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    • 11. 发明申请
    • START-UP TORCH
    • 启动TORCH
    • US20170016619A1
    • 2017-01-19
    • US15278995
    • 2016-09-28
    • Alter NRG Corp.
    • James SantoianniAleksandr Gorodetsky
    • F23L15/00F23K3/06
    • F23D14/66F23D14/22F23D14/78F23K3/06F23L15/00Y02E20/348
    • An apparatus includes a tuyere including a tubular chamber having an internal wall defined by a mandrel; a plasma torch assembly including a torch positioned to inject hot gas into the tuyere and having a tubular structure that extends along an axis of the chamber; the plasma torch assembly further including a shroud head configured to inject shroud gas between the internal wall of the chamber and the tubular structure of the torch; a pipe positioned around at least a portion of the mandrel forming a plenum at least partially encircling the mandrel; and a plurality of nozzles in the chamber internal wall configured to inject a combustible material from the plenum to a space between the internal wall of the chamber and the tubular structure of the torch.
    • 一种装置包括一个风口,它包括一个具有由心轴限定的内壁的管状室; 等离子体焰炬组件,其包括定位成将热气体注入到风口中并具有沿腔室的轴线延伸的管状结构的炬; 所述等离子体焰炬组件还包括被配置为在所述腔室的内壁和所述炬管的管状结构之间注入护罩气体的护罩头部; 围绕所述心轴的至少一部分定位的管,其形成至少部分地环绕所述心轴的气室; 以及腔室内壁中的多个喷嘴,其构造成将来自气室的可燃材料喷射到室的内壁和焊炬的管状结构之间的空间。
    • 13. 发明授权
    • Efficient furnace operation with medium-purity oxygen
    • 高效炉运行与中等纯度氧气
    • US09541290B2
    • 2017-01-10
    • US14679149
    • 2015-04-06
    • Osemwengie Uyi Iyoha
    • Osemwengie Uyi Iyoha
    • F27D17/00F23L7/00F23L15/02C03B5/235
    • F23L7/007C03B5/2353F23L15/02F27D17/004F27D2017/007Y02E20/344Y02E20/348Y02P10/122Y02P40/535Y02P40/55
    • Disclosed is a method of operating a furnace containing a charge to heat the charge, comprising wherein gaseous oxidant comprising 60 vol. % to 85 vol. % oxygen is passed through a heated regenerator and into the furnace, so that the oxidant is heated to emerge from an oxidant port at a temperature of 500° C. to 1400° C., and gaseous fuel is fed into said furnace through two or more fuel ports; and the heated oxidant and fuel are combusted in the furnace to produce gaseous hot products of said combustion which heat the charge; and then the flow of oxidant through the regenerator into the furnace is discontinued, and said combustion products are passed into said oxidant port and through and out of said cooled regenerator to heat said regenerator, wherein the temperature of the combustion products that pass out of said regenerator is at least 500° C.; under dimensional and operational conditions which attain functional and economic advantages.
    • 公开了一种操作含有电荷以加热电荷的炉子的方法,其包括其中包含60体积% %至85体积 将氧气通过加热的再生器并进入炉中,使得氧化剂在500℃至1400℃的温度下从氧化剂端口加热出来,并且气体燃料通过两个或 更多的燃油口; 并且加热的氧化剂和燃料在炉中燃烧以产生加热电荷的所述燃烧的气态热产物; 然后将通过再生器的氧化剂流进入炉中,并且将所述燃烧产物通入所述氧化剂端口并通过和从所述冷却的再生器中排出,以加热所述再生器,其中通过所述燃烧产物的温度 再生器至少为500℃。 在尺寸和操作条件下,实现功能和经济优势。
    • 14. 发明授权
    • Fluid bed regenerative thermal oxidizer and a method for its use
    • 流化床再生热氧化剂及其使用方法
    • US09488372B2
    • 2016-11-08
    • US13840436
    • 2013-03-15
    • James L NesterRick Reimlinger
    • James L NesterRick Reimlinger
    • F23G7/06F23L15/04
    • F23G7/068F23L15/04Y02E20/348
    • The present device is a fluid bed regenerative thermal oxidizer configured to minimize dead spaces within it and eliminate the need for complex valve systems, which are typically required to move treated and untreated air across fixed beds. The present device can be a fluid bed regenerative thermal oxidizer comprising a vertical stack having a combustion chamber near its interior center and desorber shelves located within the vertical stack above the combustion chamber and adsorber shelves located within the vertical stack below the combustion shelves. Ceramic spheres can be used as heat sinks that flow from the desorber shelves, around the combustion chamber and onto the adsorber shelves and then back to the desorber shelves. In this way heat from the combustion can be captured by the heat exchange material on the desorber shelves and released to preheat untreated air on the adsorber shelves.
