Cooler for carbon-based feedstock processing system
10174257 ยท 2019-01-08
Assignee
Inventors
- Roy W. Hill (Fairfield, TX, US)
- Jerry Scott Long (Fairfield, TX, US)
- Tracy Thompson (Fairfield, TX, US)
Cpc classification
F28F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooler for cooling product pursuant to a distillation process, including a first substantially enclosed housing with an inlet proximate a first end for receiving product from a distillation unit, and an outlet proximate a second end for discharging cooled product, and a first auger substantially enclosed within the housing for driving the product from the inlet to the outlet, the auger having a helical blade circumscribing a perforated central hollow shaft for transmitting cooled gas into the housing to help cool product within the housing.
Claims
1. An apparatus for cooling product, the apparatus comprising: first and second cooling chambers connected to each other and configured to pass the product from the first cooling chamber to the second cooling chamber; first and second augers, positioned within the first and second cooling chambers, respectively, the first auger having a first helical blade for driving the product through the chamber, the first helical blade surrounding a first perforated hollow shaft configured to transmit cool gas as a first coolant into the first cooling chamber through the first shaft, the second auger having a second helical blade for driving the product through the second cooling chamber, the second helical blade surrounding a second perforated hollow shaft configured to transmit the first coolant into the second cooling chamber through the second shaft, the first perforated hollow shaft defining a first longitudinal axis proceeding along the length of the first perforated hollow shaft, and the second perforated hollow shaft defining a second longitudinal axis proceeding along the length of the second perforated hollow shaft; a first outer housing disposed around the first cooling chamber forming a first hollow space between the first cooling chamber and the first outer housing, through which a second coolant configured to be passed so that the first cooling chamber acts as a heat exchanger for cooling the product within the first cooling chamber; a second outer housing disposed around the second cooling chamber forming a second hollow space between the second cooling chamber and the second outer housing, through which the second coolant configured to be passed so that the second cooling chamber acts as a heat exchanger for cooling the product within the second cooling chamber; a first plurality of exhaust ports, sealingly engaged with the first cooling chamber configured to permit warmed first coolant to escape from the first cooling chamber, the first plurality of exhaust ports disposed and spaced apart at more than one location along the first longitudinal axis configured to vent the warmed first coolant away from the first auger, wherein a portion of the first plurality of exhaust ports is disposed within the first hollow space, the portion of the first plurality of exhaust ports disposed within the first hollow space; and a second plurality of exhaust ports, sealingly engaged with the second cooling chamber configured to permit warmed first coolant to escape from the second cooling chamber, the second plurality of exhaust ports disposed and spaced apart at more than one location along the second longitudinal axis configured to vent the warmed first coolant away from the second auger, wherein a portion of the second plurality of exhaust ports is disposed within the second hollow space, the portion of the second plurality of exhaust ports disposed within the second hollow space.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) In
(11) Although the embodiment of
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(13) In practice, product is fed, by gravity or otherwise, into the inlet 22 of the first cooling portion 10a, and passes through the first housing 12 into the first cooling chamber 24. In the first cooling chamber 24, the auger 34 turns, and the helical blades of the auger 34 transport the product from the inlet 22 to the outlet 26 at an opposite end of the first cooling portion 10a. At the outlet 26, the product exits the first cooling chamber 24, and drops through the outlet 26 into the inlet 28 of the second cooling portion 10b. The inlet 28 of the second cooling portion 10b guides the product through the second housing 16 and into the second cooling chamber 29. In the second cooling chamber 29, the auger 38 turns, and the helical blades of the auger 38 transport the product from the inlet 28 to the outlet 30 at an opposite end of the second cooling portion 10b. At the outlet 30, the product exits the second cooling chamber 29.
