EJECTOR ARRANGEMENT
20180180064 ยท 2018-06-28
Inventors
Cpc classification
F04F5/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2341/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F5/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F5/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F5/466
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04F5/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04F5/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to an ejector arrangement (1, 40) comprising a housing (11) and at least two ejectors (2, 3, 41, 42) arranged in said housing (11) along a common axis (13). Each ejector (2, 3, 41, 42) has a motive inlet (4, 5), a suction inlet (6, 7), an outlet (8, 9) and a valve element (23, 24, 43, 44). The task of the invention is to provide an ejector arrangement that allows for a good control of the mass flow of fluid through the ejector arrangement while keeping the construction simple. According to the invention the above task is solved in that the ejector arrangement (1, 40) comprises a common actuator (25, 55), that is arranged to engage at least two of the valve elements (23, 24, 43, 44) to open the motive inlets (4, 5).
Claims
1. An ejector arrangement comprising a housing and at least two ejectors arranged in said housing, wherein each ejector has a motive inlet a suction inlet, an outlet and a valve element, wherein, the ejector arrangement comprises a common actuator that is arranged to engage at least two of the valve elements to open the motive inlets.
2. The ejector arrangement according to claim 1, wherein, the common actuator engages at least one valve element before another valve element when the common actuator is displaced along a common axis.
3. The ejector arrangement according to claim 1, wherein, each ejector is provided with a check valve or a non-return valve at the suction inlet.
4. The ejector arrangement according to claim 1, wherein, the housing comprises a cylindrical body around a common axis and the ejectors are arranged on a circular path around the common axis.
5. The ejector arrangement according to claim 1, wherein, at least one ejector has a larger flow capacity than the remaining ejectors.
6. The ejector arrangement according to claim 1, wherein, a common suction line is arranged in an end face of the housing connected to all suction inlets of the ejectors.
7. The ejector arrangement according to claim 1, wherein, a common motive line connected to all motive inlets is arranged in the housing.
8. The ejector arrangement according to claim 1, wherein, when the common actuator is displaced towards an opening direction, the common actuator begins to open the next motive inlet only after the previously opened motive inlet is fully open.
9. The ejector arrangement according to claim 1, wherein, when the common actuator is displaced towards an opening direction, the common actuator begins to open the next motive inlet before the previously opened motive inlet is fully open.
10. The ejector arrangement according to claim 1, wherein, at least two motive inlets are opened in parallel by the common actuator when the common actuator, is displaced along a common axis.
11. The ejector arrangement according to claim 1, wherein, the common actuator comprises a pilot valve, wherein the pilot flow is controlled by an electric valve.
12. The ejector arrangement according to claim 1, wherein, the common actuator comprises an actuating element with a plurality of orifices, each of which accommodates a valve element.
13. The ejector arrangement according to claim 12, wherein, the length of at least two of the orifices along a common axis is different.
14. The ejector arrangement according to claim 1, wherein, the valve elements comprise a section with a larger cross section and a section with a smaller cross section, wherein at least two valve elements comprise sections with a smaller cross section that have a different length along a common axis.
15. The ejector arrangement according to claim 1, wherein, the housing comprises a circumferential wall, wherein the outlets are arranged radially outside the circumferential wall and the suction inlets are arranged radially inside the circumferential wall.
16. The ejector arrangement according to claim 2, wherein, each ejector is provided with a check valve or a non-return valve at the suction inlet.
17. The ejector arrangement according to claim 2, wherein, the housing comprises a cylindrical body around a common axis and the ejectors are arranged on a circular path around the common axis.
18. The ejector arrangement according to claim 3, wherein, the housing comprises a cylindrical body around a common axis and the ejectors are arranged on a circular path around the common axis.
19. The ejector arrangement according to claim 2, wherein, at least one ejector has a larger flow capacity than the remaining ejectors.
20. The ejector arrangement according to claim 3, wherein, at least one ejector has a larger flow capacity than the remaining ejectors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] A preferred embodiment of the invention will now be described in more detail with reference to the drawings, wherein:
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] Referring to
[0033] A motive line 10 provides high pressure motive fluid to all motive inlets 4, 5. All ejectors 2, 3 are arranged in a common housing 11. The housing 11 comprises a cylindrical body 12. The cylindrical body 12 is substantially rotationally symmetric around a common axis 13.
[0034] The motive fluid enters through the motive line 10 into a motive chamber 14 neighboring all motive inlets 4, 5.
[0035] All outlets 8, 9 of the ejectors 2, 3 lead the fluid into an outlet chamber 15. The outlet chamber is arranged radially outside a circumferential wall 16 in the housing 11. The outlet chamber 15 is connected to an outlet line 17.
[0036] All ejectors 2, 3 are arranged in parallel to the common axis 13. Both the motive line 10 and the outlet line 17 enter the housing 11 perpendicular to the common axis 13. A suction line 18 enters the common housing 11 parallel to the common axis 13. The suction line 18 is connected to an end face 19 of the housing 11.
[0037] All ejectors 2, 3 are sealed to the end face 19 of the housing 11. Radially inside the circumferential wall 16 a suction chamber 20 is arranged connected to the suction line 18 and all suction inlets 6, 7. At the suction inlets 6, 7 non-return valves 21, 22 are arranged, in this case ball-valves.
[0038] The ejector arrangement 1 further comprises one valve element 23, 24 for each ejector 2, 3. When an ejector 2, 3 is inactive the respective valve element 23, 24 closes the respective motive inlet 4, 5 such that no motive fluid coming from the motive line 10 can enter the ejector 2, 3.
[0039] The valve elements 23, 24 are arranged in a common actuator 25. The common actuator 25 comprises an actuating element 26 as well as a valve member 27. The common actuator 25 in this case comprises a pilot valve, wherein the pilot flow is controlled by a magnetic valve. The solenoid of the magnetic valve is not shown in the figures for simplicity.
[0040] The pilot valve here comprises a pilot chamber 28 as well as a pilot hole 29. The pilot hole 29 may be opened or closed by actuating the valve member 27. A tip 30 of the valve member 27 engages the pilot hole 29 and closes the pilot chamber 28 from a fluid connection to the suction line 18 when the common actuator is not activated.
[0041] Referring to
[0042] In
[0043] As can be seen in
[0044] As can be seen in
[0045]
[0046] The difference in the opening behavior between the individual ejectors 41, 44 in this embodiment is reached by having orifices 49, 50 with a different length for each ejector 41, 42. At the same time the stop 51 of the ejector 41 engages the shoulder 52 of the valve element 43 earlier than the stop 53 engages the shoulder 54 of the valve element 44 when the common actuator 55 is moved towards an opening direction, i.e. in this case upwards. The advantage of the second embodiment compared to the first embodiment is that the assembly of the ejector arrangement is simplified, because all valve elements 43, 44 are the same and thus there is no risk of a wrong assembly by inserting a valve element into a wrong orifice. The common actuator 55 in the second embodiment thus comprises an asymmetric actuating element 56 with orifices 49, 50 having a different length for each orifice 49, 50. According to the first embodiment in
[0047] While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.