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Fabrication and Analysis of Microfluidic Mold Insert by Micro Electrical Discharge Machining

机译:微型电气放电加工微流体模具插入件的制造与分析

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This study develops an improved method for generating aluminum mold inserts used in the replication of polymer-based microfluidic chip. Since molding masters that are suitable for microfluidic chip replication must have features whose dimensions are of the order of tens to hundreds of microns, micro electrical discharge machining is employed herein to fabricate an aluminum mold insert of a microfluidic chip. The width and depth of the aluminum mold insert for the microfluidic chip are 61.50 μm and 49.61 μm, respectively. The surface roughness values of the microchannel and the sample reservoir in aluminum mold insert for the microfluidic chip are 59.92 nm and 34.34 nm, respectively. PMMA material is adopted as the molded microfluidic chip that is produced by micro-hot embossing molding. The PMMA material can replicate the microchannel and sample reservoir very well when the aluminum mold insert is used in micro-hot embossing molding. The results indicate that the most important parameter in the replication of molded microfluidic chip is the embossing pressure, which is also the most important parameter in determining the surface roughness of the molded microfluidic chip.
机译:该研究开发了一种改进的方法,用于产生用于复制基于聚合物的微流体芯片的铝模具插入物。由于适用于微流体芯片复制的模塑主体必须具有其尺寸为数百微米的尺寸的特征,因此本文采用微电放电加工来制造微流体芯片的铝模具插入件。微流体芯片的铝模具插入件的宽度和深度分别为61.50μm和49.61μm。微通道和微流体芯片铝模具插入件中的微通道和样品储存器的表面粗糙度值分别为59.92nm和34.34nm。采用PMMA材料作为模塑的微流体芯片,由微热压花模塑生产。当铝模具插入件用于微热压花成型时,PMMA材料可以非常好地复制微通道和样品储存器。结果表明,模塑微流体芯片复制中最重要的参数是压花压力,这也是确定模塑微流体芯片的表面粗糙度的最重要参数。

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