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    • 3. 发明授权
    • X-ray tube control apparatus and x-ray tube control method
    • X射线管控制装置和X射线管控制方法
    • US07286642B2
    • 2007-10-23
    • US10510212
    • 2003-04-04
    • Masayoshi IshikawaTakane YokoiTsutomu NakamuraYutaka OchiaiKinji Takase
    • Masayoshi IshikawaTakane YokoiTsutomu NakamuraYutaka OchiaiKinji Takase
    • H05G1/54
    • H05G1/46
    • A maximum tube voltage value setting module 240a, a warming-up module 240b, a limit tube voltage control module 240c, a limit tube current control module 240d and a focus grid electrode control module 240e of an operation program 240 which respectively correspond to different maximum tube voltage values are stored in storage sections 32a-e of an X-ray tube control apparatus 3. When the maximum tube voltage value of an X-ray tube 1 is changed, an extraction section 34 extracts each module of the operation program 240 which corresponds to the maximum tube voltage value after being changed from the storage sections 32a-e. A communications section 36 sends the operation program 240 comprised of each extracted module to an X-ray tube controller 2 and overwrites it in a memory section 24.
    • 操作程序240的最大管电压值设定模块240a,预热模块240b,极限管电压控制模块240c,极限管电流控制模块240d和焦点栅极电极控制模块240e 分别对应于不同的最大管电压值存储在X射线管控制装置3的存储部分32e中。 当X射线管1的最大管电压值改变时,提取部分34从存储部分32a-e中提取与改变后的最大管电压值相对应的操作程序240的每个模块。 通信部分36将由每个提取的模块组成的操作程序240发送到X射线管控制器2,并将其重写在存储器部分24中。
    • 5. 发明申请
    • X-ray tube control apparatus and x-ray tube control method
    • X射线管控制装置和X射线管控制方法
    • US20060153335A1
    • 2006-07-13
    • US10510212
    • 2003-04-04
    • Masayoshi IshikawaTakane YokoiTsutomu NakamuraYutaka Ochiai
    • Masayoshi IshikawaTakane YokoiTsutomu NakamuraYutaka Ochiai
    • H05G1/10
    • H05G1/46
    • A maximum tube voltage value setting module 240a, a warming-up module 240b, a limit tube voltage control module 240c, a limit tube current control module 240d and a focus grid electrode control module 240e of an operation program 240 which respectively correspond to different maximum tube voltage values are stored in storage sections 32a-e of an X-ray tube control apparatus 3. When the maximum tube voltage value of an X-ray tube 1 is changed, an extraction section 34 extracts each module of the operation program 240 which corresponds to the maximum tube voltage value after being changed from the storage sections 32a-e. A communications section 36 sends the operation program 240 comprised of each extracted module to an X-ray tube controller 2 and overwrites it in a memory section 24.
    • 操作程序240的最大管电压值设定模块240a,预热模块240b,极限管电压控制模块240c,极限管电流控制模块240d和焦点栅极电极控制模块240e 分别对应于不同的最大管电压值存储在X射线管控制装置3的存储部分32a中。当X射线管1的最大管电压值改变时,提取部分34提取 操作程序240,其对应于从存储部分32ee改变之后的最大管电压值。 通信部分36将由每个提取的模块组成的操作程序240发送到X射线管控制器2,并将其重写在存储器部分24中。
    • 7. 发明授权
    • X-ray generator
    • X光发生器
    • US07133495B2
    • 2006-11-07
    • US10473178
    • 2002-03-28
    • Tsutomu NakamuraMasayoshi Ishikawa
    • Tsutomu NakamuraMasayoshi Ishikawa
    • H05G1/56
    • H05G1/56H05G1/10H05G1/26
    • An X-ray generator 1 includes an X-ray tube 11 having a cathode portion 16, a grid electrode 15 and a target 22, a voltage controller 27 and 32 for controlling voltages to be applied to the cathode portion 16 and the grid electrode 15, and switches 33 and 34 for operating ON and OFF of the X-ray generator 1 and of X-ray emission. The voltage controller 27 and 32, based on an ON-signal for the X-ray generator 1 and an OFF-signal for the X-ray emission, applies a positive standby voltage Vf1 to the cathode portion 16 and applies a negative cutoff voltage Vc1 to the grid electrode 15.
    • X射线发生器1包括具有阴极部16,栅极15和靶22的X射线管11,用于控制施加到阴极部16和栅极15的电压的电压控制器27和32 以及用于操作X射线发生器1的ON和OFF以及X射线发射的开关33和34。 电压控制器27和32基于用于X射线发生器1的ON信号和用于X射线发射的OFF信号,将正备用电压V f1施加到阴极部分 并且向栅电极15施加负截止电压V C1 c1。
    • 8. 发明授权
    • Rare earth metal-based permanent magnet
    • 稀土金属永磁体
    • US09287027B2
    • 2016-03-15
    • US12990341
    • 2008-05-14
    • Yukimitsu MiyaoTsutomu Nakamura
    • Yukimitsu MiyaoTsutomu Nakamura
    • H01F1/057B32B15/04C22C9/00C22C13/00H01F41/02
    • H01F1/0577C22C9/00C22C13/00H01F41/026Y10T428/32Y10T428/325
    • An objective of the present invention is to provide a rare earth metal-based permanent magnet with improved adhesion properties. A rare earth metal-based permanent magnet of the present invention as a means for achieving the objective has a laminated plating film, and is characterized in that the plating film comprises as an outermost surface layer a SnCu alloy plating film having a film thickness in a range from 0.1 μm to 2 μm, the composition of the SnCu alloy plating film is 35 mass % or more but less than 55 mass % of Sn and the rest being Cu, and a base plating film having two or more layers including at least a Ni plating film and a Cu plating film which are formed as the lower layer under the SnCu alloy plating film, and among the base plating film, the Ni plating film is located just below the SnCu alloy plating film. A joined structure fabricated using the rare earth metal-based permanent magnet of the present invention exhibits favorable initial adhesion strength when combined with a silicone-based adhesive, and is less deteriorated in adhesion strength even after a moisture resistance test.
    • 本发明的目的是提供一种具有改进的粘合性能的稀土金属基永磁体。 本发明的稀土金属类永磁体作为实现目的的手段具有叠层电镀膜,其特征在于,所述镀膜包含作为最外表面层的SnCu合金镀膜,膜厚度为 在0.1μm〜2μm的范围内,SnCu合金镀膜的成分为Sn的35质量%以上且小于55质量%,其余为Cu,并且具有两层以上的基底镀膜至少含有 Ni镀覆膜和Cu电镀膜,在SnCu合金镀膜之下形成为下层,并且在底镀膜中,Ni镀膜位于SnCu合金镀膜的正下方。 使用本发明的稀土类金属类永磁体制造的接合结构,与硅酮类粘合剂组合时,表现出良好的初期粘合强度,即使在耐湿试验之后,粘合强度也劣化。