System for powder heat treatment and classification via fluidized bed
11059048 ยท 2021-07-13
Assignee
Inventors
- Ying She (East Hartford, CT, US)
- Aaron T. Nardi (East Granby, CT, US)
- Lawrence Binek (Glastonbury, CT, US)
Cpc classification
B03B4/00
PERFORMING OPERATIONS; TRANSPORTING
B07B4/00
PERFORMING OPERATIONS; TRANSPORTING
B22F1/142
PERFORMING OPERATIONS; TRANSPORTING
Y02P10/25
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
International classification
B03B4/00
PERFORMING OPERATIONS; TRANSPORTING
B22F1/00
PERFORMING OPERATIONS; TRANSPORTING
B07B4/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fluidized powder heat treatment classification assembly includes a gas source. A fluidized bed is connected to the gas source via a metered connection. The fluidized bed includes a first output connected to a powder classifier via at least a first valve. The powder classifier includes a catch container operable to decelerate a gas flow from the output and operable to catch particles entrained in the gas flow.
Claims
1. A fluidized powder heat treatment classification assembly comprising: a gas source; a fluidized bed connected to the gas source via a metered connection; the fluidized bed including a first output connected to a powder classifier via at least a first valve and connected to a fine powder collector via the first valve, wherein the first valve is one of a multi-output valve and a network of two-way valve; the fluidized bed having a primary chamber including a perforated floor angled relative to gravity, a gas inlet below said perforated floor, such that gas entering the fluidized bed flows upward through said perforated floor to said first output; and the powder classifier including a catch container operable to decelerate a gas flow from the output and operable to catch particles entrained in the gas flow.
2. The assembly of claim 1, further comprising at least a first container configured to retain particles caught in said catch container.
3. The assembly of claim 1, wherein the fine powder collector includes a first fine powder collection chamber, and a liquid bubbler chamber connected to an output of the fine powder collection chamber.
4. The assembly of claim 3, wherein the fine powder collection chamber is shaped such that a flow of gas into the collection chamber is decelerated.
5. The assembly of claim 1, wherein the fluidized bed is a heated degassing chamber.
6. The assembly of claim 1, wherein the fluidized bed tapers into said first output and said taper is configured to accelerate a gas flow out of the first output.
7. The assembly of claim 1, wherein a speed of said gas is controlled via a gas inlet valve, and the gas inlet valve is controlled by a controller.
8. The assembly of claim 1, further comprising a second output disposed on a side wall immediately adjacent a lowest end of the perforated floor such that powders not entrained in the gas flow collect at the second output.
9. The assembly of claim 8, further comprising a large powder container connected to the second output and configured to receive the powders not entrained in the gas flow.
10. The assembly of claim 1, wherein the first valve connects the first output to the powder classifier in a first state and connects the first output to the fine powder collector in a second state.
11. A method for heat treating and classifying powders comprising: degassing a powder in a fluidized bed; entraining a first group of particles of said powder below a first particle size in a first gas stream having a first flowrate; transmitting the first gas stream to a fine powder collector; and depositing the entrained first group of particles in a sealable container within the fine powder collector; entraining a second group of particles of a said powder below a second particle size, larger than the first particle size, in a second gas stream having a second flowrate, the second flowrate being faster than the first flowrate subsequent to entraining the first group of particles, transmitting the first gas stream and depositing the entrained first group of particles; transmitting the second gas stream to a classification chamber; and depositing the entrained second group of particles in a sealable container within the classification chamber.
12. The method of claim 11, wherein degassing a powder in a fluidized bed comprises disposing said powder in a degassing chamber interior to a heater, and heating the degassing chamber.
13. The method of claim 11, wherein entraining a first group of particles of said powder below a first particle size in a gas stream comprises passing said gas stream from a gas source through a perforated plate in said degassing chamber, through said powder, and to an outlet of said degassing chamber.
