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    • 2. 发明申请
    • Cardiac electrode assembly
    • 心电极组件
    • US20070043412A1
    • 2007-02-22
    • US11207682
    • 2005-08-18
    • Herve JanssensRobert WalshPaul PignatoAnn Thomas
    • Herve JanssensRobert WalshPaul PignatoAnn Thomas
    • A61N1/05
    • A61N1/0587
    • A cardiac electrode assembly includes an electrode lead with a plurality of electrical conductors in a common lead jacket. The electrical conductors include a primary conductor and at least a first secondary conductor. At a proximal end of the lead, the conductors terminate at a connector having a plurality of exposed electrical contacts. The contacts include a primary contact connected to the primary conductor and a secondary contact connected to the secondary conductor. A plurality of cardiac electrodes is mechanically connected to the distal end of the lead. The plurality includes a primary cardiac electrode and at least a secondary cardiac electrode (more preferably, at least two secondary cardiac electrodes) connected to one or more secondary conductors. In still preferred embodiments of the invention, multiple secondary conductors with separate leads in the common jacket are connected to the distal end of the common lead jacket.
    • 心电极组件包括在公共导线套中具有多个电导体的电极引线。 电导体包括初级导体和至少第一次级导体。 在引线的近端处,导体终止于具有多个暴露的电触头的连接器。 触点包括连接到主导体的初级触点和连接到次级导体的次级触点。 多个心电极机械地连接到引线的远端。 多个包括连接到一个或多个次级导体的主要心脏电极和至少二次心脏电极(更优选地,至少两个次级心脏电极)。 在本发明的优选实施例中,在公共护套中具有单独引线的多个次级导体连接到公共引线护套的远端。
    • 9. 发明申请
    • Implantable medical device having flat electrolytic capacitor with differing sized anode and cathode layers
    • US20050041366A1
    • 2005-02-24
    • US10918061
    • 2004-08-13
    • Mark BrevenAndrew JacobsAnthony RorvickPaul Pignato
    • Mark BrevenAndrew JacobsAnthony RorvickPaul Pignato
    • A61N1/375A61N1/39H01G9/008H01G9/06H01G9/08H01G9/00
    • H01G9/008A61N1/375A61N1/3956A61N1/3968H01G9/06H01G9/08
    • Flat electrolytic capacitors, particularly, for use in implantable medical devices (IMDs), and the methods of fabrication of same are disclosed. The capacitors are formed with an electrode stack assembly comprising a plurality of stacked capacitor layers each comprising an anode sub-assembly of at least one anode layer, a cathode layer and separator layers wherein the anode and cathode layers have differing dimensions that avoid electrical short circuits between peripheral edges of adjacent anode and cathode layers but maximize anode electrode surface area. The electrolytic capacitor is formed of a capacitor case defining an interior case chamber and case chamber periphery, an electrode stack assembly of a plurality of stacked capacitor layers having anode and cathode tabs disposed in the interior case chamber, an electrical connector assembly for providing electrical connection with the anode and cathode tabs through the case, a cover, and electrolyte filling the remaining space within the interior case chamber. The plurality of capacitor layers and further separator layers are stacked into the electrode stack assembly and disposed within the interior case chamber such that the adjacent anode and cathode layers are electrically isolated from one another. The anode layer peripheral edges of the anode sub-assemblies of the stacked capacitor layers extend closer to the case side wall than the cathode peripheral edges of the cathode layers of the stack of capacitor layers throughout a major portion of the case chamber periphery. The separator layer peripheral edges extend to the case periphery and space the anode layer peripheral edges therefrom. Any burrs, debris or distortions along or of any of the anode layer peripheral edges causing the anode layer edges to effectively extend in the electrode stack height direction causes the anode layer peripheral edges having such tendency to contact an adjacent anode layer. In this way, anode layer surface area is maximized, and short circuiting of the anode layers with the cathode layers is avoided. A case liner can also be disposed around the electrode stack assembly periphery.