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    • 4. 发明授权
    • Methods of transmission mode X-ray diffraction analysis and apparatuses therefor
    • 透射模式X射线衍射分析方法及其设备
    • US07409041B2
    • 2008-08-05
    • US11416220
    • 2006-05-02
    • Olaf GrassmannMichael HennigRemo Anton HochstrasserUrs Schwitter
    • Olaf GrassmannMichael HennigRemo Anton HochstrasserUrs Schwitter
    • G01N23/20
    • G01N23/20
    • Methods for transmission mode X-ray diffraction analysis of a sample by means of apparatuses comprising an X-ray radiation source that provides X-ray radiation for irradiating the sample and a detector for detecting X-ray radiation transmitted through and diffracted by the sample. The methods include: (a) placing a sample to be analyzed on a substrate, (b) generating X-ray radiation by means of an X-ray radiation source, (c) positioning the substrate and the sample in an initial position, (d) rotating the substrate and the sample with respect to the initial position around a rotation axis over a predetermined rotation angle, (e) tilting the substrate and the sample with respect to the initial position around a tilting axis over a tilting angle, (f) detecting with a detector the X-ray radiation transmitted through and diffracted by the sample during a time interval, and (g) analyzing the X-ray radiation that is detected.
    • 透射模式X射线衍射分析方法的方法是通过包含X射线辐射源的X射线辐射源,用于照射样品的检测器和用于检测被样品透射并衍射的X射线辐射的检测器的样品。 所述方法包括:(a)将待分析的样品放置在基底上,(b)通过X射线辐射源产生X射线辐射,(c)将基底和样品定位在初始位置( (d)使基板和样品相对于围绕旋转轴线的初始位置旋转预定旋转角度,(e)相对于围绕倾斜轴线的倾斜角度的初始位置倾斜基板和样品,(f )用检测器检测在时间间隔期间由样品透射并衍射的X射线辐射,以及(g)分析检测到的X射线辐射。
    • 5. 发明授权
    • Heatable pipette
    • 可加热移液管
    • US07438861B2
    • 2008-10-21
    • US11804279
    • 2007-05-16
    • Remo Anton HochstrasserDieter VoegelinFrédéric Ran
    • Remo Anton HochstrasserDieter VoegelinFrédéric Ran
    • B01L3/02
    • B01L3/021B01L2200/147B01L2300/1827B01L2300/1888B01L2400/0487G01N35/10G01N2035/00425
    • A heatable pipette, with a needle has an inner channel defined by an inner wall, arranged to conduct electric current through the inner wall for resistively heating the inner wall. The needle has an outer wall, which is defined between the outer wall and the inner wall and connectable for providing pressure air into the outer channel. By conducting current directly through the inner wall, the inner wall itself operates as resistor. Particularly, if the inner wall is made of an appropriate material, for example of stainless steel, the ohmic resistance of the inner wall is not negligible even if the inner wall is very thin. Therefore, the inner wall can directly be used as resistor for resistance heating of the inner wall even if the needle is manufactured in small dimensions.
    • 具有针的可加热移液管具有由内壁限定的内部通道,其布置成将电流传导通过内壁以电阻加热内壁。 该针具有外壁,该外壁限定在外壁和内壁之间,并且可连接用于将压力空气提供到外部通道中。 通过直接通过内壁传导电流,内壁本身作为电阻工作。 特别地,如果内壁由适当的材料制成,例如不锈钢,即使内壁非常薄,内壁的欧姆电阻也不可忽略。 因此,即使在小尺寸制造针的情况下,内壁也可以直接用作内壁的电阻加热用电阻器。
    • 7. 发明授权
    • Stacker
    • 堆垛机
    • US07857575B2
    • 2010-12-28
    • US12079756
    • 2008-03-27
    • Christoph FattingerThomas ZumsteinRemo Anton HochstrasserDieter Voegelin
    • Christoph FattingerThomas ZumsteinRemo Anton HochstrasserDieter Voegelin
    • B65G59/06B65G59/00B65H3/30G07F11/16
    • G01N35/028G01N35/0099G01N2035/0425
    • A stacker (1) for storing a plurality of microplates each having a top surface side and a bottom surface side opposed to the top surface side, comprises a housing and a removal gate (13) for removing a microplate of the plurality of microplates out of the housing. The stacker (1) is arranged to accommodate the plurality of microplates inside the housing such that the top surface side of one microplate of the plurality of microplates abuts on the bottom surface side of an adjacent microplate of the plurality of microplates and such that the housing adjoins to the plurality of microplates. Using such a stacker 1, the plurality of microplates can be arranged and stored in a compact manner wherein the single microplates of the plurality of microplates can still selectively and efficiently be accessed. Further, due to the controlled access to the plurality of microplates being arranged inside the housing of the described stacker 1 via the removal gate 13, icing of the microplates can be minimized when the stacker is cooled for long term storage of samples arranged inside the microplates.
