IP Library Granted Patent US 9,738,845
Granted Patent B2
US 9,738,845 · App. 14/857,450 · Granted Aug 22, 2017

Combustible pellet drying system

Inventor: David S. Gibbel (Falls City, OR)
Assignee: OMNIS THERMAL TECHNOLOGIES, LLC
C10L9/08C10L5/04F26B3/14F26B9/06F26B17/128C10L2290/06C10L2290/08C10L2290/56C10L2290/60
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Quick Facts
Patent No.
US 9,738,845
App. No.
14/857,450
Granted
Aug 22, 2017
Kind
B2
Abstract

A combustible pellet drying system includes a valveless pulse combustor and a drying column. The drying column includes a first drying region and optionally a second drying region. The first drying region receives heated drying gas from the pulse combustor to dry a quantity of moist pellets flowing downwardly through the drying column. Moisture-laden exhaust gas from the first drying region is processed by a condenser to remove water and recover thermal energy therefrom, and to produce a cooled dried exhaust gas which may be reheated by passing through a jacket around the pulse combustor. The reheated dry gas is introduced into the second drying region to further dry the pellets. The second drying region is preferably a downwardly expanding cone configuration. The drying column includes a plurality of temperature sensors. Adjacent temperature sensors may be used to determine a level of pellets within the drying column. The combustible pellets are preferably coal pellets.

Claims (38)

1. A pellet drying system comprising:

a valveless pulse combustor to provide a source of heated drying gas, wherein the heated drying gas has a composition comprising less than about 5% by volume oxygen; and

a drying column comprising:

a first drying region containing a gas inlet and a gas outlet, wherein the gas inlet receives heated drying gas and the gas outlet exits moisture-laden exhaust gas;

an airlock opening at a top portion of the first drying region through which moist pellets are introduced into the first drying region to form a bed of moist pellets within the first drying region; and

a gate valve exit at a bottom portion of the first drying region through which dried or partially dried pellets exit the first drying region.

2. The pellet drying system according to claim 1 , further comprising a condenser that receives the moisture-laden exhaust gas and condenses water from the exhaust gas to produce a cooled dried exhaust gas, and to recover the latent and sensible heat energy therefrom.

3. The pellet drying system according to claim 1 , wherein the moisture-laden exhaust gas is at or near moisture saturation.

4. The pellet drying system according to claim 2 , wherein the valveless pulse combustor comprises an air-cooled jacket having a jacket inlet and a jacket outlet, wherein the jacket inlet receives the cooled dried exhaust gas and the jacket outlet exits reheated dry gas.

5. The pellet drying system according to claim 4 , wherein the drying column further comprises a second drying region containing a gas inlet and a gas outlet, wherein the gas inlet receives the reheated dry exhaust gas and the gas outlet exits system exhaust gas.

6. The pellet drying system according to claim 5 , wherein the second drying region comprises a pellet opening to receive partially dried pellets from the first drying region and a dried pellet exit.

7. The pellet drying system according to claim 5 , wherein the second drying region comprises a downwardly expanding cone configuration.

8. The pellet drying system according to claim 1 , further comprising a cyclone dust collector to receive and process system exhaust gas.

9. The pellet drying system according to claim 1 , further comprising a wet scrubber to receive and process system exhaust gas.

10. The pellet drying system according to claim 1 , wherein the heated drying gas has a temperature of about 700° C.±50° C.

11. The pellet drying system according to claim 1 , wherein the reheated dry gas has a temperature in the range from about 250° C. to about 350° C.

12. The pellet drying system according to claim 1 , wherein the drying column comprises a plurality of temperature sensors.

13. The pellet drying system according to claim 12 , wherein adjacent temperature sensors determine a level of pellets within the drying column.

14. The pellet drying system according to claim 1 , wherein the bed of moist pellets within the first drying region has a pellet bed height and a pellet bed diameter, wherein the pellet bed height is at least two times the pellet bed diameter.

15. The pellet drying system according to claim 1 , wherein the pellets are coal pellets.

16. The pellet drying system according to claim 1 , wherein the valveless pulse combustor is operated in a combustion air only mode to produce heated drying gas containing less than 5 percent residual oxygen.

17. A method for drying combustible pellets comprising:

operating a valveless pulse combustor to provide a source of heated drying gas, wherein the heated drying gas has a composition comprising less than 5% by volume oxygen;

introducing moist combustible pellets into a first drying region of a drying column; and

passing the heated drying gas through the first drying region to contact and dry the combustible pellets and to produce moisture-laden exhaust gas.

18. The method for drying combustible pellets according to claim 17 , further comprising:

monitoring a temperature at a plurality of locations within the drying column; and

determining a level of pellets within the drying column based upon monitored temperature differences.

19. The method for drying combustible pellets according to claim 17 , further comprising passing the moisture-laden exhaust gas through a condenser to remove water from the exhaust gas to produce a cooled dried exhaust gas.

20. The method for drying combustible pellets according to claim 19 , further comprising reheating the cooled dried exhaust gas by passing the cooled dried exhaust gas through an air-cooled jacket of the valveless pulse combustor to produce reheated dry gas.

21. The method for drying combustible pellets according to claim 19 , further comprising:

moving pellets from the first drying region to a second drying region of the drying column; and

passing the reheated dry gas through the second drying region to further dry the combustible pellets.

22. The method for drying combustible pellets according to claim 21 , wherein the second drying region comprises a downwardly expanding cone configuration.

23. The method for drying combustible pellets according to claim 17 , further comprising passing system exhaust gas from the drying column to a cyclone dust collector to capture fine particles having a size in the range from 20 μm to 3 mm.

24. The method for drying combustible pellets according to claim 17 , further comprising passing system exhaust gas from the drying column to a wet scrubber.

25. The method for drying combustible pellets according to claim 17 , wherein the heated drying gas has a temperature of about 700° C.±50° C.

26. The method for drying combustible pellets according to claim 20 , wherein the reheated dry gas has a temperature in the range from about 250° C. to about 350° C.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Mar 27, 2018
From: ARQ COAL TECHNOLOGIES LLC (F/K/A/ HENDRICKS COAL TECHNOLOGIES LLC)
To: OMNIS MINERAL TECHNOLOGIES, LLC; OMNIS THERMAL TECHNOLOGIES, LLC; EARTH TECHNOLOGIES USA LIMITED
Reel/Frame 045361/0186 →
SECURITY INTEREST Recorded Jun 8, 2017
From: OMNIS MINERAL TECHNOLOGIES, LLC; OMNIS THERMAL TECHNOLOGIES, LLC; EARTH TECHNOLOGIES USA LIMITED
To: HENDRICKS COAL TECHNOLOGIES LLC
Reel/Frame 042652/0557 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2015
From: GIBBEL, DAVID S.
To: OMNIS THERMAL TECHNOLOGIES, LLC
Reel/Frame 036593/0963 →
Continuity (1)
Related Publication 20170081605A1 · Mar 23, 2017