JET PUMP FOR GASEOUS MEDIUM
20230407888 ยท 2023-12-21
Inventors
Cpc classification
F04F5/461
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A jet pump configured to control a feed of a gaseous medium, the jet pump comprising: a primary nozzle configured to feed a propellant and including a nozzle body and a nozzle needle longitudinally movable within the nozzle body so that a nozzle cross section of the primary nozzle is variably adjustable and closeable by the nozzle needle; a compression spring that urges the nozzle needle in a closing direction, wherein the nozzle needle includes a first pressure surface configured to be loaded with a pressure of the propellant in an opening direction that is opposite to the closing direction, and a second pressure surface configured to be loaded with a pressure of a secondary medium in the closing direction.
Claims
1. A jet pump configured to control a feed of a gaseous medium, the jet pump comprising: a primary nozzle configured to feed a propellant and including a nozzle body and a nozzle needle longitudinally movable within the nozzle body so that a nozzle cross section of the primary nozzle is variably adjustable and closeable by the nozzle needle; a compression spring that urges the nozzle needle in a closing direction, wherein the nozzle needle includes a first pressure surface configured to be loaded with a pressure of the propellant in an opening direction that is opposite to the closing direction, and a second pressure surface configured to be loaded with a pressure of a secondary medium in the closing direction.
2. The jet pump according to claim 1, wherein the nozzle body is configured from at least two components including a first nozzle body component including a first flow in opening for the propellant, and a second nozzle body component including a second flow in opening for the secondary medium, and wherein the nozzle needle is longitudinally movable in the first nozzle body component, the compression spring is provided between the nozzle needle and the second nozzle body element, and the compression spring contacts the second pressure surface.
3. A fuel cell system, comprising: the jet pump according to claim 1 configured to control a hydrogen feed of a fuel cell.
4. A method for controlling a propellant nozzle geometry of a jet pump according to claim 1, wherein the nozzle cross section is adjustable by an indirect control of the nozzle needle.
5. The method according to claim 4, wherein a position of the nozzle needle and the nozzle cross section is adjustable by forces impacting the first pressure surface and the second pressure surface, and wherein the propellant generates a first force in the opening direction and the secondary medium and the compression spring generate a second force in the closing direction.
6. The method according to claim 5, wherein the first force and the second force at the nozzle needle are in equilibrium for a predetermined operating point of the jet pump so that the nozzle needle assumes a defined position.
7. The jet pump according to claim 1, wherein the gaseous medium is hydrogen.
Description
BRIEF DESCRIPTIONS OF THE DRAWINGS
[0019] The invention is now subsequently described based on advantageous embodiments with reference to drawing figures, wherein:
[0020]
[0021]
DETAILED DESCRIPTION OF THE INVENTION
[0022]
[0023] The fuel cell system typically includes a fuel cell stack which can be typically configured as a stack of PEM fuel cells. A common cathode cavity is provided with a cathode supply for feeding and exhausting cathode operating agent, e.g. air, and a common anode cavity is provided with an anode supply for feeding and exhausting the anode operating agent, e.g. hydrogen.
[0024] The cathode supply includes a cathode supply conduit which feeds air pulled from ambient to the common cathode cavity of the fuel cell stack. A cathode exhaust gas conduit exhausts cathode exhaust gas from the cathode cavity. Optionally the cathode exhaust gas is fed to a non-illustrated exhaust system.
[0025] The anode supply includes an anode supply conduit which provides the anode operating agent, in particular hydrogen from a hydrogen tank to the anode cavity. The anode supply conduit typically includes a pressure regulation valve, a tank valve, a dosing valve and a cut off valve. An anode exhaust gas conduit exhausts anode exhaust gas from the anode cavity. The anode supply furthermore includes a recirculation conduit configured to feed hydrogen included in the anode side exhaust gas of the fuel cell stack back into the fuel cell stack by a recirculation device, e.g. the jet pump 1.
[0026] Furthermore, the anode exhaust gas conduit can include a water separator including a downstream drain valve configured to drain product water generated by the fuel cell reaction and a purge valve configured to drain the anode gasses, mostly nitrogen.
[0027] As evident from
[0028] It is evident from
[0029] The nozzle body 3 is configured in two components in this embodiment including a first nozzle body element 11 including a first inflow opening 13 for the propellant and a second nozzle body element 12 including a second inflow opening 14 for the secondary medium, wherein the jet needle 4 is provided longitudinally movable with a cylindrical piston 15 in the first nozzle body element 11. The compression spring 8 is arranged between the piston 15 and the second nozzle body element 12. As evident from
[0030] For pressure loading, the nozzle needle 4 includes at least one first pressure surface 17, configured to be loaded with a pressure of the propellant in an opening direction oriented opposite to the closing direction and at least one second pressure surface 18 configured to be loaded with a pressure of a secondary medium in the closing direction. As evident from
[0031] The second pressure surface 18 that is formed on a side of the piston 15 that is opposite to the first pressure surface 17, loads the nozzle needle 4 with a lower pressure than the primary pressure of the propellant. Thus, the lower pressure is the pressure of the secondary medium which can be fed e.g. from the recirculation conduit recited supra back into the jet pump 1. By the same token this can be the ambient pressure or the pressure after the ejector.
[0032] The pressure of the secondary medium and the compression spring 8 which contacts the second pressure surface 18 generate an opposite force versus the force of the propellant medium wherein the opposite force moves the nozzle needle 4 to the right in the drawing figure, this means in the closing direction towards a smaller nozzle cross section. For a defined operating point, the forces at the nozzle needle from an equilibrium and the nozzle needle 4 assumes a defined position and thus determines the nozzle cross section.
[0033] Thus, it is possible to implement a higher nozzle exit velocity for a smaller supply pressure and a smaller primary mass flow due to the smaller flow cross section. For a higher supply pressure, the nozzle needle 4 opens further and the cross section thus increased facilitates the larger primary mass flow.
[0034] All features described and shown in conjunction with individual embodiments can be provided in different combinations according to the invention while still achieving their advantageous effect. The scope and spirit of the instant invention is defined by the patent claims and is not limited by the features described in the description or shown in the drawing figures.