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DNA Printing Integrated Multiplexer Driver Microelectronic Mechanical System Head (IDMH) and Microfluidic Flow Estimation

机译:DNA印刷集成多路复用器驱动微电子机械系统头(IDMH)和微流体流量估计

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摘要

The system designed in this study involves a three-dimensional (3D) microelectronic mechanical system chip structure using DNA printing technology. We employed diverse diameters and cavity thickness for the heater. DNA beads were placed in this rapid array, and the spray flow rate was assessed. Because DNA cannot be obtained easily, rapidly deploying DNA while estimating the total amount of DNA being sprayed is imperative. DNA printings were collected in a multiplexer driver microelectronic mechanical system head, and microflow estimation was conducted. Flow-3D was used to simulate the internal flow field and flow distribution of the 3D spray room. The simulation was used to calculate the time and pressure required to generate heat bubbles as well as the corresponding mean outlet speed of the fluid. The “outlet speed status” function in Flow-3D was used as a power source for simulating the ejection of fluid by the chip nozzle. The actual chip generation process was measured, and the starting voltage curve was analyzed. Finally, experiments on flow rate were conducted, and the results were discussed. The density of the injection nozzle was 50, the size of the heater was 105 μm × 105 μm, and the size of the injection nozzle hole was 80 μm. The maximum flow rate was limited to approximately 3.5 cc. The maximum flow rate per minute required a power between 3.5 W and 4.5 W. The number of injection nozzles was multiplied by 100. On chips with enlarged injection nozzle density, experiments were conducted under a fixed driving voltage of 25 V. The flow curve obtained from various pulse widths and operating frequencies was observed. The operating frequency was 2 KHz, and the pulse width was 4 μs. At a pulse width of 5 μs and within the power range of 4.3–5.7 W, the monomer was injected at a flow rate of 5.5 cc/min. The results of this study may be applied to estimate the flow rate and the total amount of the ejection liquid of a DNA liquid.
机译:本研究中设计的系统涉及使用DNA印刷技术的三维(3D)微电子机械系统芯片结构。我们采用了加热器的多样直径和腔厚度。将DNA珠粒置于该快速阵列中,并评估喷雾流量。因为不能容易地获得DNA,因此在估计喷涂的DNA的总量的同时快速展开DNA是势不一的。在多路复用器驾驶员微电子机械系统头中收集DNA印刷,并进行微射线估计。 Flow-3D用于模拟3D喷涂室的内部流场和流量分布。模拟用于计算产生热气泡的时间和压力以及流体的相应平均出口速度。流动-3D中的“出口速度状态”功能用作用于通过芯片喷嘴模拟流体喷射的电源。测量实际芯片生成过程,分析起始电压曲线。最后,进行了对流速的实验,并讨论了结果。注射喷嘴的密度为50,加热器的尺寸为105μm×105μm,注射喷嘴孔的尺寸为80μm。最大流速限制为约3.5cc。每分钟的最大流量速率需要3.5 W和4.5W。注射喷嘴的数量乘以100.在具有放大喷嘴密度的碎片上,在25V的固定驱动电压下进行实验。获得的流动曲线从各种脉冲宽度和操作频率观察到。工作频率为2 kHz,脉冲宽度为4μs。在5μs的脉冲宽度下,在4.3-5.7W的功率范围内,将单体以5.5cc / min的流速注入。可以应用该研究的结果来估计DNA液体的喷射液的流速和总量。

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