Injector testing device
10781781 ยท 2020-09-22
Assignee
Inventors
Cpc classification
F02M65/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M65/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B51/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04B51/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An injector testing device includes a fluid pump configured to convey a test oil; a motor mechanically connected to the fluid pump and configured to drive the fluid pump; and a rail configured to receive the test oil conveyed by the fluid pump and to fluidly connect to at least one injector to be tested. The fluid pump, the motor, and the rail are supported elastically in the injector testing device as a common assembly.
Claims
1. An injector testing device comprising: a fluid pump; a motor mechanically connected to, and configured to drive, the fluid pump; and a rail configured to receive a test oil conveyed by the fluid pump and to fluidly connect to at least one injector to be tested; wherein the fluid pump, the motor, and the rail are elastically supported in the injector testing device as a common assembly, wherein the rail is pivotable in the injector testing device.
2. An injector testing device comprising: a fluid pump; a motor mechanically connected to, and configured to drive, the fluid pump; and a rail configured to receive a test oil conveyed by the fluid pump and to fluidly connect to at least one injector to be tested; wherein the fluid pump, the motor, and the rail are elastically supported in the injector testing device as a common assembly, wherein the assembly additionally includes at least one injector holding device for mounting the at least one injector, wherein the at least one injector holding device is displaceable in three spatial directions.
3. An injector testing device comprising: a fluid pump; a motor mechanically connected to, and configured to drive, the fluid pump; and a rail configured to receive a test oil conveyed by the fluid pump and to fluidly connect to at least one injector to be tested; wherein the fluid pump, the motor, and the rail are elastically supported in the injector testing device as a common assembly; wherein the assembly additionally includes at least one injector holding device for mounting the at least one injector, wherein the at least one injector holding device includes a spindle, a cone, and a clamping ring that is expandable by rotation of the spindle to fix the injector holding device in position in the injector testing device without deformation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
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(5)
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DETAILED DESCRIPTION
(7)
(8) Injector testing device 2 includes a pressure generation region 4 depicted on the right and a testing region 5 depicted on the left, in each of
(9) Injector testing device 2 includes a support frame 3, which supports a fluid pump (high-pressure pump) 6 and a motor 8 configured to drive fluid pump 6.
(10) A swiveling frame 22 is supported on support frame 3 by two pillow block bearings 26 in such a manner, that it can swivel about a horizontal axis. This allows swiveling frame 22 to be adjusted about the horizontal axis to any desired angle from the horizontal to the vertical. Swiveling frame 22 can be locked into any desired position with the aid of a clamping lever 30. Alternatively, or in addition, the desired position can be secured by locking a toothed rack or threaded rod 34 into place in an actuating knob 32, the toothed rack or threaded rod being attached to swiveling frame 3.
(11) Swiveling frame 22 supports a high-pressure reservoir, which is formed in the shape of a rail 10, is connected to the outlet side of fluid pump 6 by a plurality of fluid lines 24, and is configured to receive the fluid conveyed by fluid pump 6. Rail 10 includes a plurality of openings 12, which are each configured to receive a connection piece 14. Rail 10 is connected to an injector 18 to be tested (test specimen), via such a connection piece 14. In this context, injector 18 is held by an injector holding device (injector clamping device) 16, which is supported at support frame 3 via a tube 20, which extends out from support frame 3. Details of injector holding device 16 are described further below, with respect to
(12) By pivoting the swiveling frame 22, the angle of the connection piece 14 attached to rail 10 is adjustable in such a manner, that connection piece 14 is oriented in a line with the pressure tube connection of injector 18. The position of injector 18 with respect to rail 10 can be set via adjustment of injector holding device 16 (see below), in such a manner, that connection piece 14 can be joined directly to the pressure tube connection of injector 18. Thus, a flexible fluid connection subject to wear, e.g., in the form of a hose, between rail 10 and injector 18, can be dispensed with.
(13) Support frame 3 forms an assembly 9a together with swiveling frame 22, motor 8, high-pressure pump 6, and injector holding device 16. Assembly 9a is supported on a rack 5 of injector testing device 2 in a floating manner, using elastic pads 28, which are situated on the lower side of support frame 3. In this manner, vibrations, which are generated during operation of motor 8 and fluid pump 6, are not transmitted to rack 5 or only transmitted to it in a damped manner.
(14) Since fluid pump 6 with its motor 8, rail 10, and each injector 18 mounted in an injector holding device 16 are supported together in a floating manner, no relative movements occur between these components, even during operation of fluid pump 6. Thus, fluid pump 6 and rail 10 can be interconnected by rigid fluid lines 24, which can be made of, in particular, steel. The use of flexible, high-pressure hoses subject to wear can be omitted.
(15) By using rigid fluid lines 24, which are made, in particular, of steel, the manufacturing and maintenance costs can be reduced, and the operational reliability of injector testing device 2 can be increased.
(16)
(17) Injector 18 is fixed in position in injector holding device 16 by a clamping device 40. Injection chamber 42 is positioned by moving an adjustable plate 46 over the nozzle of injector 18 (not visible in
(18) The high-pressure terminal of injector 18 is connected to rail 10 at connection piece 14, using a separable screw cap 15.
(19) By pivoting the swiveling frame 22 about the horizontal axis, injector holding device 16 is suitably aligned with connection piece 14 in advance.
(20) The height of injector 18 can be changed and adjusted as needed, using a slotted hole 48, which is formed in a support 54 of injector holding device 16. Lateral play in slotted hole 48 allows a lateral displacement.
(21) By sliding a pin 50 in a tube 20 of support frame 4 (see
(22) The lateral inclination of injector holding device 16 can be adjusted, using the distance between a lateral guide 52 and support 54 of injector holding device 16.
(23) The forward/backward inclination of injector 18 can be adjusted via rounded-off supports 56 and the inclination of compensating elements 58, e.g., a combination of a spherical disk and conical socket.
(24) Injector holding device 16 is guided in tube 20 of support frame 3 via pin 50. A tongue 60 prevents rotation.
(25) By rotating a spindle 62, whose handle is not shown in the figures, a cone 64 is pulled nearer in such a manner, that it expands a clamping ring 66. This deforms clamping ring 66 in tube 20 of support frame 3, and in this manner, allows the position of injector holding device 16 to be fixed without deformation.
(26)
(27) Unlike in the example embodiment shown in
(28) In one further example embodiment not shown in the figures, fluid pump 6 and motor 8 are attached to the non-pivoting, stationary region of device 2. In this case, as well, in order to be able to use rigid fluid lines 24 in place of flexible hoses for the fluid supply, a fluid adaptor 80 is positioned in the axis of rotation.
(29)
(30) Fluid adaptor 80 has an inlet-side element 82 and an outlet-side element 84, which is connected to inlet-side element 82 in such a manner, that it is rotatable about an axis A, with respect to inlet side element 82. Both inlet-side element 82 and outlet side element 84 have at least one fluid connection 83, 85, respectively, which allows fluid lines 24 to connect to fluid adaptor 80 on both the inlet side and the outlet side. The connection 86 between inlet-side element 82 and outlet-side element 84 is also impervious at high fluid pressure.
(31) Inlet-side element 82 of fluid adapter 80 is connected to the outlet of fluid pump 6. Outlet-side element 84 of fluid adapter 80 is connected to rail 10. Since outlet-side element 84 is rotatable with respect to inlet-side element 82, a rotatable fluid connection between fluid pump 6 and rail 10 can be implemented, even with rigid fluid lines 24 made of, e.g., steel.