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(16) After the fluid exits the housing 12 through the outlet valve 42, it can be cooled and recirculated back into the inlet valve 40, thereby creating a closed loop system. In this way, a constant flow of cooling fluid can be moved through the housing 12, thereby continuously cooling the product in the cooling chamber 24. In alternate embodiments, the fluid exiting the outlet valve 42 can be disposed of, and new cooling fluid can be injected into the housing 12 via the inlet valve 40. Any appropriate cooling fluid can be used in the housing 12 to help cool the product, including water.
(17) The product can also be cooled by means of cool gas injected directly into the cooling chamber and mixed with the product. For example,
(18) Also shown in
(19) Simultaneous use of the different cooling techniques described herein provides advantages over known cooling methods because the dual cooling techniques act together to cool the product faster. It is to be understood, however, that either technique may be used individually without departing from the spirit and scope of the invention. In addition, any of the cooling techniques described herein could be combined with other known cooling techniques to decrease cooling times and increase the efficiency of the cooler assembly 10.
(20) In addition, the specific cooling techniques described herein are described in relation to a single cooling section 10a. Some embodiments of the invention, however, contemplate the use of both cooling techniques in more than one cooling section. For example, both techniques can be utilized in the second cooling section 10b. In embodiments where both the first and second cooling sections 10a and 10b are used together, use of both cooling techniques provides substantial benefits and introduces greater efficiency to the cooler assembly 10 as a whole.
(21) Additional embodiments of the invention include a process for cooling product using the above-described cooler assembly. According to the process, product is inserted into the cooling chamber 24 of the first cooling section 10a through the inlet 22 thereof. Inside the first cooling chamber 24, the product is driven by a first auger 34 that has a helical blade circumscribing a hollow shaft 46.
(22) As the product is driven through the first cooling chamber 24 by the first auger 34, cool gas can be injected into the cooling chamber 24 through perforations, or injection holes 44, in the shaft. The cool gas can then mix with the product to help cool the product. As cool gas is injected into the cooling chamber 24, hot gases can be vented from the cooling chamber through an exhaust port 14. In some embodiments, the gas exiting the exhaust port can be captured and re-cooled, after which it can be recirculated back into the chamber.
(23) Also as the product is driven through the first cooling chamber 24, cooling fluid can be circulated through the housing 12 surrounding the inner tube 32 that encloses the cooling chamber 24. This cooling fluid can act as a heat exchanger, transferring heat from the product to the cooling fluid. Use of this cooling method along with the direct injection of cool gas within the cooling chamber 24 increases the efficiency of the cooler assembly 10 and decreases the cooling time of the product. After the cooling fluid has been circulated through the housing 12, it can be cooled and recirculated back into the housing for further cooling.
(24) After the product is driven through the cooling chamber 24, it is discharged from the cooling chamber 24 through the outlet 26 thereof. From there, in some embodiments, the product is fed into a second cooling chamber 29 through a second inlet 28. Inside the second cooling chamber 29, the product is driven by a second auger 38 that has a helical blade circumscribing a hollow shaft.
(25) As the product is driven through the second cooling chamber 29 by the second auger 38, cool gas can be injected into the cooling chamber 29 through perforations, or injection holes, in the shaft. The cool gas can then mix with the product to help cool the product. As cool gas is injected into the cooling chamber 29, hot gases can be vented from the cooling chamber through a second exhaust port 20. In some embodiments, the gas exiting the second exhaust port 20 can be captured and re-cooled, after which it can be recirculated back into the chamber.
(26) Also as the product is driven through the second cooling chamber 29, cooling fluid can be circulated through the second housing 16 surrounding the second inner tube 36 that encloses the second cooling chamber 29. This cooling fluid can act as a heat exchanger, transferring heat from the product to the cooling fluid. Use of this cooling method along with the direct injection of cool gas within the second cooling chamber 29 increases the efficiency of the cooler assembly 10 and decreases the cooling time of the product. After the cooling fluid has been circulated through the second housing 16, it can be cooled and recirculated back into the housing for further cooling. After the product is driven through the second cooling chamber 29, it is discharged from the second cooling chamber 29 through the outlet 30 thereof.
(27) 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.
(28) 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.