14. The method of claim 11, wherein depositing the second group of entrained particles in a sealable container comprises decelerating a flow of said second gas stream such that particles entrained in the second gas stream are deposited in a catch container.
15. The method of claim 11, wherein the first size is controlled via adjusting a flow speed of the gas stream.
16. A heat treatment and powder classification system comprising: a fluidized bed including a degassing chamber; a first powder classifier connected to an output of the fluidized bed via a sealed gas line and a three way valve; a fine powder collector connected to the output of the fluidized bed via a second sealed gas line and the three way valve; and wherein said fluidized bed, said powder classifier and said fine powder collector are sealed such that a powder within the heat treatment and powder classification system is prevented from being exposed to an ambient atmosphere.
17. A fluidized powder heat treatment classification assembly comprising: a gas source; a fluidized bed connected to the gas source via a metered connection; the fluidized bed including a first output connected to a powder classifier via at least a first valve and connected to a fine powder collector via the first valve, wherein the first valve is one of a multi-output valve and a network of two-way valve; the powder classifier including a catch container operable to decelerate a gas flow from the output and operable to catch particles entrained in the gas flow; and a cooling loop disposed between the first output and the powder classifier.
18. The assembly of claim 17, wherein the cooling loop comprises a tubing coil submerged in a cooling fluid.
19. The assembly of claim 18, wherein the cooling fluid includes at least one of water, liquid nitrogen, and a dry ice alcohol mixture.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION OF AN EMBODIMENT
(5)
(6) The fluidized bed 110 is contained within a heater 140 that provides necessary heat for a degassing process of the specific material of the powder 130. At a top end of the fluidized bed 110, relative to a direction of gravity, is an output 116. The output 116 is connected to the classification chamber 120 via a valve 160 and at least one output line 161. In some examples, a vibrator 170, such as an electric vibrator, is coupled to one or more of the output lines 161. The vibrator 170 vibrates the corresponding output line 161 and prevents particles entrained in the gas flow within the output line 161 from sticking. While within the fluidized bed 110, and while entrained within the gas flow, the powder 130 behaves as a fluid and the process is referred to as a fluidized powder classification process.
(7) The output line 161 connects to, and enters, the classification chamber 120. Within the classification chamber 120 is a powder catch component 122 which funnels powder entrained in the gas flow from the output line 161 into a sealable container 124. Also included in the classification chamber 120 is a vent 127 that is configured to vent gas from the classification chamber 120 without allowing an ambient atmosphere to enter the classification chamber 120. The fluidized bed 110, the output lines 161 and the classification chamber 120 are fully sealed and the powder 130 is not exposed to an ambient atmosphere at any point in the process.
(8) Each of the components within the powder classification system 100 is controlled via a controller 180. In some examples, the controller 180 can be a single computer or computer processor. In alternate examples, the controller 180 can be a primary controller communicating with distributed local computers and controlling the process indirectly. In yet further examples, alternative control configurations utilizing one or more digital controls to control the process flow can be utilized. The illustrated control connections 182 are exemplary in nature. One of skill in the art, having the benefit of this disclosure, will understand that the controller 180 can be coupled to, and control, any controllable element within the powder classification system 100.
(9) During operation of the powder classification system 100, the gas source 150 provides a stream of inert gas into the fluidized bed 110 via the inlet 114. The stream of inert gas enters a plenum 117 beneath the perforated plate 112. The stream of inert gas then proceeds upwards through the perforations in the perforated plate 112. As the stream of inert gas passes through the powder 130, particles are entrained in the stream of inert gas and carried upwards. The speed at which the stream of inert gas is flowing determines the size of the particles that are entrained, with a faster stream of inert gas entraining larger particles. One of skill in the art having the benefit of this disclosure will appreciate that the speed of the inert gas required to entrain particles of a certain desired size can be calculated according to known principles.
