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    • 2. 发明授权
    • System for stimulating autonomic targets from pulmonary artery
    • 从肺动脉刺激自主神经系统
    • US08527064B2
    • 2013-09-03
    • US12327601
    • 2008-12-03
    • Yunlong ZhangHaresh G. SachanandaniDan LiBin Mi
    • Yunlong ZhangHaresh G. SachanandaniDan LiBin Mi
    • A61N1/36
    • A61N1/0587A61B5/4035A61B5/6862A61B5/6876A61N1/057A61N1/36114A61N1/36117A61N1/3627A61N1/37211A61N1/37288
    • Various implantable medical device embodiments stimulate an autonomic neural target from within a pulmonary artery, and comprise at least one electrode, a power supply, a neural stimulator connected to the power supply, and an anchor structure. The neural stimulator is configured to generate a neural stimulation signal for delivery to the neural stimulation target through the at least one electrode. The anchor structure is configured to chronically and securely implant the neural stimulator, the power supply and the at least one electrode within the pulmonary artery. The anchor structure, the neural stimulator, the power supply and the at least one electrode are configured to be implanted through a pulmonary valve into the pulmonary artery. In various embodiments, the neural stimulator is configured to be operational to implement a neural stimulation protocol when chronically implanted within the pulmonary artery without a wired connection through the pulmonary valve.
    • 各种可植入医疗装置实施例从肺动脉内刺激自主神经靶标,并且包括至少一个电极,电源,连接到电源的神经刺激器和锚结构。 神经刺激器被配置为产生神经刺激信号,以通过至少一个电极传递到神经刺激靶。 锚结构被配置为长期且牢固地植入神经刺激器,电源和至少一个电极在肺动脉内。 锚结构,神经刺激器,电源和至少一个电极构造成通过肺动脉瓣植入肺动脉。 在各种实施例中,神经刺激器被配置为在长期植入肺动脉内而不通过肺动脉瓣的有线连接的情况下实施神经刺激方案。
    • 4. 发明授权
    • Intracardiac impedance and its applications
    • 心内阻抗及其应用
    • US08494618B2
    • 2013-07-23
    • US11208922
    • 2005-08-22
    • Yunlong ZhangJames O. GilkersonYongxing ZhangBoyce Moon
    • Yunlong ZhangJames O. GilkersonYongxing ZhangBoyce Moon
    • A61B5/04A61N1/00
    • A61N1/3962A61N1/3621A61N1/36521A61N1/3925
    • A system to measure intracardiac impedance includes implantable electrodes and a medical device. The electrodes sense electrical signals of a heart of a subject. The medical device includes a cardiac signal sensing circuit coupled to the implantable electrodes, an impedance measurement circuit coupled to the same or different implantable electrodes, and a controller circuit coupled to the cardiac signal sensing circuit and the impedance measurement circuit. The cardiac signal sensing circuit provides a sensed cardiac signal. The impedance measurement circuit senses intracardiac impedance between the electrodes to obtain an intracardiac impedance signal. The controller circuit determines cardiac cycles of the subject using the sensed cardiac signal, and detects tachyarrhythmia using cardiac-cycle to cardiac-cycle changes in a plurality of intracardiac impedance parameters obtained from the intracardiac impedance signal.
    • 测量心内阻抗的系统包括可植入电极和医疗装置。 电极感测受试者心脏的电信号。 医疗装置包括耦合到可植入电极的心脏信号感测电路,耦合到相同或不同可植入电极的阻抗测量电路,以及耦合到心脏信号感测电路和阻抗测量电路的控制器电路。 心脏信号感测电路提供感测的心脏信号。 阻抗测量电路感测电极之间的心内阻抗,以获得心内阻抗信号。 控制器电路使用感测到的心脏信号来确定受试者的心脏周期,并且使用从心脏内阻抗信号获得的多个心内阻抗参数中的心脏周期与心脏周期变化来检测快速性心律失常。
    • 9. 发明申请
    • COMPOUND ROTOR SYSTEM OF WIND POWERED ENGINE
    • 风力发动机复合转子系统
    • US20110163552A1
    • 2011-07-07
    • US13062391
    • 2009-09-03
    • Yunlong ZhangHongying Zhang
    • Yunlong ZhangHongying Zhang
    • F03D9/00F03D11/02
    • F03D7/0276F03D1/025F03D15/00F05B2260/403Y02E10/72
    • The present invention provides a controllable compound rotor system for the WECS, with a pilot rotor working under low wind speed conditions and a main rotor working under high speed conditions. By proper switching of the clutch, the WECS can not only achieve a greater starting torque under low wind speed conditions, as well as to capture and utilize the low wind-speed wind energy after being started, but also give full play to the advantage of the main rotor having the excellent wind capturing efficiency under high wind speed and high turning speed conditions. Thus the WECS can capture and utilize wind energy under both low and high wind speed conditions, which greatly expands the speed and zone range wherein the WECS can be applied, facilitating wide application of the WECS.
    • 本发明提供了一种用于WECS的可控复合转子系统,其中先导转子在低风速条件下工作,主转子在高速条件下工作。 通过适当切换离合器,WECS不但能够在低风速条件下实现更大的启动转矩,而且可以在起动后捕获和利用低风速的风能,同时充分发挥 主转子在高风速和高转速条件下具有优良的风力捕获效率。 因此,WECS可以在低和高风速条件下捕获和利用风能,大大扩展了可应用WECS的速度和区域范围,有助于WECS的广泛应用。