOW POLYMERASE CHAIN REACTION (PCR)
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THERMAL MODELING FOR DESIGN OPTIMIZATION OF A MICROFLUIDIC DEVICE FOR CONTINUOUS FLOW POLYMERASE CHAIN REACTION (PCR)

机译:用于连续流聚合酶链反应(PCR)的微流体装置设计优化的热建模

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Polymerase Chain Reaction (PCR) is a molecular biological method for the in vitro amplification of nucleic acid molecules which has wide applications in the area of genetics, medicine and biochemistry. The typical three step PCR cycle consists of heating the sample to 90-94 °C to denature double-stranded DNA, cooling down to 50-54 °C to anneal the specific primers to the single stranded DNA and finally increasing the temperature to 70-75 °C for extension of the primers with thermostable DNA polymerase. The temperature sensitivity of the reaction requires precise temperature control and proper thermal isolation of these three zones. In this paper we present the design of a continuous flow PCR microfluidic device with the channels fabricated in (poly) dimethylsiloxane (PDMS) and thin film Platinum Resistance Temperature Detector (RTD) elements fabricated on glass substrate to define the three different temperature zones. The fluidic arrangement has a water jacket layer to minimize evaporation from the porous PDMS walls. A detailed thermo fluidic model of the device is presented to predict the performance and efficacy of the proposed design. Numerical simulations are carried out to find the temperature distribution and temperature gradients in the device and a parametric study is done by varying flow rate, heat flux and channel dimensions in order to optimize the design for achieving temperature isolation and sharp temperature gradients between different zones.
机译:聚合酶链反应(PCR)是一种用于体外扩增核酸分子的分子生物学方法,在遗传学,医学和生物化学领域具有广泛的应用。典型的三步PCR循环包括将样品加热至90-94°C以使双链DNA变性,冷却至50-54°C以使特定引物与单链DNA退火,最后将温度提高至70- 75°C时用热稳定的DNA聚合酶延伸引物。反应的温度敏感性要求对这三个区域进行精确的温度控制和适当的热隔离。在本文中,我们介绍了一种连续流动PCR微流控设备的设计,该设备具有在聚二甲基硅氧烷(PDMS)中制造的通道和在玻璃基板上制造的薄膜铂电阻温度检测器(RTD)元件,以定义三个不同的温度区域。流体装置具有水套层,以最小化从多孔PDMS壁的蒸发。介绍了该设备的详细热流体模型,以预测所提出设计的性能和功效。进行了数值模拟,以找到设备中的温度分布和温度梯度,并通过改变流速,热通量和通道尺寸来进行参数研究,以优化设计,以实现不同区域之间的温度隔离和尖锐的温度梯度。

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