会员体验
专利管家(专利管理)
工作空间(专利管理)
风险监控(情报监控)
数据分析(专利分析)
侵权分析(诉讼无效)
联系我们
交流群
官方交流:
QQ群: 891211   
微信请扫码    >>>
现在联系顾问~
热词
    • 2. 发明申请
    • METHOD TO ALIGN COVERS ON STRUCTURED LAYERS AND RESULTING DEVICES
    • 在结构层和结果设备上对齐覆盖物的方法
    • WO2013082064A3
    • 2013-08-22
    • PCT/US2012066722
    • 2012-11-28
    • CORNING INCPOISSY STEPHANE
    • POISSY STEPHANE
    • C03C27/06B01L3/00B32B3/30B81C1/00C03B23/20C03C27/10C04B37/00
    • B32B37/18B01J19/0093B01J2219/00783B01J2219/00804B01J2219/00824B01J2219/00831B01L3/502707B01L3/569B01L2200/0689B01L2300/0816B01L2300/0887B01L2300/12B32B3/30B81C1/00119C03B23/245C03C27/06C04B37/00C04B37/001C04B37/042C04B2237/32C04B2237/62
    • A method for forming a fluidic module for a continuous flow reactor includes providing at least one planar glass or ceramic sheet having one or more through-holes, forming at least one patterned glass or ceramic layer having at least one patterned surface such that the patterned surface comprises channels defined between walls having an upper surface at a common height, stacking the at least one glass or ceramic sheet and the at least one patterned glass or ceramic layer together, the sheet contacting the walls at the common height, such that the channels are enclosed between the sheet and the patterned layer, the sheet being aligned with the patterned layer such that the one or more through-holes each align with respective spaces between walls of the patterned layer to provide fluid access to said respective spaces, and joining the sheet and the patterned layer together by pressing the sheet and the patterned layer together while heating the sheet and the patterned layer; wherein the patterned glass or ceramic layer further comprises one or more raised structures extending above the common height, and wherein the step of stacking comprises stacking the sheet on the upper surface of the walls at the common height, in a position such that the one or more raised structures confine the sheet to a desired position or alignment on the patterned layer.
    • 一种用于形成连续流动反应器的流体模块的方法包括:提供具有一个或多个通孔的至少一个平面玻璃或陶瓷片,形成至少一个具有至少一个图案化表面的图案化玻璃或陶瓷层,使得图案化表面 包括限定在具有在共同高度处的上表面的壁之间的通道,将所述至少一个玻璃或陶瓷片和所述至少一个图案化玻璃或陶瓷层堆叠在一起,所述片在共同高度处接触所述壁,使得所述通道 封闭在所述片材与所述图案化层之间,所述片材与所述图案化层对齐,使得所述一个或多个通孔各自与所述图案化层的壁之间的相应空间对齐以提供通向所述相应空间的流体通路,并且将所述片材 以及通过在加热片材和图案化的层的同时将片材和图案化的层压在一起而一起构图的层; 其中所述图案化的玻璃或陶瓷层还包括在所述公共高度上方延伸的一个或多个凸起结构,并且其中所述堆叠的步骤包括在所述共同高度处的所述壁的上表面上堆叠所述片材,使得所述一个 更多凸起的结构将片材限制在图案层上的期望位置或对齐。
    • 3. 发明专利
    • ENSAMBLE DEL MICRORREACTOR QUE INCORPORA ESTRUCTURA PRINCIPAL DE INTERCONEXION.