    • 本装置是流化床再生式热氧化器,其被配置为使其内的死空间最小化,并且不需要复杂的阀系统,这通常需要将经处理和未处理的空气移动到固定床上。 本装置可以是流化床再生热氧化器,其包括在其内部中心附近具有燃烧室的垂直堆叠和位于燃烧室上方的垂直堆叠内的解吸架,以及位于燃烧架下方的垂直堆叠内的吸附器架。 陶瓷球可用作散热器,其从解吸器架,燃烧室周围和吸附器架上流出,然后返回到解吸架。 以这种方式,来自燃烧的热量可以由解吸器搁架上的热交换材料捕获并释放以预热吸附器架上的未处理的空气。
    • 16. 发明申请
    • APPARATUS AND METHOD OF CONTROLLING COMBUSTION EXHAUST FOR REGENERATIVE HEATING FURNACE
    • 控制再生加热炉燃烧排放的装置及方法
    • US20160161119A1
    • 2016-06-09
    • US14906593
    • 2014-07-16
    • SAC CO., LTD.
    • Byoung Lok JANGSeung Hoon HANMin Hwan AN
    • F23N5/02F27D21/00F23L15/02
    • F23N5/022C21D1/52C21D9/00C21D11/00F23L15/02F23N5/00F23N2021/08F23N2025/04F23N2025/08F27B17/0075F27D21/0014F27D99/0033F27D2019/0018F27D2019/0028F27D2019/0031F27D2019/0087F27D2021/0007Y02E20/348
    • Provided is a method of controlling combustion of a regenerative heating furnace. The method controlled includes: a first step of sensing the temperature inside the furnace by a temperature sensor inside the heating furnace; a second step of receiving the measured temperature value inside the furnace, comparing the measured temperature value with a set reference temperature value, and outputting, to a sequence controller, an analog signal corresponding to a difference between the measured temperature value inside the furnace and the set reference temperature value; a third step of controlling combustion, and amounts of fuel, air, and discharged combustion gas of each of the burners by the sequence controller by a program set according to the outputted value in the second step; a fourth step of measuring the pressure inside the heating furnace due to combustion gas according to a combustion load; a fifth step of comparing the measured pressure value with the reference pressure, and outputting, the sequence controller, an analog signal corresponding to a difference between the measured pressure value and the reference pressure; and a sixth step of controlling, according to the outputted value of the fifth step, the discharge amount of combustion gas set in the third step by the sequence controller.
    • 提供一种控制再生加热炉的燃烧的方法。 所述方法控制包括:通过加热炉内的温度传感器检测炉内温度的第一步骤; 接收炉内测量温度值的第二步骤,将测量的温度值与设定的参考温度值进行比较,并将对应于炉内测量的温度值和与炉内温度之间的差值相对应的模拟信号输出到序列控制器 设定参考温度值; 通过顺序控制器通过根据第二步骤中的输出值设置的程序来控制燃烧的燃烧和燃烧器的燃料,空气和排出的燃烧气体的量的第三步骤; 第四步骤,根据燃烧负荷测量由燃烧气体引起的加热炉内的压力; 将所测量的压力值与参考压力进行比较的第五步骤,并且输出对应于所测量的压力值与参考压力之间的差的模拟信号的顺序控制器; 以及第六步骤,根据第五步骤的输出值,由序列控制器控制第三步骤中设定的燃烧气体的排出量。