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    • 7. 发明申请
    • BUBBLE-TOLERANT MICRO-MIXERS
    • 耐爆MICRO-MIXERS
    • US20090211657A1
    • 2009-08-27
    • US11720866
    • 2005-12-08
    • Holger Dirac
    • Holger Dirac
    • G05D7/01G05D11/02B01F3/08F15D1/00
    • B01F13/0062B01F13/0093Y10T137/87346Y10T137/87652Y10T137/87676
    • A device for mixing at least one first fluid and one second fluid in a micro-flow system, comprising at least two flow restrictors, a first transfer conduit in fluid communication the first og said fluids and a recipient, at least one second transfer conduit in fluid communication with the second of said fluids, the second transfer conduit having at least two fluid outlets in fluid communication with said first transfer conduit, where each of said outlets of said second transfer conduit is downstream and in fluid communication with the outlet of one of said flow restrictors, and wherein the flow restrictors are bubble-tolerant, being formed to prevent fragmentation of bubbles entering the flow restrictor, into a bubble train consuming the pressure difference between the source and the recipient. Pumping means may be attached to the flow system, possibly being constant-pressure pumps of the kind, where elastomer bladders squeeze a fluid into the channels.
    • 一种用于在微流系统中混合至少一个第一流体和一个第二流体的装置,包括至少两个限流器,第一输送管道,其将第一流体和接收器流体连通,至少一个第二输送管道 所述第二输送导管具有与所述第一输送管道流体连通的至少两个流体出口,其中所述第二输送管道的每个所述出口在下游并与所述第二输送管道的出口流体连通 所述流量限制器,并且其中限流器是耐气泡的,其形成为防止进入流量限制器的气泡破碎成消耗源和接收器之间的压力差的泡罩系列。 抽吸装置可以附接到流动系统,可能是这种类型的恒定压力泵,其中弹性体气囊将流体挤压到通道中。
    • 8. 发明申请
    • FLOW SYSTEM AND A MICRO FLUIDIC SYSTEM COMPRISING A FLOW SYSTEM
    • 流动系统和包含流动系统的微流体系统
    • US20090145502A1
    • 2009-06-11
    • US12091134
    • 2006-10-24
    • Holger DiracPeter GravesenKasper Oktavio Schweitz
    • Holger DiracPeter GravesenKasper Oktavio Schweitz
    • G05D7/01F15C1/06
    • G05D7/0186F16K31/002F16K99/0001F16K99/0026F16K99/0036F16K99/0061F16K2099/0084F16K2099/0086Y10T137/1963Y10T137/206Y10T137/2224
    • A flow system (1) comprising a first part (2) and a second part (3), the parts (2, 3) being made from materials having different coefficients of thermal expansion. The first (2) and second (3) parts are positioned relatively to each other in such a way that when the ambient temperature changes corresponding changes are caused in a flow channel (4) formed in the first part (2), thereby changing the flow resistance of the flow channel (4). Thereby a change in flow resistance caused by a change in viscosity of a fluid being transported by the flow system (1) can be counteracted. The resulting flow resistance of the flow system (1) is thereby at least substantially independent of the ambient temperature. Furthermore, a micro fluidic system comprising the flow system (1). The micro fluidic system may be or form part of a medical device, a fluid analysis system, e.g. a device for measuring blood glucose levels of blood samples, or an infusion device.
    • 一种包括第一部分(2)和第二部分(3)的流动系统(1),所述部分(2,3)由具有不同热膨胀系数的材料制成。 第一(2)和第二(3)部分彼此相对定位,使得当在形成于第一部分(2)中的流动通道(4)中引起环境温度变化时,引起相应的变化,从而改变 流动通道(4)的流动阻力。 由此,可以抵消由流动系统(1)输送的流体的粘度变化引起的流动阻力的变化。 因此,流动系统(1)的所得流动阻力至少基本上与环境温度无关。 此外,包括流动系统(1)的微流体系统。 微流体系统可以是或形成医疗装置的一部分,流体分析系统,例如, 用于测量血液样本的血糖水平的装置或输注装置。