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    • 101. 发明申请
    • Composition for sealing glass
    • 密封玻璃的组成
    • US20090318278A1
    • 2009-12-24
    • US12214543
    • 2008-06-19
    • Yoshitaka MayumiHideyuki Kuribayashi
    • Yoshitaka MayumiHideyuki Kuribayashi
    • C03C14/00C03C3/068C03C3/064C03C3/066
    • C03C3/068C03C8/02C03C8/24H01M8/0282H01M2008/1293
    • A powder composition for forming a highly expansible crystallized glass substantially free of alkali metals is disclosed, which composition can provide, through its firing at a temperature of not more than 900° C., a seal between metal and ceramic. The powder composition is a powder composition for the formation of a sealing crystallized glass which is substantially free of alkali metals and consists of the powder of a glass containing, calculated as oxides, SiO2: 10-30% by mass, B2O3: 20-30% by mass, CaO: 10-40% by mass, MgO: 15-40% by mass, BaO+SrO+ZnO: 0-10% by mass, La2O3: 0-5% by mass, Al2O3: 0-5% by mass, and RO2: 0-3% by mass (wherein R represents Zr, Ti, or Sn), wherein the crystallized glass that is formed by firing the powder composition at 900±50° C. has a coefficient of thermal expansion of 90-120×10−7/° C. at 50-550 ° C.
    • 公开了一种用于形成基本上不含碱金属的高度可膨胀的结晶玻璃的粉末组合物,该组合物可以通过在不高于900℃的温度下烧制金属和陶瓷之间的密封来提供。 粉末组合物是用于形成密封结晶玻璃的粉末组合物,其基本上不含碱金属,并且由以氧化物计的SiO 2:10-30质量%,B 2 O 3:20-30的玻璃粉末组成 质量%CaO:10〜40质量%,MgO:15〜40质量%,BaO + SrO + ZnO:0〜10质量%,La2O3:0-5质量%,Al2O3:0-5% ,RO2:0〜3质量%(其中,R表示Zr,Ti或Sn),其中通过在900±50℃下烧成粉末组合物而形成的结晶化玻璃的热膨胀系数为 90-120x10-7 /℃,50-550℃
    • 104. 发明授权
    • Wall thickness inspection device
    • 壁厚检测装置
    • US09341461B2
    • 2016-05-17
    • US14432196
    • 2013-09-24
    • NIHON YAMAMURA GLASS CO., LTD.
    • Naohiro TanakaGoro Tambo
    • G01R27/26G01B7/06G01N27/22
    • G01B7/08G01B7/087G01N27/221
    • A wall thickness inspection device includes an electrostatic capacity detector 4 for detecting the electrostatic capacity of a portion of an object subjected to wall thickness inspection, and an arithmetic and control unit for taking in the electrostatic capacity detected by the electrostatic capacity detector 4 and converting the electrostatic capacity to a wall thickness. The electrostatic capacity detector 4 includes a sensor unit 5 brought into contact with the surface of a portion of the object subjected to the wall thickness inspection, and an elastic body 6 for biasing the sensor unit 5 toward the portion of the object. The sensor unit 5 has a curved surface 50 with the radius of curvature R represented by 2 mm≦R≦10 mm. The curved surface 50 is formed by bonding an electrode sheet 7 made of synthetic resin having each electrode pattern formed thereon to a belt-like attachment substrate 51 so that at least the electrode pattern of a measurement electrode from among the electrode pattern of the measurement electrode and the electrode pattern of an earth electrode is positioned on the surface of a curved portion of the attachment substrate 51.
