IN-FEED HOPPER AND METER FOR CARBON-BASED FEEDSTOCK PROCESSING SYSTEM
20220236008 · 2022-07-28
Assignee
Inventors
- Roy W. Hill (Fairfield, TX, US)
- Jerry Scott Long (Fairfield, TX, US)
- Tracy Thompson (Fairfield, TX, US)
Cpc classification
B01J8/0045
PERFORMING OPERATIONS; TRANSPORTING
F27D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01J2208/00778
PERFORMING OPERATIONS; TRANSPORTING
B65G65/4881
PERFORMING OPERATIONS; TRANSPORTING
International classification
F27D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01J8/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A meter for controlling the flow of feedstock from an in-feed hopper to a distillation unit, including a cylindrical roller having a first end, a second end, and an outer diameter, the roller defining a recess that extends helically substantially from the first end to the second end, a sleeve circumscribing a portion of the outer diameter of the cylindrical roller, the sleeve having an open first side that allows the passage of feedstock into the recess of the roller, and an open second side that allows the passage of feedstock out of the recess of the roller as the roller rotates relative to the sleeve, and a housing fixedly attached to the sleeve and capable of attachment to the in-feed hopper and the distillation unit such that feedstock must pass through the housing to get from the in-feed hopper to the distillation unit.
Claims
1. A method of providing feedstock to a distillation unit, the method comprising: a) filling a first hollow chamber with feedstock through an inlet in the first hollow chamber; b) sealing the inlet of the first hollow chamber; c) pressurizing the first hollow chamber until the pressure within the first hollow chamber is about equal to the pressure inside a second hollow chamber; d) opening a passage between the first hollow chamber and the second hollow chamber so that the feedstock can pass from the first hollow chamber to the second hollow chamber; and e) discharging the feedstock from the second hollow chamber into a feed meter having a roller with a recess, the roller designed to accept feedstock into the recess, rotate the feedstock away from the second hollow chamber, and discharge the feedstock to a distillation unit.
2. The method of claim 1, further comprising: between steps b) and d), purging oxygen from the first hollow chamber.
3. The method of claim 2, further comprising: replacing the oxygen in the first hollow chamber with nitrogen.
4. The method of claim 1, further comprising: shearing fragments of the feedstock with a wear plate located adjacent the roller in the meter to a size that fits within the recess of the roller.
5. The method of claim 1, further comprising discharging the feedstock from the meter into the distillation unit evenly to prevent the feedstock from massing inside the distillation unit.
6. The method of claim 1, wherein the recess in the roller is helical and extends across a horizontal length of the roller and curves across the length so that the cross-section of the helical recess at the first end of the roller is offset substantially 90° from the cross-section of the helical recess at the second end.
7. A method of providing feedstock to a distillation unit, the method comprising: providing feedstock to an infeed hopper; discharging the feedstock from the infeed hopper into a feed meter having a cylindrical roller with a helical recess extending across a horizontal length of the roller and curving across the length so that the cross-section of the helical recess at a first end of the roller is offset substantially 90° from the cross-section of the helical recess at a second end of the roller; rotating the roller within a roller housing of the feed meter, the roller housing having an open upper side and an open lower side; accepting feedstock into the recess via the open upper side of the roller housing; and discharging the feedstock from the recess through the open lower side of the roller housing into the distillation unit.
8. The method of claim 7, wherein the step of discharging the feedstock from the recess further comprises dropping all the feedstock held in the recess along the length of the roller evenly and contemporaneously into the distillation unit.
9. The method of claim 8, wherein the step of dropping all the feedstock evenly and contemporaneously into the distillation unit comprises the open lower side of the roller housing being a helical opening corresponding in shape and size to the recess of the roller and when the recess of the roller aligns with the helical opening, the feedstock passes through the helical opening all at once into the distillation unit.
10. The method of claim 7, wherein the helical recess extends through an arc of substantially 90° from the first end to the second end.
11. The method of claim 7, further comprising the step of: restricting the flow of gases from the distillation unit to the in-feed hopper.
12. The method of claim 11, wherein the step of restricting the flow of gases comprises maintaining a distance between an outer diameter of the roller and the roller housing to about ⅛ of an inch or less.
13. The method of claim 7, further comprising the step of: shearing fragments of the feedstock with a wear plate located adjacent the roller in the feed meter to a size that fits within the recess of the roller.
14. The method of claim 7, wherein the step of providing feedstock to an infeed hopper comprises: filling a first hollow chamber of the infeed hopper with feedstock through an inlet in the first hollow chamber
15. The method of claim 14, further comprising the steps of: sealing the inlet of the first hollow chamber; pressurizing the first hollow chamber until the pressure within the first hollow chamber is about equal to the pressure inside a second hollow chamber; and opening a passage between the first hollow chamber and the second hollow chamber so that the feedstock can pass from the first hollow chamber to the second hollow chamber.
16. The method of claim 15, further comprising: between the steps of sealing the inlet and opening a passage, purging oxygen from the first hollow chamber.
17. The method of claim 16, further comprising the step of: replacing the oxygen in the first hollow chamber with nitrogen.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0029] In
[0030] Referring to
[0031]
[0032] According to one possible process of the invention, feedstock can be introduced to a distillation chamber through the infeed hopper 10 and the meter 12. In such a process, feedstock, which may be coal, biomass, or some other carbon-based feedstock, is introduced into the upper hopper portion 16 thought the inlet 22 while the sealing gate 20 is closed. Thus, the upper hopper portion 16 can be filled without the feedstock passing into the lower hopper portion 18. Once a predetermined amount of feedstock has been inserted into the upper hopper portion 16, the inlet 22 of the upper hopper portion 16 can be closed and sealed.