    • MX2010006935A
    • 2010-09-30
    • MX2010006935
    • 2008-12-19
    • CORNING INC
    • POISSY STEPHANETANGUY RONAN
    • B01J19/00B01L3/00
    • Se proporciona un ensamble de microrreactor (100) que comprende una estructura principal de interconexión fluídica (10) y una pluralidad de microestructuras fluídicas (20, 30, 40); las microestructuras fluídicas (20, 30, 40) están soportadas por respectivas porciones de la estructura principal de interconexión fluídica (10); el ensamble de microrreactor (100) comprende una pluralidad de sellos de interconexión no poliméricos (50) que están asociados con puertos de entrada y salida de interconexión (12, 14); el puerto de entrada de interconexión (12) de la estructura principal de interconexión fluídica (10) hace interfaz con un puerto de salida de microcanal (24) de una primera microestructura fluídica (20) en uno de los sellos de interconexión no poliméricos (50); el puerto de salida de interconexión (14) de la estructura principal de interconexión fluídica (10) hace interfaz con el puerto de entrada de microcanal (22) de una segunda microestructura fluídica (30) en otro de los sellos de interconexión no poliméricos (50); un microcanal de interconexión (15) está definido por completo por la estructura principal de interconexión fluídica (10) y está configurado de tal manera que se extiende desde el sello de interconexión no polimérico (50) en el puerto de salida de microcanal (24) de la primera microestructura fluídica (20) hasta el sello de interconexión no polimérico (50) en el puerto de entrada de microcanal (22) de la segunda microestructura fluídica (30) sin interrupción por parte de interfaces selladas adicionales.
    • 5. 发明专利
    • Microreactor assembly incorporating an interconnecting element
    • AU2008343858A1
    • 2009-07-09
    • AU2008343858
    • 2008-12-19
    • CORNING INC
    • TANGUY RONANPOISSY STEPHANE
    • B01J19/00
    • A microreactor assembly (100) comprising a fluidic interconnect backbone (10) and plurality of fluidic microstructures (20,30,40) is provided. The fluidic microstructures (20,30,40) are supported by respective portions of the fluidic interconnect backbone (10). The microreactor assembly (100) comprises a plurality of non-polymeric interconnect seals (50) associated with interconnect input and output ports (12,14). The interconnect input port (12) of the fluidic interconnect backbone (10) is interfaced with a microchannel output port (24) of a first fluidic microstructure (20) at one of the non-polymeric interconnect seals (50). The interconnect output port (14) of the fluidic interconnect backbone (10) is interfaced with the microchannel input port (22) of a second fluidic microstructure (30) at another of the non-polymeric interconnect seals (50). An interconnect microchannel (15) is defined entirely by the fluidic interconnect backbone (10) and is configured such that it extends from the non-polymeric interconnect seal (50) at the microchannel output port (24) of the first fluidic microstructure (20) to the non-polymeric interconnect seal (50) at the microchannel input port (22) of the second fluidic microstructure (30) without interruption by additional sealed interfaces.
    • 7. 发明专利
    • MICROREACTOR ASSEMBLY INCORPORATING AN INTERCONNECTING ELEMENT
    • CA2710188A1
    • 2009-07-09
    • CA2710188
    • 2008-12-19
    • CORNING INC
    • POISSY STEPHANETANGUY RONAN
    • B01J19/00
    • A microreactor assembly (100) comprising a fluidic interconnect backbone (10) and plurality of fluidic microstructures (20,30,40) is provided. The fluidic microstructures (20,30,40) are supported by respective portions of the fluidic interconnect backbone (10). The microreactor assembly (100) comprises a plurality of non-polymeric interconnect seals (50) associated with interconnect input and output ports (12,14). The interconnect input port (12) of the fluidic interconnect backbone (10) is interfaced with a microchannel output port (24) of a first fluidic microstructure (20) at one of the non-polymeric interconnect seals (50). The interconnect output port (14) of the fluidic interconnect backbone (10) is interfaced with the microchannel input port (22) of a second fluidic microstructure (30) at another of the non-polymeric interconnect seals (50). An interconnect microchannel (15) is defined entirely by the fluidic interconnect backbone (10) and is configured such that it extends from the non-polymeric interconnect seal (50) at the microchannel output port (24) of the first fluidic microstructure (20) to the non-polymeric interconnect seal (50) at the microchannel input port (22) of the second fluidic microstructure (30) without interruption by additional sealed interfaces.