    • 壁厚检查装置包括用于检测经受壁厚检查的物体的一部分的静电电容的静电电容检测器4,以及用于摄取由静电电容检测器4检测的静电电容的算术和控制单元, 静电容量达到壁厚。 静电电容检测器4包括与经受壁厚检查的被检体的一部分的表面接触的传感器单元5,以及用于将传感器单元5朝向物体部分偏压的弹性体6。 传感器单元5具有弯曲表面50,其曲率半径R由2mm和nlE表示; R< ll; 10mm。 弯曲表面50通过将由其上形成有每个电极图案的合成树脂制成的电极片7接合到带状安装基底51而形成,使得至少测量电极的电极图案从测量电极的电极图案 并且接地电极的电极图案位于安装基板51的弯曲部分的表面上。
    • 105. 发明授权
    • Glass composition and sealing material
    • 玻璃组成和密封材料
    • US08741792B2
    • 2014-06-03
    • US13580519
    • 2011-02-24
    • Takafumi AkamatsuYoshitaka Mayumi
    • Takafumi AkamatsuYoshitaka Mayumi
    • C03C8/02C03C8/14
    • C03C8/24C03C8/02C03C8/14H01M8/0282H01M2008/1293Y10T428/2982
    • Provided is a glass composition that has a low reactivity with the constituent materials forming a solid oxide fuel cell while having a thermal expansion coefficient suitable for sealing a solid oxide fuel cell, and a glass composition and sealing material that are suitable for sealing a solid oxide fuel cell. The present invention, which relates to a sealing glass composition, is a sealing glass composition used for sealing a solid oxide fuel cell, characterized by having a composition ratio of, expressed in terms of oxide, 40 to 55% by mass of SiO2, 0 to 5.0% by mass of Al2O3, 0 to 8.0% by mass of B2O3, 20 to 30% by mass of MgO, and 10 to 24% by mass of CaO, wherein a total of the MgO and the CaO is 40 to 54% by mass.
    • 本发明提供一种具有与形成固体氧化物型燃料电池的构成材料的反应性低的玻璃组合物,同时具有适用于密封固体氧化物型燃料电池的热膨胀系数,以及适于密封固体氧化物的玻璃组合物和密封材料 燃料电池。 涉及密封玻璃组合物的本发明是用于密封固体氧化物燃料电池的密封玻璃组合物,其特征在于,以氧化物计,组成比为40〜55质量%的SiO 2,0 至5.0质量%的Al 2 O 3,0〜8.0质量%的B 2 O 3,20〜30质量%的MgO和10〜24质量%的CaO,其中,MgO和CaO的合计为40〜54质量% 的质量。
    • 107. 发明申请
    • Glass Composition and Sealing Material
    • 玻璃成分和密封材料
    • US20120316052A1
    • 2012-12-13
    • US13580519
    • 2011-02-24
    • Takafumi AkamatsuYoshitaka Mayumi
    • Takafumi AkamatsuYoshitaka Mayumi
    • C03C8/00C03C8/24B32B5/16
    • C03C8/24C03C8/02C03C8/14H01M8/0282H01M2008/1293Y10T428/2982
    • Provided is a glass composition that has a low reactivity with the constituent materials forming a solid oxide fuel cell while having a thermal expansion coefficient suitable for sealing a solid oxide fuel cell, and a glass composition and sealing material that are suitable for sealing a solid oxide fuel cell. The present invention, which relates to a sealing glass composition, is a sealing glass composition used for sealing a solid oxide fuel cell, characterized by having a composition ratio of, expressed in terms of oxide, 40 to 55% by mass of SiO2, 0 to 5.0% by mass of Al2O3, 0 to 8.0% by mass of B2O3, 20 to 30% by mass of MgO, and 10 to 24% by mass of CaO, wherein a total of the MgO and the CaO is 40 to 54% by mass.
