Multiport valve with modular rotor
09945283 ยท 2018-04-17
Assignee
Inventors
Cpc classification
F16K31/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/0873
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/0716
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2007/146
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01L7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P7/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A three part valve is provided. The valve has a housing having three axially spaced inlet ports and an outlet port. A rotary valve assembly with a modular rotor is provided for controlling fluid communication between the inlet ports and the outlet port. The rotary valve assembly includes a shaft. Additionally there is provided a first generally cylindrical valve module torsionally affixed with the shaft for controlling fluid communication between a first inlet port and the outlet port. The rotary valve assembly also includes a second generally cylindrical valve assembly rotatably mounted on the shaft controlling fluid communication between a second inlet port and the outlet port. The second valve module has a coupling interface with the first valve module. A third generally cylindrical valve module is also provided rotatably mounted on the shaft. The third cylindrical valve module controls fluid communication between a third inlet port and the outlet port. The third valve module has a coupling interface with the second valve module.
Claims
1. A three part valve comprising: a housing with three axially spaced inlet ports and an outlet port; a rotary valve assembly controlling fluid communication between said inlet ports and said outlet port; said rotary valve assembly including: a shaft; a first generally cylindrical valve module torsionally affixed with said shaft for controlling fluid communication between a first inlet port and said outlet port, said first valve module controlling flow from between an external portion of said first valve module and an interior of said valve module; a second generally cylindrical valve module rotatively mounted on said shaft for controlling fluid communication between a second inlet port and said outlet port, said second valve module controlling flow between an external portion of said second valve module and an interior of said second valve module, said second valve module having a coupling interface with said first valve module; and a third generally cylindrical valve module rotatively mounted on said shaft for controlling fluid communication between a third inlet port and said outlet port, said third valve module controlling flow between an external portion of said third valve module and an interior portion of said third valve module, said third valve module having a coupling interface with said second valve module.
2. The three port valve as described in claim 1 wherein said first valve module and said second valve module coupling interface has a torsional lost motion connection.
3. The three port valve as described in claim 1 wherein said second valve module and said third valve module coupling interface has a torsional lost motion connection.
4. The three port valve as described in claim 1 wherein said valve is a cooling module and said outlet port is connected to an inlet of a pump, said first inlet port is connected with a radiator, said second inlet port is connected with a heater, and said third inlet port is connected with a bypass.
5. The three port valve as described in claim 1 wherein said valve has an over temperature safety to allow flow from said first inlet port into said valve housing regardless of a position of said first valve module.
6. The three port valve as described in claim 5 wherein said over temperature safety is controlled by the temperature in said third inlet port.
7. The three port valve as described in claim 1 wherein said shaft is powered by a motor.
8. The three port valve as described in claim 7 wherein the motor has pulse width modulation.
9. The three port valve as described in claim 7 wherein the motor is a DC brush motor.
10. The three port valve as described in claim 7 wherein the motor is connected with said shaft via a gear box.
11. The three port valve as described in claim 7 wherein the motor is controlled by an engine control unit.
12. The three port valve as described in claim 7 wherein the motor is a step motor.
13. The three port valve as described in claim 7 wherein the motor is opposed by a spring.
14. A cooling module for an automotive vehicle comprising: a housing with three axially spaced inlet ports, a first inlet port being connected with a radiator outlet, a second inlet port being connected with a heater outlet, and a third inlet port connected with a radiator bypass outlet, and said housing having an outlet port connected to an inlet of a pump; a rotary valve assembly controlling fluid communication between said inlet ports and said outlet port; said rotary valve assembly including: a motorized shaft; a first generally cylindrical valve module torsionally affixed with said shaft for controlling fluid communication between said first inlet port and said housing outlet port, said first valve module controlling flow from between an external portion of said first valve module and an interior of said valve module; a second generally cylindrical valve module rotatively mounted on said shaft for controlling fluid communication between said second inlet port and said housing outlet port, said second valve module controlling flow between an external portion of said second valve module and an interior of said second valve module, said second valve module having a torsional lost motion coupling interface with said first valve module; and a third generally cylindrical valve module rotatively mounted on said shaft for controlling fluid communication between said third inlet and said housing outlet port, said third valve module controlling flow between an external portion of said third valve module and an interior portion of said third valve module, said third valve module having a torsional lost motion coupling interface with said second valve module.
15. The cooling module as described in claim 14 wherein said cooling module has an over temperature safety to allow flow from said first inlet port into said valve housing regardless of a position of said first valve module.