[0033] Next, air may be purged from the upper hopper section 16. This may be accomplished, for example, by injecting nitrogen into the upper hopper section 16 and purging the air, such as through a vent. Purging the air from the upper hopper section 16 provides certain benefits to the system. For example, by purging the air, including oxygen in the air, from the upper hopper portion 16, such oxygen is prevented from progressing further into the system. This is desirable because if oxygen enters the distillation chamber downstream, oxidation could occur, leading to burning of the feedstock in the distillation chamber. This could ruin the feedstock, and also create a possible fire hazard.
[0034] Another step that may occur while the sealing gate 20 is closed and the feedstock is confined to the upper hopper portion 16, is to pressurize the upper hopper 16 so that the pressure is substantially equivalent to that in the lower hopper portion 18. Such pressurization of the lower hopper portion 18 occurs because the distillation chamber may be pressurized as part of the distillation process. Since the distillation chamber is open to the lower hopper chamber 18 via the meter 12, which is not airtight, any elevation in pressure inside the distillation chamber may lead to a corresponding pressure increase inside the lower hopper portion 18. If the sealing gate 20 were opened between the upper and lower hopper portions 16, 18 without first equalizing the pressures, such action could lead to a possible loss of pressure in the unit.
[0035] With the pressure in the upper hopper portion 16 adjusted to substantially match that of the lower hopper portion 18, the sealing gate 20 may be opened, at which point the feedstock in the upper hopper portion 16 can be gravity fed into the lower hopper portion 18 via the inlet 28 of the lower hopper portion 18. Thereafter, the sealing gate 20 may be closed, and the inlet to the upper hopper portion 22 may again be opened to receive more feedstock. Furthermore, from the lower hopper portion 18, the feedstock may pass through the meter 12, as described herein, and from there into the distillation chamber.
[0036] Referring now to
[0037]
[0038]
[0039] The open upper side 56 and open lower side 58 of the roller housing 42 may be of any appropriate configuration. For example, as shown in
[0040]
[0041] In the assembly, as shown in
[0042] In practice, the roller 44 acts to convey feedstock through the meter 12 according to the following method. First, the feedstock is gravity fed from the lower hopper portion 18 into the top of the meter 12. Due to the open nature of the top of the meter housing 40, and the open upper side 56 of the roller housing 42, the feedstock is able to come into direct contact with the surface of the roller 44. Because of the tight tolerances, however, between the roller 44 and the roller housing 42, the feedstock is prevented from fitting between the roller 44 and the roller housing 42 except via the helical recess 48.
[0043] As the roller 44 turns, the helical recess 48 becomes exposed to the feedstock via the open top side 56 of the roller housing 42. Thus, the feedstock enters the helical recess 48. Thereafter, as the roller 44 continues to turn, the helical recess 48, now full of feedstock, rotates away from the open upper side 56 of the roller housing 42, and the feedstock within the helical recess 48 is conveyed toward the open lower side 58 of the roller housing. Once the helical recess 48 aligns with the open lower side 58 of the roller housing 42, the feedstock falls (via gravity) through the open lower side 58 and through a lower end of the meter housing 40 into the distillation chamber. Because the amount of feedstock that can be carried by the helical recess 48 is known, the amount of feedstock transmitted from the lower hopper portion 18 to the distillation unit can be calculated and controlled using the meter 12. In addition, use of the helical open lower side 58 of the roller housing 42, can help to ensure that all of the feedstock held in the helical recess 48, along the entire length of the roller 44, is dropped evenly and contemporaneously into the distillation chamber.
[0044]
[0045] When positioned in the meter 12, as shown in
[0046] In practice, as the roller turns, and particles of feedstock that are too large to fit into the helical recess 48 are pulled by the roller 44 into the sharp edge 72 of the wear plate 46. The sharp edge 72 of the wear plate 46 shears those particles to a smaller size. Furthermore, the helical shape of the recess 48, combined with the substantially straight edge 72 of the shear plate 46, combine so that when the recess 48 rotates toward the sharp edge 72, the confluence of the two features creates a wedge. As particles of feedstock become trapped in the wedge, they cannot easily be loosed, and are sheared by the sharp edge 72, whereas in the absence of such a wedge, the particles may bind up the meter.
[0047] Thus, the helical recess 48 is beneficial because it provides a means to help large particles of feedstock to be sheared, thereby avoiding jamming of the meter. Furthermore, the smaller feedstock particle size that results helps to avoid jamming of equipment down line from the meter as well, such as coolers used to cool the feedstock after it exits the distillation chamber.
[0048] The invention has been sufficiently described so that a person with average knowledge in the matter may reproduce and obtain the results mentioned in the invention herein Nonetheless, any skilled person in the field of technique, subject of the invention herein, may carry out modifications not described in the request herein, to apply these modifications to a determined structure, or in the manufacturing process of the same, requires the claimed matter in the following claims; such structures shall be covered within the scope of the invention.
[0049] It should be noted and understood that there can be improvements and modifications made of the present invention described in detail above without departing from the spirit or scope of the invention as set forth in the accompanying claims.