Method for controlling circulation rate of solids in an interconnected fluidized bed
09895647 ยท 2018-02-20
Assignee
Inventors
- Yau-Pin Chyou (Taoyuan County, TW)
- Po-Chuang Chen (Taoyuan County, TW)
- Hung-Te Hsu (Taoyuan County, TW)
- Keng-Tung Wu (Taichung, TW)
Cpc classification
B01J8/36
PERFORMING OPERATIONS; TRANSPORTING
Y02C20/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D53/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D53/12
PERFORMING OPERATIONS; TRANSPORTING
B01D53/34
PERFORMING OPERATIONS; TRANSPORTING
B01J8/36
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention provides a method for dynamically controlling the circulation rate of solids in an interconnected fluidized bed. When an interconnected fluidized bed is operating, it is available to control the circulation rate of solids by adopting the steps of adjusting the height difference between the orifice on the weir and the bottom surface of the bed region, adjusting the cross-sectional area of the above orifice, or adjusting the height of the above weir. By using multiple ways, the circulation rate of solids can be improved substantially. In addition, the curve of circulation rate of solids can be converged to the maximum circulation rate of solids effectively.
Claims
1. A method for dynamically controlling the circulation rate of solids in an interconnected fluidized bed, said interconnected fluidized bed comprising a plurality of bed regions respectively separated by a weir, a portion of said weirs having at least an orifice for passing a plurality of fluid-like particles, and for dynamically controlling the circulation rate of said fluid-like particles in said interconnected fluidized bed, said method comprising at least one step selected from the group consisting of: adjusting the height difference between said orifice and a bottom surface of said bed region; adjusting the cross-sectional area of said orifice; and adjusting the height of said weir.
2. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 1, wherein a fluid inlet module is disposed at the lower part of said bed regions for transporting fluid upwards.
3. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 2, and further comprising a step of adjusting the fluid entering rate of said fluid inlet module for dynamically controlling the circulation rate of solids of said fluid-like particles in said interconnected fluidized bed.
4. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 1, wherein said interconnected fluidized bed is connected with at least a solid feed module.
5. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 4, and further comprising a step of adjusting the solid quantity of said fluid-like particles in said interconnected fluidized bed using said feed module for dynamically controlling the circulation rate of solids of said fluid-like particles in said interconnected fluidized bed.
6. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 4, and further comprising a step of adjusting the solid type of said fluid-like particles in said interconnected fluidized bed using said feed module for dynamically controlling the circulation rate of said fluid-like particles in said interconnected fluidized bed.
7. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 1, wherein said weir connects with a lifting module in said step of adjusting the height difference between said orifice and said bottom surface of said bed region.
8. The method for dynamically controlling the circulation rate of solids in the interconnected fluidized bed of claim 1, wherein a gate is disposed and adjusted at said orifice in said step of adjusting the cross-sectional area of said orifice.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(10) In order to make the structure and characteristics as well as the effectiveness of the present invention be further understood and recognized, the detailed description of the present invention is provided as follows along with embodiments and accompanying figures.
(11) The method for dynamically controlling an interconnected fluidized bed according to the present invention is operated in an interconnected fluidized bed. Please refer to
(12) The interconnected fluidized bed integrates the circulating fluidized beds and the solid transport pipes, that is, combining multiple bed regions of the fluidized bed into adjacent ones and separated by weirs only. Then, by transporting solids with different fluidized speeds among the bed regions, and thus accomplish various required reaction processes. Nonetheless, in a general interconnected fluidized bed, the control over the circulation rate of solids is quite limited. In particular, there is still no efficient method for adjusting and controlling the flowing process of the fluid-like particles in the bed regions. Accordingly, the present invention provides a method for dynamically controlling, based on the fact that the circulation rate of solids in an interconnected fluidized bed increases or decreases according to multiple variables. The formula is shown in Equation 1.
CSR(g/s)=C.sub.DA.sub.0[2.sub.s(1.sub.mf)P].sup.0.5(Equation 1)
where C.sub.D is the discharge coefficient; A.sub.0 is the cross-sectional area of the orifice; .sub.s is the density of solids; .sub.mf is the bed voidage at the minimum fluidization velocity; and P is the pressure drop through the orifice. Accordingly, the operational conditions of the interconnected fluidized bed is altered using various methods, according to the present invention for changing and adjusting the circulation rate of solids as described above to a required optimum rate.