    • 一种用于存储多个微板的堆叠器(1),每个微板具有与顶表面侧相对的顶表面侧和底表面侧,包括壳体和移除栅极(13),用于将多个微孔板中的微孔板从 住房。 堆叠器(1)被布置成在壳体内容纳多个微孔板,使得多个微孔板中的一个微孔板的顶表面侧邻接在多个微孔板的相邻微孔板的底表面侧上, 邻接多个微孔板。 使用这样的堆叠器1,可以以紧凑的方式布置和存储多个微孔板,其中多个微孔板的单个微孔板仍然可以选择性地和有效地被访问。 此外,由于经由去除浇口13将所述多个微孔板的控制进入布置在所述堆叠器1的壳体内部,所以当堆积器被冷却以长期储存设置在微孔板内的样品时,微板的结冰可以最小化 。
    • 8. 发明申请
    • System and method for robotic storage of microplates
    • 微孔板的机器人储存系统和方法
    • US20100086440A1
    • 2010-04-08
    • US12587085
    • 2009-09-30
    • Christof FattingerRemo Anton HochstrasserDieter VoegelinThomas Zumstein
    • Christof FattingerRemo Anton HochstrasserDieter VoegelinThomas Zumstein
    • G01N35/10B01L3/00
    • G01N35/028G01N35/0099G01N2035/00435G01N2035/0425
    • In some embodiments of the present disclosure, a robotic storage system for storing microplates carrying a plurality of sample tubes is provided and may comprise a freezer room having a plurality of freezing units and a first robot being capable of removing a microplate from and moving a microplate into a freezing unit. The first robot may be further capable of transferring the microplate to a processing station, where the microplates are stored in the freezing units such that a plurality of microplates are arranged one above the other in a microplate recipient. The robotic storage system may also include at least one processing room and means for thermally separating the processing room from the freezer room. Each processing room may include a processing station having at least one tube transfer module as well as a second robot for moving the microplates between the microplate recipients and the at least one tube transfer module. The first robot may be designed such that it is only capable of removing a microplate recipient from and moving it into a said freezing unit as well as of transferring it from a freezing unit to a processing station or vice versa.
    • 在本公开的一些实施例中,提供了一种用于存储携带多个样品管的微板的机器人存储系统,并且可以包括具有多个冷冻单元的冷冻室,以及能够从微板移除微孔板并移动微孔板的第一机器人 进入冷冻单位。 第一机器人可以进一步能够将微板转移到处理站,其中微孔板被存储在冷冻单元中,使得多个微孔板在微孔板接收器中彼此上下排列。 机器人存储系统还可以包括至少一个处理室和用于将处理室与冷冻室热分离的装置。 每个处理室可以包括具有至少一个管传送模块的处理站以及用于在微板接收器和至少一个管传送模块之间移动微孔板的第二机器人。 第一机器人可以设计成使得其仅能够移除微孔板接收器并将其移动到所述冷冻单元中,以及将其从冷冻单元传送到处理站,反之亦然。
    • 9. 发明申请
    • Stacker
    • 堆垛机
    • US20080260511A1
    • 2008-10-23
    • US12079756
    • 2008-03-27
    • Christoph FattingerThomas ZumsteinRemo Anton HochstrasserDieter Voegelin
    • Christoph FattingerThomas ZumsteinRemo Anton HochstrasserDieter Voegelin
    • B65G57/00F25D15/00
    • G01N35/028G01N35/0099G01N2035/0425
    • A stacker (1) for storing a plurality of microplates each having a top surface side and a bottom surface side opposed to the top surface side, comprises a housing and a removal gate (13) for removing a microplate of the plurality of microplates out of the housing. The stacker (1) is arranged to accommodate the plurality of microplates inside the housing such that the top surface side of one microplate of the plurality of microplates abuts on the bottom surface side of an adjacent microplate of the plurality of microplates and such that the housing adjoins to the plurality of microplates. Using such a stacker 1, the plurality of microplates can be arranged and stored in a compact manner wherein the single microplates of the plurality of microplates can still selectively and efficiently be accessed. Further, due to the controlled access to the plurality of microplates being arranged inside the housing of the described stacker 1 via the removal gate 13, icing of the microplates can be minimized when the stacker is cooled for long term storage of samples arranged inside the microplates.
    • 一种用于存储多个微板的堆叠器(1),每个微板具有与顶表面侧相对的顶表面侧和底表面侧,包括壳体和移除栅极(13),用于将多个微孔板中的微孔板从 住房。 堆叠器(1)被布置成在壳体内容纳多个微孔板,使得多个微孔板中的一个微孔板的顶表面侧邻接在多个微孔板的相邻微孔板的底表面侧上, 邻接多个微孔板。 使用这样的堆叠器1,可以以紧凑的方式布置和存储多个微孔板,其中多个微孔板的单个微孔板仍然可以选择性地和有效地被访问。 此外,由于经由去除浇口13将所述多个微孔板的控制进入布置在所述堆叠器1的壳体内部,所以当堆积器被冷却以长期储存设置在微孔板内的样品时,微板的结冰可以最小化 。