IP Library Granted Patent US 10,059,586
Granted Patent B2
US 10,059,586 · App. 15/210,806 · Granted Aug 28, 2018

Direct contact heat transfer in the thermolysis reactor of hydrogen production Cu—Cl cycle

Inventor: Mohammed Wassef Abdulrahman (Oshawa, CA)
Assignee: Mohammed Wassef Abdulrahman
C01B3/068B01J7/00B01J19/006B01J19/0013B01J19/0046C01G3/05B01J2219/00015B01J2219/0059B01J2219/00123B01J2219/00594B01J2219/00596B01J2219/00745B01J2219/00763B01J2219/00768
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Quick Facts
Patent No.
US 10,059,586
App. No.
15/210,806
Granted
Aug 28, 2018
Kind
B2
Abstract

In the thermochemical water splitting process by Cu—Cl cycle, oxygen gas is produced by a thermolysis process in a three-phase reactor. IN accordance with the teachings herein, a technique is provided to achieve the high challenging thermal requirements of the thermolysis reactor, whereby an optimized heat transfer configuration is used. The technique involves using some of the pre-heated stoichiometric oxygen gas produced from the thermolysis reaction, to transfer heat directly to the slurry of molten CuCl and solid Cu 2 OCl 2 inside the thermolysis reactor. Experiments were performed to examine the volumetric heat transfer coefficient for the direct contact heat transfer between the gas and the slurry. It was found that the thermal scale up analysis of the thermolysis reactor with direct contact heat transfer, is based on the amount of heat carried by the oxygen gas rather than the amount of heat transferred by direct contact heat transfer.

Claims (90)

1. A method for facilitating the thermochemical Cu—Cl cycle of hydrogen production in a thermolysis reactor having a reactor housing and a reaction chamber, wherein the method comprises:

receiving copper oxychloride solid particles into the reaction chamber;

decomposing the copper oxychloride solid particles thermally into oxygen gas and molten cuprous chloride;

expelling the oxygen gas;

heating a portion of the expelled oxygen gas that is produced from the decomposition process in the thermolysis reactor, by using an intermediate heat exchanger that exchanges heat from a nuclear reactor heat source; and

injecting the heated portion of the expelled oxygen gas through an inlet in a bottom portion of the reactor housing into the reaction chamber by using means for injecting the gas stream, whereby the heated portion of the expelled oxygen gas is in direct contact heat transfer with the slurry of the copper oxychloride solid particles and the molten cuprous chloride to provide a required amount of heating for the endothermic decomposition process inside the thermolysis reactor of the thermochemical Cu—Cl cycle.

2. The method of claim 1 , wherein the expelled oxygen gas is stoichiometric high temperature oxygen gas that is produced from the decomposition process inside the thermolysis reactor at a temperature of about 530° C., and the portion of the expelled oxygen gas is heated to a temperature of about 600° C.

3. The method of claim 1 , wherein the method comprises performing experimental thermal scale up analysis of the thermolysis reactor to determine the volumetric heat transfer coefficient for the direct contact heat transfer between the heated portion of the expelled oxygen gas and the slurry of copper oxychloride solid particles and molten cuprous chloride based on parameters including at least one of a static liquid height (H), a superficial gas velocity (U gs ), and a solid particles concentration (C s ).

4. The method of claim 3 , wherein the effects of the parameters are formulated using empirical equations of a volumetric Nusselt number (Nu V ).

5. The method of claim 4 , wherein the empirical equation of the volumetric Nusselt number for a bubbly flow regime is:

Nu

V

=

0.0165

(

D

R

H

R

)

1.71

Re

l

(

1

-

C

s

)

3.32

.

6. The method of claim 4 , wherein the empirical equation of the volumetric Nusselt number for a chum turbulent flow regime is:

Nu

V

=

0.0315

(

D

R

H

R

)

1.765

(

Re

l

)

0.93

(

1

-

C

s

)

2.94

.

7. The method of claim 5 , wherein the equation of the volumetric Nusselt number for the bubbly flow regime is used when:

H

R

D

R

4

,

C s ≤15% and U gs ≤0.15 m/s.

8. The method of claim 6 , wherein for the thermolysis reactor of the thermochemical copper-chlorine cycle of hydrogen production, the only regime that is available is the chum-turbulent flow regime.

9. The method of claim 1 , wherein the direct contact heat transfer between the heated portion of the expelled oxygen gas and the slurry of copper oxychloride solid particles and molten cuprous chloride is enough to transfer the heat needed for the endothermic decomposition process in the thermolysis reactor.

10. The method of claim 9 , wherein the thermal scale up analysis of the thermolysis reactor with the direct contact heat transfer method is performed based on the amount of heat carried by the heated portion of the oxygen gas according to: {dot over (Q)} O 2 ={{dot over (m)}C p (T gin −T gout )} O 2 .

11. The method of claim 10 , wherein the method comprises adjusting the rate of injecting the heated portion of the expelled oxygen gas to control the amount of heat that can be transferred by using the direct contact heat transfer between the heated portion of the expelled oxygen gas and the slurry of copper oxychloride solid particles and molten cuprous chloride.

12. The method of claim 6 , wherein the equation of the volumetric Nusselt number for the chum turbulent regime is used when:

H

R

D

R

4

,

C s ≤15% and U gs ≤0.15 m/s.

Continuity (2)
Provisional Application 62192518 · Jul 14, 2015
Related Publication 20170015552A1 · Jan 19, 2017