(13) The method for dynamically control according to the present invention is based on the concept of multiple unit control. In order to adjust multiple parameters, the following steps can be executed selectively: (1) adjusting the height difference between the orifice and the bottom surface of the bed region; (2) adjusting the cross-sectional area of the orifice; (3) adjusting the height of the weir; (4) adjusting the fluid entering rate of a fluid inlet module; (5) adjusting the solid quantity of the fluid-like particles in the interconnected fluidized bed; and (6) adjusting the solid type of the fluid-like particles in the interconnected fluidized bed. The present invention is not limited to adjusting a single parameter only. Instead, depending on the span of control, one or more parameters can be adjusted. Thereby, multiple steps can be executed for enhancing significantly the circulation rate of solids by making use the sum of the influences.
(14) In the step (1) adjusting the height difference between the orifice and the bottom surface of the bed region, the weir can be connected with a lifting module that is not limited to any type. The lifting module can be disposed above the weir for towing the weir or under the weir for pushing it. Alternatively, the adjustment can be performed by an electromagnetic method for attracting or releasing the magnetic material on the weir. Please refer to
(15) In a test example, the diameters of the orifices are 1.5 and 3.0 cm, respectively; the net weight of the fluid-like particles is 17.0 kilograms, and the gas velocity in the bed region (U/U.sub.mf) is 4.5. The circulation rates of solids are compared in
(16) In the step (2) adjusting the cross-sectional area of the orifice, a gate can be disposed at the orifice. By gradually opening or closing the gate, the cross-sectional area of the orifice is changed linearly.
(17) In a test example, the height differences are 4, 6, and 8.0 cm, respectively; the net weight of the fluid-like particles is 17.0 kilograms; the gas velocity in the bed region (U/U.sub.mf) is 4.5. The circulation rates of solids are compared in
(18) In the step (3) adjusting the height of the weir, the lifting module described above can be used for adjusting the height for the weirs without orifice. The principle is that the weirs without orifice are provided so that the fluid-like particles can surmount their top and reach the adjacent bed regions. Thereby, as the height of the weirs is lowered, more fluid-like particles can naturally move among the bed regions.
(19) In the step (4) adjusting the fluid entering rate of a fluid inlet module, the basic mechanism of the fluidized bed is applied. In other words, the fluid formed by gas or liquid enters the lower part of the bed regions having solids. If the gas velocity is lower than a certain threshold, the solids will not be fluidized and remain in the state of a fixed bed. If the gas velocity is increased to a value greater than the minimum fluidized velocity of the solid particles, the solid particles will be moved, become suspended, and thus flow with the fluid. According to the present invention, the fluid inlet module disposed at the lower part of the bed regions is used for increasing the gas velocity and enabling more fluids and solids move among the bed regions. According to
(20) In the steps (5) adjusting the solid quantity of the fluid-like particles in the interconnected fluidized bed and (6) adjusting the solid type of the fluid-like particles in the interconnected fluidized bed, the interconnected fluidized bed according to the present invention is connected with a feed module. This feed module can supply extra solids for circulation or extract a portion of solids from the interconnected fluidized bed. Then the number or composition of solids in the interconnected fluidized bed is changed, leading to change in the total weight or stack height of solids.
(21) Please refer to
(22) To sum up, the various steps disclosed in the present invention have their efficacy in improving rate. Nonetheless, considering the bottleneck for improving the circulation rate of solids for individual step, in order to achieving the maximum circulation rate of solids, a plurality of steps should be adopted for adjusting the parameters and achieving the overall efficacy. On the other hand, different solids require different reaction times in the bed regions. If the circulation rate of solids is too high, the residence time of solids in any bed regions is too short. Then it is possible that the solids are forced to exit before completion of reactions, leaving the purpose of chemical looping unfinished. Thereby, although the circulation rate of solids according to the present invention can be increased substantially, another significant meaning of the present invention is that the circulation rate of solids can be controlled flexibly and dynamically within the maximum circulation rate of solids. Hence, after the interconnected fluidized bed is started, the curve of circulation rate of solids can be converged at the fastest speed to the maximum circulation rate of solids and the load can be altered according to the requirement. Thereby, the present invention provides high practical values.
(23) Accordingly, the present invention conforms to the legal requirements owing to its novelty, nonobviousness, and utility. However, the foregoing description is only embodiments of the present invention, not used to limit the scope and range of the present invention. Those equivalent changes or modifications made according to the shape, structure, feature, or spirit described in the claims of the present invention are included in the appended claims of the present invention.