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    • 5. 发明申请
    • Thermally Conductive Coil and Methods and Systems
    • 导热线圈和方法与系统
    • US20110109419A1
    • 2011-05-12
    • US12616907
    • 2009-11-12
    • Alexander CooperAlton H. PhillipsScott Coakley
    • Alexander CooperAlton H. PhillipsScott Coakley
    • H01F27/32
    • H01F5/06H01F27/22H01F41/074
    • Embodiments of the invention provide improved thermal conductivity within, among other things, electromagnetic coils, coil assemblies, electric motors, and lithography devices. In one embodiment, a thermally conductive coil includes at least two adjacent coil layers. The coil layers include windings of wires formed from a conductor and an insulator that electrically insulates the windings within each coil layer. In some cases the insulator of the wires is at least partially absent along an outer surface of one or both coil layers to increase the thermal conductivity between the coil layers. In some embodiments, an insulation layer is provided between the coil layers to electrically insulate the coil layers. In some cases the insulation layer has a thermal conductivity greater than the thermal conductivity of the wire insulator.
    • 本发明的实施例尤其提供了电磁线圈,线圈组件,电动马达和光刻装置之内的改进的导热性。 在一个实施例中,导热线圈包括至少两个相邻的线圈层。 线圈层包括由导体和绝缘体形成的导线的绕组,其将线圈电绝缘在每个线圈层内。 在一些情况下,线的绝缘体至少部分地沿着一个或两个线圈层的外表面不存在,以增加线圈层之间的热导率。 在一些实施例中,绝缘层设置在线圈层之间以使线圈层电绝缘。 在一些情况下,绝缘层的导热率大于导线绝缘体的导热率。
    • 6. 发明授权
    • Thermally conductive coil and methods and systems
    • 导热线圈及方法和系统
    • US08847721B2
    • 2014-09-30
    • US12616907
    • 2009-11-12
    • Alexander CooperAlton H. PhillipsScott Coakley
    • Alexander CooperAlton H. PhillipsScott Coakley
    • H01F27/30H01F5/00H01F27/28H01F27/22H01F5/06H01F41/06
    • H01F5/06H01F27/22H01F41/074
    • Embodiments of the invention provide improved thermal conductivity within, among other things, electromagnetic coils, coil assemblies, electric motors, and lithography devices. In one embodiment, a thermally conductive coil includes at least two adjacent coil layers. The coil layers include windings of wires formed from a conductor and an insulator that electrically insulates the windings within each coil layer. In some cases the insulator of the wires is at least partially absent along an outer surface of one or both coil layers to increase the thermal conductivity between the coil layers. In some embodiments, an insulation layer is provided between the coil layers to electrically insulate the coil layers. In some cases the insulation layer has a thermal conductivity greater than the thermal conductivity of the wire insulator.
    • 本发明的实施例尤其提供了电磁线圈,线圈组件,电动马达和光刻装置之内的改进的导热性。 在一个实施例中,导热线圈包括至少两个相邻的线圈层。 线圈层包括由导体和绝缘体形成的导线的绕组,其将线圈电绝缘在每个线圈层内。 在一些情况下,线的绝缘体至少部分地沿着一个或两个线圈层的外表面不存在,以增加线圈层之间的热导率。 在一些实施例中,绝缘层设置在线圈层之间以使线圈层电绝缘。 在一些情况下,绝缘层的导热率大于导线绝缘体的导热率。
    • 7. 发明授权
    • Method for sintering mechanisms
    • 烧结机理方法
    • US06352669B1
    • 2002-03-05
    • US09426085
    • 1999-10-22
    • Alexander CooperFriedrich Prinz
    • Alexander CooperFriedrich Prinz
    • C04B3332
    • C04B33/32
    • The invention utilizes green support structures during sintering to maintain the shape, reduce sagging and prevent separate part sections from coming into contact and fusing together during the sintering process. In the most preferred embodiment, monolithic green structures are form with integrated support green structures that are released from the parts after sintering. Preferably monolithic green structures are formed by the Mold Shape Deposition Manufacturing (Mold SDM) process. By the method described, complex sintered structures can be made having interlocking and independently movable interlocking parts.
    • 本发明在烧结过程中利用绿色支撑结构来保持形状,减少下垂并防止分离的部分在烧结过程中接触并融合在一起。 在最优选的实施方案中,整体式绿色结构形式具有在烧结后从部件释放的集成支撑绿色结构。 优选地,整体式绿色结构通过模具形状沉积制造(Mold SDM)方法形成。 通过所述方法,可以制成具有互锁和独立可移动的互锁部件的复合烧结结构。
    • 8. 发明授权
    • Shape deposition manufacturing of microscopic ceramic and metallic parts using silicon molds
    • 使用硅模具的微观陶瓷和金属部件的形状沉积制造
    • US06242163B1
    • 2001-06-05
    • US09387328
    • 1999-08-31
    • Jurgen StampflAlexander CooperRudolf LeitgebYih-Lin ChengFriedrich Prinz
    • Jurgen StampflAlexander CooperRudolf LeitgebYih-Lin ChengFriedrich Prinz
    • C23F100
    • C23F1/00B81C99/0085B81C2201/019B81C2201/034
    • Micro-Mold Shape Deposition Manufacturing (&mgr;-Mold SDM) is a method for fabricating complex, three-dimensional microstructures from layered silicon molds. Silicon wafers are etched using conventional silicon-processing techniques to produce wafers with surface patterns, some of which contain through-etched regions. The wafers are then stacked and bonded together to form a mold, which is filled with part material. In one embodiment, the part material is a ceramic or metallic gelcasting slurry that is poured into the mold and solidified to form a part precursor. The mold is removed, and the precursor is sintered to form the final part. The gelcasting material may also be a polymer or magnetic slurry, in which case sintering is not needed. The mold can also be filled by electroplating a metal into it; if necessary, each layer is filled with metal after being bonded to a previously filled layer. Patterned silicon wafer layers may also be combined with macroscopic wax layers formed by Mold SDM to create macroscopic parts with some microscopic parts or features.
    • 微模形状沉积制造(mu-Mold SDM)是从分层硅模制造复杂的三维微结构的方法。 使用常规的硅处理技术来蚀刻硅晶片以产生具有表面图案的晶片,其中一些具有贯通蚀刻区域。 然后将晶片堆叠并结合在一起以形成用部件材料填充的模具。 在一个实施例中,部件材料是陶瓷或金属凝胶浇注浆料,其被倒入模具中并固化以形成部件前体。 去除模具,并将前体烧结以形成最终部分。 凝胶浇铸材料也可以是聚合物或磁性浆料,在这种情况下不需要烧结。 模具也可以通过将金属电镀到其中来填充; 如果需要,每层在结合到预先填充的层之后都填充有金属。 图案化的硅晶片层还可以与由模具SDM形成的宏观蜡层组合以产生具有一些微观部件或特征的宏观部件。