Patent classifications
C10J3/52
Gasification furnace, gasification power plant, and method of preventing blockage of slag hole in gasification furnance
An object is to prevent blockage of a slag hole with char and slag, enabling stable operation of a gasification furnace. In a configuration in which a heat exchanger (20) is provided above a coal gasification portion (10), the diameters (D1, D3) of the slag hole (16) and the throat portion (17) are set to three times or more the pitch (ST) of rows of heat exchange tubes (21). By doing so, blockage of the slag hole (16) or the throat portion (17) with char and a sintered material (50) falling from the heat exchanger (20) is prevented, enabling stable operation of a coal gasification furnace (101).
HIGH TEMPERATURE AND PRESSURE SOLIDS HANDLING SYSTEM
A fluidized bed gasification system which comprises a fluidized bed gasification reactor having a bottom ash discharge outlet below the reactor, wherein an L-valve is used to control the rate of bottom ash discharge. The L-valve uses an aeration port located on distal side of the L-valve vertical pipe at a location that is above the center line of the horizontal pipe. Also provided are methods of controlling the bottom ash discharge as well the fluidized reaction bed height of the system.
A GASIFIER
A gasifier may include a chamber wall defining a gasification chamber configured to allow gasification of feedstock material. The gasifier may also include an ash grate disposed in the gasification chamber. The gasifier may further include a rotary crusher disposed in the gasification chamber above the ash grate. The rotary crusher may include at least one crushing element. The rotary crusher may be configured to break apart, between the at least one crushing element and an opposing surface, the feedstock material responsive to rotation of the rotary crusher.
Producing low methane syngas from a two-stage gasifier
The present disclosure relates generally to a method for obtaining synthesis gas from a gasifier that has a low methane content. The synthesis gas is obtained as an extraction gas from the quench section of the gasifier, and can be utilized as feedstock for a variety of chemical production processes without the need for expensive pre-treatment to remove methane.
Gasification system and method
A method includes providing a gasifier with a fuel source comprising a heavy oil, a light oil, and recovered soot. The gasifier may gasify the fuel source to generate a syngas and soot. The method also includes recovering the soot in a first separation unit that may receive a portion of the heavy oil and separate the soot from an extraction oil used to recover the soot. The first separation unit generates soot bottoms that include the portion of the heavy oil and the recovered soot. The method also includes flowing a first separation co-fractionate to a second separation unit. The first separation co-fractionate includes the extraction oil and the light oil. The second separation unit may separate the extraction oil and the light oil, and direct the light oil towards the first separation unit. The method further includes mixing the soot bottoms from the first separation unit with the light oil from the second separation unit to generate the fuel source and directing the fuel source to the gasifier for gasification.
Gasification system and method
A method includes providing a gasifier with a fuel source comprising a heavy oil, a light oil, and recovered soot. The gasifier may gasify the fuel source to generate a syngas and soot. The method also includes recovering the soot in a first separation unit that may receive a portion of the heavy oil and separate the soot from an extraction oil used to recover the soot. The first separation unit generates soot bottoms that include the portion of the heavy oil and the recovered soot. The method also includes flowing a first separation co-fractionate to a second separation unit. The first separation co-fractionate includes the extraction oil and the light oil. The second separation unit may separate the extraction oil and the light oil, and direct the light oil towards the first separation unit. The method further includes mixing the soot bottoms from the first separation unit with the light oil from the second separation unit to generate the fuel source and directing the fuel source to the gasifier for gasification.
Water conserving syngas cleanup system
A gasification system includes a scrubber in communication with a particulate removal subsystem and a quench sub-system.
Water conserving syngas cleanup system
A gasification system includes a scrubber in communication with a particulate removal subsystem and a quench sub-system.
Double fluidized bed reactor system including staircase-type helical blade
A double fluidized bed reactor system including a staircase-type helical blade is proposed. The system includes a bubbling fluidized bed gasification furnace for receiving fuel (for example, combustible waste and biomass) and steam, forming a bubbling fluidized bed through a flow of flow medium therein, and gasifying the fuel, thereby generating a resultant gas, and a high-speed fluidized bed combustion furnace for receiving char of the resultant gas and the flow medium from the bubbling fluidized bed gasification furnace, additionally receiving air, combusting the char so as to heat the flow medium, and transferring the heated flow medium back to the bubbling fluidized bed gasification furnace.
FULLY MODULARLY ASSEMBLED BOTTOM-FEED PYROLYSIS REACTOR AND MULTI-PRODUCT CO-GENERATION SYSTEM
A fully modularized, bottom-feed type pyrolysis reactor includes a reactor vessel, a feeding unit, an integrated grate, and an ash/char discharge unit. The reactor vessel includes detachable upper and lower vessels. The integrated grate is rotatable and integrated to an air inlet unit, feeding unit, and discharge unit. A water-cooled cooling and stirring pipe is mounted on a top face of the integrated grate, and an ash/char discharge unit is located at the bottom of the integrated grate. Ash/char is discharged through discharge gate unit, addressing the problems of inconvenient transportation, installation of the pyrolysis reactor, and imprecise temperature control. Manufactured in a modular fashion, the electrical and monitoring systems are pre-assembled and comprehensively tested before transportation to the site, reducing installation time by 90% while ensuring installation quality and allowing for various orientation configurations to meet customers' on-site requirements without altering the overall design of the reactor.