1 Department of Mechanical Engineering, Chung Yuan Christian University, Chung Li District, Taoyuan City, Taiwan.
SLAS Technol. 2019 Apr;24(2):188-195. doi: 10.1177/2472630318808196. Epub 2018 Oct 25.
This paper presents a novel design of a capillary stop valve with a chamfered side that can be used as a flow regulator to hold an injected microfluid in the valve position in a capillary force-driven microfluidic device. Biochemical analysis can be conducted if the chamfer-type valves are placed at strategic positions according to the test protocol. Hence, the stored reagent can be dragged out of the valve for further reaction when the specimen passes through. However, countercurrent phenomena were observed in the commonly used T-type capillary stop valve (without the chamfered side). In blood typing tests, the countercurrent led to incomplete dragging and the fluid stopped flowing at the complicated mixing channel; thus, the blood typing reaction was attenuated. On the contrary, the chamfer-type valve reduced the countercurrent phenomena and ameliorated the blood typing reaction. Consequently, agglutination results can be easily discriminated from nonagglutination cases.
本文提出了一种带有倒角侧面的新型毛细管截止阀设计,可作为流量调节器,在毛细作用力驱动的微流控装置中保持阀位处注入的微流体。如果根据测试方案将倒角阀放置在战略位置,则可以进行生化分析。因此,当样本通过时,存储的试剂可以被推出阀外进行进一步反应。然而,在常用的 T 型毛细管截止阀(无倒角侧面)中观察到逆流现象。在血型测试中,逆流导致不完全推出,流体在复杂的混合通道中停止流动,从而削弱了血型反应。相反,倒角阀减少了逆流现象,改善了血型反应。因此,很容易从非凝集病例中区分出凝集结果。