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    • 2. 发明授权
    • Method of an apparatus for X-radiation sorting of raw materials
    • 原材料X射线分选装置的方法
    • US5236092A
    • 1993-08-17
    • US908577
    • 1992-06-24
    • Mikhail I. KrotkovVladimir I. RevnivtsevIrik S. SataevNikolai F. VasilievVladimir S. Ponomarev
    • Mikhail I. KrotkovVladimir I. RevnivtsevIrik S. SataevNikolai F. VasilievVladimir S. Ponomarev
    • B07C5/02B07C5/346
    • B07C5/366B07C5/02B07C5/346Y10S209/92
    • In a method of X-radiation sorting of raw materials, after the stock lumps have been spread in monolayer on the transporting surface and stabilized, they are brought into the mode of unsupported movement along the stabilized paths without rotation. The exposure of the lumps to X-radiation, the measurement of the secondary radiation from the lumps, and the selection thereof are all carried out during this unsupported movement of the lumps. An apparatus for X-radiation sorting of raw materials comprises a steeply inclined vibrating feeder (4) conjugate to a preceding slightly inclined vibrating feeder (3) with a stabilizer (5) located thereabove for stabilizing the lumps of the stock. Over a section (14) of joining the conjugate vibrating feeders (3,4), there is disposed a second stabilizer (6) compensating for the lump torques produced at the point where the lumps pass onto the vibrating feeder (4). A coordinate system (7), X-radiation sources (8), X-radiation detectors (9), and actuators (10) for selection of standard lumps are all arranged after the vibrating feeder (4), looking downstream.
    • 在X射线分选原料的方法中,在储存块已经在输送表面上单层铺展并且稳定后,它们沿着稳定的路径进入不受支撑运动的模式而不旋转。 肿块暴露于X射线,来自肿块的二次辐射的测量及其选择都是在这种不受支撑的肿块运动期间进行的。 用于原材料的X辐射分选的装置包括与前面的稍微倾斜的振动给料器(3)共轭的陡倾斜的振动给料器(4),稳定器(5)位于其上方,用于稳定坯料的块状物。 在连接共轭振动给料器(3,4)的部分(14)之后,设置补偿在块状物通过振动给料器(4)的点处产生的块转矩的第二稳定器(6)。 用于选择标准块的坐标系(7),X辐射源(8),X辐射检测器(9)和致动器(10)都位于振动给料器(4)之后,向下游看。
    • 6. 发明申请
    • HEARING ASSISTANCE DEVICE
    • 听力辅助装置
    • WO2017024395A1
    • 2017-02-16
    • PCT/CA2016/050924
    • 2016-08-05
    • PONOMAREV, Vladimir
    • PONOMAREV, Vladimir
    • H04R25/00H02J50/10H02J7/02
    • H02J7/025H01F38/14H04R25/554H04R2225/31H04R2225/51
    • The present invention is related to hearing aids, and in particular to the hearing assistance devices having an earpiece worn in or at the ear with wireless charging capability. The hearing assistance device consists of a microphone, a processor, and a transducer. Power supply unit has a rechargeable battery being recharged wirelessly by inductive power transfer from an ambient source of variable magnetic field, specifically from a moving-coil loudspeaker, that can be represented by a receiver of a telephone, a receiver of a cellular phone, or a headphone. If a person uses a headphone, a telephone, or a cell phone for 20 to 30 minutes a day, it is enough to fully recharge the battery of the hearing assistance device.
    • 本发明涉及助听器,特别涉及具有无线充电能力的戴在耳中或耳上的耳机的助听器具。 助听器由麦克风,处理器和换能器组成。 电源单元具有通过来自可变磁场的环境源(特别是来自动圈式扬声器)的感应功率传输无线充电的可再充电电池,其可以由电话的接收器,蜂窝电话的接收器或者 一个耳机 如果一个人每天使用耳机,电话或手机20到30分钟,就可以对助听器的电池充满电。
    • 8. 发明专利
    • BLAST COMPRESSION WAVE ABSORBING DEVICE
    • CA2368716C
    • 2005-07-26
    • CA2368716
    • 2002-01-22
    • PONOMARYOVA IRYNAPONOMAREV VLADIMIR
    • PONOMARYOVA IRYNAPONOMAREV VLADIMIR
    • E04H9/10E04H9/00
    • The invention provides a blast compression wave absorbing device, comprising means for generation of a negative pressure wave and positioned close to the facility or structure being protected {in atmosphere or under water). The device comprises at leas t one container having an interior filled with a gas or air having a pressure belo w ambient pressure (under vacuum). When a blast compression wave reaches the device, i n accordance with various embodiments of the invention, the container collapse s, ruptures, or its interior is being connected to the environment through rupturable diaphragm or fast-actuating valve. The ambient air starts to fill the internals of the container generating a negative pressure wave, which interteres with blast compression wave and reduces the pressure and impulse affecting the facility or structure being protected. Th e device can be used to protect high-risk facilities (nuclear and military installations, petrochemical plants, embassies), submerged structures, or to protect personnel in tunnels and bunkers from shock waves of fuel-air explosives.