Synthesis of ammonia
10399860 ยท 2019-09-03
Assignee
Inventors
Cpc classification
C01C1/0417
CHEMISTRY; METALLURGY
B01J19/18
PERFORMING OPERATIONS; TRANSPORTING
F02B43/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P20/52
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
B01J19/18
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An ammonia synthesis apparatus has a piston arranged to reciprocate within a cylinder, a piston rod arranged to drive the piston in a reciprocal motion within the cylinder, an inlet valve linking a supply of nitrogen and hydrogen to the interior of the cylinder; an outlet valve allowing exhaust of ammonia from the cylinder, and a drive mechanism providing drive to the piston rod.
Claims
1. Ammonia synthesis apparatus comprising a piston arranged to reciprocate within a cylinder, a piston rod arranged to drive the piston in a reciprocal motion within the cylinder; an inlet valve linking a supply of nitrogen and hydrogen to the interior of the cylinder; an outlet valve allowing exhaust of ammonia from the cylinder, and a drive mechanism providing drive to the piston rod, wherein the drive mechanism comprises a linear electric motor under control of a controller.
2. Ammonia synthesis apparatus according to claim 1, further comprising a porous catalyst within the cylinder.
3. Ammonia synthesis apparatus according to claim 2 wherein the porous catalyst comprises iron or rhodium.
4. Ammonia synthesis apparatus according to claim 1 comprising a further piston arranged to reciprocate within a further cylinder, a further piston rod arranged to drive the further piston in a reciprocal motion within the further cylinder; a further inlet valve linking a supply of nitrogen and hydrogen to the interior of the further cylinder; and a further outlet valve allowing exhaust of gas from the cylinder, wherein the further piston rod (6) is arranged to be driven by the drive mechanism.
5. Ammonia synthesis apparatus according to claim 4, wherein a porous catalyst is provided within the further cylinder.
6. Ammonia synthesis apparatus according to claim 5 wherein the porous catalyst within the further cylinder comprises iron or rhodium.
7. Ammonia synthesis apparatus according to claim 1, further comprising a storage arrangement connected to receive the ammonia exhausted from the outlet valve.
8. An energy storage apparatus comprising: an ammonia synthesizing apparatus comprising a piston arranged to reciprocate within a cylinder, a piston rod arranged to drive the piston in a reciprocal motion within the cylinder, an inlet valve linking a supply of nitrogen and hydrogen to the interior of the cylinder: an outlet valve allowing exhaust of ammonia from the cylinder, and a drive mechanism providing drive to the piston rod, wherein the drive mechanism comprises a linear electric motor under control of a controller; an electrical generator that supplies power to the ammonia synthesizing apparatus; and a storage arrangement connected to receive ammonia from the ammonia synthesizing apparatus.
9. A method for the synthesis of ammonia comprising the steps of: introducing a mixture of hydrogen and nitrogen into a piston cylinder; compressing the mixture by operation of a drive mechanism arranged to drive a piston in a reciprocal motion within the piston cylinder, thereby heating the mixture to cause synthesis of ammonia from the mixture; and removing synthesized ammonia from the piston cylinder, wherein the drive mechanism comprises a linear electric motor under control of a controller.
10. A method according to claim 9, wherein a catalyst comprising iron or rhodium is provided within the cylinder.
11. A method according to claim 9 wherein the mixture of hydrogen and nitrogen comprises hydrogen and nitrogen in stoichiometric ratio for synthesis of ammonia.
12. A method according to claim 9 further comprising the step of storing the synthesized ammonia.
13. A method according to claim 9 further comprising the step of liquefaction of the ammonia.
14. A method of energy storage comprising the steps of: generating electricity; and using the generated electricity to operate an ammonia synthesizing apparatus comprising a piston arranged to reciprocate within a cylinder, a piston rod arranged to drive the piston in a reciprocal motion within the cylinder; an inlet valve linking a supply of nitrogen and hydrogen to the interior of the cylinder: an outlet valve allowing exhaust of ammonia from the cylinder, and a drive mechanism providing drive to the piston rod, wherein the drive mechanism comprises a linear electric motor under control of a controller by introducing a mixture of hydrogen and nitrogen into the piston cylinder, compressing the mixture by operation of the drive mechanism arranged to drive piston in reciprocal motion within the cylinder, thereby heating the mixture to cause synthesis of ammonia from the mixture, and removing synthesized ammonia from the cylinder.
