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    • 76. 发明申请
    • Steam Generation System Having A Main And Auxiliary Steam Generator
    • 具有主蒸汽发生器和辅助蒸汽发生器的蒸汽发生系统
    • US20110036090A1
    • 2011-02-17
    • US12988548
    • 2009-04-20
    • Peter Simon Rop
    • Peter Simon Rop
    • F03G6/02F01K23/06F01K7/34
    • F01K13/02F01K3/242Y02E10/46
    • A steam generation system comprises a main steam generator and a back-up steam generator (20) which are both in fluid communication with a super heater (3) for superheating the generated steam. The superheater comprises a main heat source (6) for heating up a flow of heating gas. A back-up evaporator (2) is provided as a back-up steam generator for evaporating supplied water into steam. The back-up evaporator is connected in parallel to the main steam generator. An auxiliary heat source is provided for heating up the back-up evaporator. By controlling the auxiliary heat source (9), it is possible to supply more or less heat energy to the back-up evaporator to compensate for fluctuations in steam production of the main steam generator. The back-up evaporator is positioned away from the flow of heating gasses departing from the main heat source.
    • 蒸汽发生系统包括主蒸汽发生器和备用蒸汽发生器(20),其与超加热器(3)流体连通,用于使产生的蒸汽过热。 过热器包括用于加热加热气体流的主热源(6)。 提供备用蒸发器(2)作为用于将供水蒸发成蒸汽的备用蒸汽发生器。 备用蒸发器与主蒸汽发生器并联连接。 提供辅助热源以加热备用蒸发器。 通过控制辅助热源(9),可以向备用蒸发器供应或多或少的热能来补偿主蒸汽发生器的蒸汽产生的波动。 备用蒸发器位于远离主热源的加热气体流动的位置。
    • 78. 发明公开
    • Solar cencentration plant for the production of superheated steam
    • Sonnenkonzentratoranlage zur Erzeugung vonüberhitztemDampf
    • EP2000669A2
    • 2008-12-10
    • EP08380170.4
    • 2008-06-04
    • Abengoa Solar New Technologies, S.A.
    • Sanchez Gonzalez, MarcelinoFernandez Quero, ValerioOsuna Gonzalez-Aguilar, RafaelNavio Gilaberte, Raul
    • F03G6/06F03G6/02F01K3/00
    • F03G6/06F03G6/02F22B1/006F22G5/12F24S20/20Y02E10/41Y02E10/46
    • A solar concentration plant which uses water/steam as a heat-carrying fluid, in any thermodynamic cycle or system for the exploitation of process heat, which is comprised of an evaporation subsystem, where saturated steam is produced under the conditions of pressure of the system, and a superheater subsystem through which the steam reaches the required conditions of pressure and temperature at the turbine inlet, and in which an attemperation system (10) may be incorporated, these being physically separated and interconnected by means of a drum (5) in which the separation of water and steam takes place, and in which a strategic control of the pointing of the field of heliostats (1) towards either of the subsystems (evaporator or superheater) may be carried out, with individual or group pointing of the heliostats, in such a way that they jointly control both the pressure within the drum (5) and the outlet temperature of the superheated steam (11).
    • 一种太阳能集中设备,在任何用于开发过程热的热力循环或系统中,使用水/蒸汽作为载热流体,其由蒸发子系统组成,其中在系统的压力条件下产生饱和蒸汽 以及过热器子系统,蒸汽通过该过热器子系统达到涡轮机入口处的压力和温度的所需条件,并且其中可以结合温度调节系统(10),这些系统通过鼓(5)在物理上分离和互连 其中发生水和蒸汽的分离,并且可以对定向镜(1)的指向对于任一子系统(蒸发器或过热器)的指示进行策略性控制,可以对定日镜的个人或组指向进行 以这样的方式共同控制滚筒(5)内的压力和过热蒸汽(11)的出口温度。
    • 79. 发明申请
    • POWER GENERATION USING BUOYANCY-INDUCED VORTICES
    • 使用BUOYANCY诱导的VORTICES发电
    • WO2016081577A1
    • 2016-05-26
    • PCT/US2015/061302
    • 2015-11-18
    • GEORGIA TECH RESEARCH CORPORATION
    • GLEZER, AriSIMPSON, Mark
    • F03G6/02
    • F03G6/045Y02E10/465
    • Various examples are provided for power generation using buoyancy-induced vortices. In one example, among others, a vortex generation system includes an array of hybrid vanes comprising a first vane section in a surface momentum boundary layer and a second vane section above the first vane section. The first vane section is configured to impart a first angular momentum on the preheated air in the surface momentum boundary layer and the second vane section is configured to impart a second angular momentum on preheated air drawn through the second vane section. In another embodiment, a method for power extraction from a buoyancy-induced vortex includes imparting angular momentum to preheated boundary layer air entrained by a thermal plume to form a stationary columnar vortex. The angular momentum can be imparted to the preheated boundary layer air at a plurality of angles by an array of hybrid vanes distributed about the thermal plume.
    • 提供了使用浮力引起的涡流的发电的各种实例。 在一个示例中,其中包括涡流生成系统,其包括混合叶片的阵列,其包括表面动量边界层中的第一叶片部分和在第一叶片部分上方的第二叶片部分。 第一叶片部分构造成在表面动量边界层中的预热的空气上施加第一角动量,并且第二叶片部分构造成在通过第二叶片部分抽取的预热空气上施加第二角动量。 在另一个实施例中,用于从浮力引起的涡流的功率提取的方法包括将角动量施加到由热羽流夹带的预热的边界层空气中以形成固定的柱状涡流。 可以通过围绕热羽流分布的混合叶片的阵列,以多个角度将角动量赋予预热的边界层空气。