16. The cooling module as described in claim 14 wherein said over temperature safety is controlled by the temperature in said third inlet port.
17. The cooling module as described in claim 13 wherein said shaft is powered by a motor that is opposed by a spring.
18. The three port valve as described in claim 17 wherein the motor has pulse width modulation.
19. The three port valve as described in claim 17 wherein the motor is a DC brush motor.
20. A method of valving a radiator outlet, a heater outlet and a radiator bypass of an automotive vehicle comprising: providing a housing with a radiator inlet port, a heater inlet port, and a radiator bypass inlet port, and providing a housing outlet port connected to a pump inlet; providing a rotary valve assembly controlling fluid communication between said inlet ports and said outlet port; said rotary valve assembly providing: a powered shaft; a first generally cylindrical valve module torsionally affixed with said shaft controlling fluid communication between said radiator inlet port and said outlet port, said first valve module controlling flow from between an external portion of said first valve module and an interior of said valve module; a second generally cylindrical valve module rotatively mounted in said shaft controlling fluid communication between said heater inlet port and said outlet port, said second valve module controlling flow between an external portion of said second valve module and an interior of said second valve module, said second valve module having a torsional lost motion coupling interface with said first valve module; and a third generally cylindrical valve module rotatively mounted on said shaft controlling fluid communication between said radiator bypass inlet port and said outlet port, said third valve module controlling flow between an external portion of said third valve module and an interior portion of said third valve module, said third valve module having torsional lost motion coupling interface with said second valve module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(7) The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses.
(8) Referring to
(9) The three port valve 7 has a rotary valve assembly with a modular rotor. The rotary valve assembly includes a shaft 30. A first generally cylindrical valve module 32 is torsionally affixed with the shaft 30 along a rim portion 31. The first valve module 32 controls fluid communication between the inlet port 12 and the outlet port 26 by controlling flow between an external portion the first valve module 32 in an interior of the first valve module 32. The first valve module has a blind end 34. The first valve module 32 has a curvilinear axial cross sectional portion 36. The curvilinear portion 36 sealably mates with a spring biased cylindrical plunger 38. When rotated to an appropriate angle by the shaft 30, an aperture 40 with a lead in 42 allows fluid to flow from the inlet port 12 to an interior of the first valve module 32 and then exit out the outlet port 26. The first valve module is tapered along its interior 44 to improve fluid flow.
(10) A second generally cylindrical valve module 46 is provided, rotatably mounted on the shaft 30. The second valve module has a curvilinear portion engaging with a spring biased cylindrical plunger (not shown in
(11) A third generally cylindrical valve module 50 is provided, rotatably mounted on the shaft 30. The third valve module 50 has a curvilinear portion engaging with a spring biased plunger in a manner similar to that explain the first valve module 32. The third valve module 50 has a coupling interface 53 with the second valve module 46 similar to the interface described between the first valve module 32 and the second valve module 46. The second valve module 50 has an aperture 52 allowing fluid to flow from an exterior of the third valve module to an interior of the third valve module. The above noted flow controls fluid communication from the third inlet port 22 to the outlet port 26. The third valve module aperture 50 is not necessarily radially aligned with the first valve module aperture 40 or the second valve module aperture 48, therefore flow rates (percentage of maximum flow rate) for the third and first inlet ports will not be necessarily equal to each other upon a given angular position of the shaft 30.
(12) Different automotive vehicle applications will have different desired relationships between the flow rates allowed through the bypass 24, the radiator 14, and the heater 20. An advantage of the present invention is that different vehicle applications can have customized cooling system control modules by simply adjusting the angular position between the first and second valve modules or between the second and third valve modules as desired.
(13) The three port valve 7 also has an over temperature safety system. The over temperature safety system is provided by a housing extension 60. Extension 60 connects an auxiliary port 62 with the radiator upstream of the first inlet port 12. Extension 60 mounts a valve body 64 which is spring biased to a close position by a spring (not shown). Valve body 64 is connected with a wax motor 66. Wax motor 66 extends into a conduit connecting with third inlet port 22 which is connected as previously mentioned with the bypass 24. If the valve body 10 is excessively heated by fluid flowing from the bypass the wax motor 66 will extend displacing valve body 64 allowing fluid from the radiator to enter into auxiliary port 62 thereby cooling the housing 10 and the first second and third valve modules before exiting the outlet port 26.
(14) Referring additionally to
(15) The shaft 30 is control by a motor 80 (shown schematically in
(16) The description of the invention is merely exemplary in nature and, thus, variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention.