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    • 5. 发明专利
    • Measuring instrument of metabolic amount
    • 测量代谢量仪器
    • JP2007105331A
    • 2007-04-26
    • JP2005300996
    • 2005-10-14
    • Hitachi Ltd株式会社日立製作所
    • ICHIGE YUKIKOMIMAKI HIROSHINAGATA KOJIUCHIDA TAKESHIKIGUCHI MASAFUMI
    • A61B5/22A61B5/01A61B5/028A61B5/117A61B5/145A61B5/1455G01N21/35G01N21/3577G01N21/359
    • PROBLEM TO BE SOLVED: To provide a method and an instrument capable of measuring a metabolic amount by a noninvasive technique based on physiological parameter measurement by a simple instrument constitution and a signal processing technique. SOLUTION: A simple metabolic amount is calculated by using metabolic amount calculation formula (6) considering the thermal balance of the body from parameters of the surface temperature of fingers, the temperature, environmental temperature, a blood flow, oxygen saturation, etc. (a metabolic amount [thermogenic amount] of the whole body)=α(T a -T c )+β(T FS -T R ) (6). In this formula, arterial blood temperature T a , the temperature T C , a heat capacity effective value α, the skin temperature T FS of the fingers, a room temperature T R and a convective heat conductivity effective value β are used. COPYRIGHT: (C)2007,JPO&INPIT
    • 要解决的问题:提供一种能够通过简单的仪器结构和信号处理技术基于生理参数测量的非侵入性技术测量代谢量的方法和仪器。

      解决方案:考虑到手指表面温度,温度,环境温度,血流量,氧饱和度等参数对身体的热平衡,使用代谢量计算公式(6)计算出简单的代谢量。 (全身的代谢量[生热量])=α(T a -T c )+β(T SB) (6)。 在该公式中,动脉血温T a ,温度T C ,热容有效值α,皮肤温度T FS 手指,室温T R 和对流热导率有效值β。 版权所有(C)2007,JPO&INPIT

    • 8. 发明专利
    • COLOR CATHODE RAY TUBE
    • JP2000188068A
    • 2000-07-04
    • JP36544698
    • 1998-12-22
    • HITACHI LTD
    • UCHIDA TAKESHISHIRAI MASAJIKATO SHINICHIMIYAGAWA KOICHI
    • H01J29/58H01J29/50
    • PROBLEM TO BE SOLVED: To improve resolution by optimally shaping a beam spot in a whole area of a screen. SOLUTION: An electron gun is provided with a third electrode 4 divided into a third electrode of a first kind 41 and a third electrode of a second kind 42. A constant voltage (Vf1) as a first focusing voltage is applied to the third electrode of the ?t kind 41. A voltage (Vf2+dVf) superimposing a dynamic voltage (dVf) varying in synchronization with a change of a deflection angle for scanning an electron beam on the screen on a constant voltage (Vf2) as a second focusing voltage is applied to the third electrode of the second kind 42. An electrostatic quadrupole lens for reshaping the electron beams is installed between the third electrode of the first kind 41 and the third electrode of the second kind 42, and the third electrode of the first kind and the electrostatic quadrupole lens for reshaping the electron beams are provided. In this electron gun, the electron beams are dispersed in a horizontal direction and are focused in a perpendicular direction to traveling directions of the electron beams with an increase of a potential difference between a voltage applied to a fourth electrode 5 and the second focusing voltage between the fourth electrode 5 and an open hole 42a on the third electrode of the first kind 41 side of the third electrode of the second kind 42 adjacent to the fourth electrode 5.
    • 10. 发明专利
    • COLOR IMAGE DISPLAY TUBE
    • JPH11250830A
    • 1999-09-17
    • JP5180098
    • 1998-03-04
    • HITACHI LTDHITACHI DEVICE ENG
    • SAKAMOTO HIROTSUGUSHIRAI MASAJIKATO SHINICHIUCHIDA TAKESHIWATANABE KENICHI
    • H01J29/76
    • PROBLEM TO BE SOLVED: To eliminate color irregularities in the entire screen and provide image displaying characteristics of high quality excellent in focusing. SOLUTION: There is provided a panel forming a display screen; a neck 41c which contains therein an in-line electron gun for emitting three electron beams consisting of a center electron beam and side electron beams and is fitted by static convergence correcting first magnet assemblies 21a-21c for statically correcting the orbits of the three beams so as to optimize convergence within the display screen; a funnel connecting the panel to the neck 41c which is fitted by a deflection yoke 31 for deflecting and scanning the three electron beams in horizontal and vertical directions and second magnet assemblies 31a, 31b provided on the side of the first magnet assemblies 21a-21c so as to control the position of the electron beam incident into the deflection yoke 31; and a third magnet assembly 21d having a magnetic pole for correcting focus deflection of the side electron beam, interposed between the first magnet assemblies 21a-21c and the second magnet assemblies 31a, 31b.