(10) As the stream of inert gas travels upwards, the stream enters a tapered region 118, where the fluidized bed 110 is tapered toward the output 116. The tapered region 118 accelerates the stream of inert gas as the stream approaches the output 116, thereby ensuring that the entrained particles stay entrained in the gas stream through the output line 161.
(11) The output line 161 connects to the classification chamber 120, where the stream of inert gas is output into the powder catch component 122. The powder catch component 122 is sized and shaped such that the stream of gas flowing from the output line 161 is decelerated, and powder particles entrained within the gas flow fall out of the gas flow and are caught by the powder catch component 122. The powder catch component 122 includes a funnel section 126 that funnels the formerly entrained particles into a sealable container 124.
(12) The sealable container 124 can be automatically sealed using any number of known sealing techniques while still within the classification chamber 120. Using the above process, all particles below a certain size can be removed from the powder 130, and contained within a corresponding sealable container 124.
(13) After an initial iteration of the above described process, the process can be repeated, with an increased speed of the inert gas stream. By repeating the process with an increased flow speed, a second sealable container 124 can be filled with powder particles within a specific range. By way of example, if the first iteration classifies all particles with a size of less than 20 microns, then a second iteration classifying all particles with a size of less than 50 microns will result in a powder having particles within the range of 20-50 microns being sealed in the sealable container 124.
(14) With continued reference to
(15) In order to classify the very fine particles, a fine particle collector 210 is connected to the system. The powder classification system 100 includes a fluidized bed 110 disposed within a heater 140, as described above with regards to
(16) During the first iteration of the process, the three way valve 220 is configured to pass the gas from the outlet 116 to the fine particle collector 210. During subsequent iterations, the three way valve 220 is switched, and sends the gas stream to the classification chamber 120, which collects and classifies the particles as described above with regards to
(17) For processes and materials requiring rapid cooling from elevated temperatures it is possible to also include a cooling loop 222 between the fluidized bed and the catch container. The cooling loop 222 is, in some examples, a tubing coil 223 submerged in a cooling liquid such as ice water, liquid nitrogen, or a dry ice alcohol mix, etc. This coil 223 is sufficiently long to enable cooling of the particles exiting the fluidized bed prior to entering the catch container. In alternative examples, the cooling loop 222 can be any other known system capable of cooling the fluid.
(18) The specific configuration and operation of one example fine particle collector 210 is schematically illustrated in
(19) When a gas stream is directed to the fine particle collector 210 via the three way valve 220, the gas stream initially enters the fine particle collector 212. The fine particle collector is tapered away from the incoming gas stream, thereby decelerating the gas stream and allowing particles 222 to collect at the bottom of the fine particle collector 212. One of skill in the art will appreciate that at least a portion of the particles may be small enough that minor gas currents will entrain the particles. Such particles are not deposited in the base of the fine particle collector 212. These particles are referred to as extremely fine.
(20) In order to remove the extremely fine particles from the gas stream prior to venting the gas from the fine particle collector 210, the second output line 163 connects an output of the fine particle collector with an input of liquid bubbler collector 214. As the gas stream passes through the liquid 215 within the liquid bubbler collector 214, all of the extremely fine particles are removed from the gas stream and become suspended in the liquid 215 within the liquid bubbler 214. A vent 218 vents gas from the liquid bubbler collector 214. In alternative examples, the gas output at the vent 218 can be collected and returned to the gas source 150 (illustrated in
(21) Once the fine particles and the extremely fine particles have been removed from the powder 130, as described above, the three way valve 220 connects the fluidized bed 110 to the powdered classification chamber 120, and the process described above with regards to
(22) With continued reference to
(23) As with the example of
(24) In some systems, a vibrator, or other form of agitator can be connected to the classification chamber. The vibrator agitates the classification chamber, and the agitation enhances the fluidization of the powder.
(25) It is further understood that any of the above described concepts can be used alone or in combination with any or all of the other above described concepts. Although an embodiment of this invention has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this invention. For that reason, the following claims should be studied to determine the true scope and content of this invention.