15. A method for energy storage according to claim 14 further comprising a step of combusting of the synthesized ammonia for energy generation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(3)
(4) Cylinders 1 are each provided with a piston 2, which is preferably gas-tight, driven by an associated piston rod 6. The piston rods 6 are driven in anti-phase by linear electric motor 7. A controller 8 is provided to control operation of the linear electric motor 7.
(5) Within each cylinder is provided a catalyst 3, for promoting the reaction N.sub.2+3H.sub.2=>NH.sub.3, such as iron (Fe) or rhodium (Rh). Preferably, the catalyst is provided in a porous form.
(6) A stoichiometric mixture of nitrogen and hydrogen is provided at inlet valve 4 for each cylinder. An outlet valve 5 is also provided for each cylinder, to enable the synthesized ammonia to be retrieved.
(7) In operation, starting the cycle at an arbitrary location, the piston 2 is withdrawn and inlet valve 4 is opened. This may, for example, be by operation of an electrically-operated valve under control of controller 8, or may be a mechanical valve opening by mechanical interaction with the linear motor 7. Once the piston is withdrawn to its fullest extent, inlet valve 4 closes. The cylinder is then filled with the stoichiometric mixture of hydrogen and nitrogen. The piston 2 is then driven back into the cylinder 1 with inlet valve 4 closed and outlet valve 5 closed. The resulting compression of the gas mixture causes heating. The heated gas mixture, in contact with the catalyst 3, reacts to produce ammonia. The piston 2 is again withdrawn, cooling the synthesized ammonia. Outlet valve 5 is opened. This may, for example, be by operation of an electrically-operated valve under control of controller 8, or may be a mechanical valve opening by mechanical interaction with the linear motor 7. The synthesized ammonia is exhausted from the cylinder 1 by the piston 2 being driven back into the cylinder. As the piston 2 begins to withdraw again, inlet valve 4 opens to admit a new volume of stoichiometric mixture of nitrogen and hydrogen, and the process repeats. As shown in
(8) The ammonia exhausted through outlet valve 5 may be directed to a storage arrangement.
(9) Although two pistons, as illustrated, operated in anti-phase, provide a more regular flow of gases through the inlet and outlet valves 4, 5, the present invention may be embodied as a single piston operated by a linear motor.
(10) The catalyst 3 is provided to ensure a suitable reaction rate which enables useful synthesis of ammonia during a piston cycle. The use of a piston provides a convenient and efficient means for applying heat to the gas mixture. The invention may be operated without the catalyst 3, although the rate of generation of the ammonia will fall accordingly.
(11) The nitrogen and hydrogen raw materials may be provided from any convenient source. The hydrogen may be generated from electrolysis of water.
(12) The apparatus of the present invention may be employed to synthesize ammonia as an energy storage medium. For example, electrical generators in the form of renewable energy sources such as wind turbines or solar panels may generate electricity intermittently, out of synchronization with demand for energy. Such electrical generators may be employed to generate ammonia by use of the equipment and method of the present invention, and the generated ammonia may later be combusted in an energy recovery step.
(13) Other valve arrangements, different from those shown in
(14) The invention has been described with particular emphasis on introducing a nitrogen/hydrogen mixture in stoichiometric ratio. The invention may be operated with the mixture of gases in another ratio, in which case the ammonia exhausted from the ammonia synthesis apparatus of the present invention will include some unreacted gas. For safety considerations, it would be preferable if nitrogen were present in excess, rather than hydrogen. A later step, for example liquefaction of ammonia, may be employed to separate the synthesized ammonia from unreacted nitrogen or hydrogen.
(15) Although modifications and changes may be suggested by those skilled in the art, it is the intention of the Applicant to embody within the patent warranted hereon all changes and modifications as reasonably and properly come within the scope of the Applicant's contribution to the art.