    • 本发明提供一种具有与形成固体氧化物型燃料电池的构成材料的反应性低的玻璃组合物,同时具有适用于密封固体氧化物型燃料电池的热膨胀系数,以及适于密封固体氧化物的玻璃组合物和密封材料 燃料电池。 涉及密封玻璃组合物的本发明是用于密封固体氧化物燃料电池的密封玻璃组合物,其特征在于,以氧化物计,组成比为40〜55质量%的SiO 2,0 至5.0质量%的Al 2 O 3,0〜8.0质量%的B 2 O 3,20〜30质量%的MgO和10〜24质量%的CaO,其中,MgO和CaO的合计为40〜54质量% 的质量。
    • 109. 发明授权
    • Glass composition for sealing
    • 玻璃组合物用于密封
    • US08288298B2
    • 2012-10-16
    • US12674558
    • 2008-08-21
    • Yoshitaka MayumiHideyuki Kuribayasi
    • Yoshitaka MayumiHideyuki Kuribayasi
    • C03C8/24C03C3/066
    • H01M8/0282C03C8/02C03C8/24C04B37/005C04B37/025C04B2235/9607C04B2237/10C04B2237/32C04B2237/40H01M8/1231Y10T428/2982
    • Disclosed is a glass composition which is adapted to use in providing a hermetic seal between a metal and a ceramic, a metal and a metal, and a ceramic and a ceramic, to form crystallized glass having high strength and high thermal expansion which allow it to be used at high temperatures of 950° C. and over. The glass composition is substantially free of alkali metals, and contains, as calculated as oxide, 15-30 mass % of SiO2, 0-5 mass % of Al2O3, 20-35 mass % of B2O3, 10-25 mass % of CaO, 25-40 mass % of MgO, 3-8 mass % (3.0% excluded) of ZrO2, and 0-3 mass % of CeO2, wherein the crystallized glass which is formed by firing a glass powder made of the glass composition at a temperature of 850-1050° C. has a thermal expansion coefficient of 90-110×10−7/° C. at 50-550° C. and flexural strength of not less than 80 MPa.
    • 公开了适用于在金属和陶瓷,金属和金属以及陶瓷和陶瓷之间提供气密密封的玻璃组合物,以形成具有高强度和高热膨胀的结晶玻璃, 在950°C及以上的高温下使用。 玻璃组合物基本上不含碱金属,并且以氧化物计含有15-30质量%的SiO 2,0-5质量%的Al 2 O 3,20-35质量%的B 2 O 3,10-25质量%的CaO, 25-40质量%的MgO,3〜8质量%(3.0%除外)的ZrO 2和0〜3质量%的CeO 2,其中通过在玻璃组合物中煅烧由玻璃组合物制成的玻璃粉末, 的850-1050℃,在50-550℃下的热膨胀系数为90-110×10-7 /℃,弯曲强度不低于80MPa。
    • 110. 发明申请
    • GLASS PRODUCT FORMING MACHINE
    • 玻璃制品成型机
    • US20120186301A1
    • 2012-07-26
    • US13499600
    • 2010-09-24
    • Takahiro NishimuraMasaki KataokaShintaro OhnoTakahiro Kotoh
    • Takahiro NishimuraMasaki KataokaShintaro OhnoTakahiro Kotoh
    • C03B9/38
    • C03B9/3816C03B9/3875C03B9/3883C03B9/3891C03B9/41
    • In a glass product forming machine having molds 1A and 1B each composed of a pair of split molds 11 and 12, and a mold cooling device X for cooling the molds 1A and 1B to control the temperatures thereof, in order to prevent the occurrence of a defect such as deformation or cracks in a formed article due to a temperature difference between the split molds 11 and 12, the mold cooling device X is configured to include: cooling mechanisms 3R and 3L provided to the respective split molds, the cooling mechanisms each individually applying cooling air to each of the split molds 11 and 12 of the molds 1A and 1B; valve mechanisms 30R and 30L for individually opening and closing each of paths for introducing cooling air to the respective cooling mechanisms 3R and 3L; temperature detection means for detecting the temperature of at least one of the split molds; and a temperature control device 9 for generating and outputting control signals for controlling the opening and closing operations of the respective valve mechanisms 30R and 30L on the basis of the detected temperature value by the temperature detection means.
    • 在具有由一对分割模具11和12构成的模具1A和1B的玻璃制品成型机中,以及用于冷却模具1A和1B以控制其温度的模具冷却装置X,以防止发生 模具冷却装置X由于分型模具11和12之间的温度差造成的成型制品中的变形或裂纹等缺陷,模具冷却装置X构成为:分别设置在各个模具上的冷却机构3R,3L,各冷却机构 对模具1A,1B的分割模具11,12进行冷却风; 用于单独地打开和关闭用于将冷却空气引导到各个冷却机构3R和3L的各个通路的阀机构30R和30L; 温度检测装置,用于检测所述分模中的至少一个的温度; 以及温度控制装置9,用于根据温度检测装置检测到的温度值产生和输出用于控制各个阀机构30R和30L的打开和关闭操作的控制信号。