Lubrication system with supply line monitoring
10465845 ยท 2019-11-05
Assignee
Inventors
Cpc classification
F16N2250/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N2280/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N2260/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N2250/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16N29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16N11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A lubrication system includes a lubricant supply reservoir, a supply line connecting the reservoir with one or more dispenser valves, a return valve and a pump. A control is operatively connected with a pump and with the return valve, the control being configured to operate the pump and the return valve such that a quantity of lubricant within the supply line flows out of the supply line and into the reservoir when a period of storage within the supply line of the quantity of lubricant exceeds an estimated period of effectiveness of the quantity of lubricant or a predetermined portion of the estimated lubricant effectiveness period.
Claims
1. A lubrication system for lubricating at least one movable machine component, the system comprising; a lubricant reservoir containing lubricant; a dispenser line having an outlet for discharging lubricant on or within the machine component; a dispenser valve selectively permitting lubricant flow through the dispenser line; a supply line fluidly coupled with the reservoir and with the dispenser line; a return valve selectively permitting lubricant flow from the supply line to the reservoir; a pump fluidly coupled with the supply line and configured to pump lubricant from the reservoir and through the supply line; and a control operatively connected with the pump and with the return valve, the control being configured to monitor a time after a quantity lubricant enters the supply line to determine a period of storage within the supply line and to operate the pump and the return valve such that the quantity of lubricant within the supply line flows out of the supply line and into the reservoir when the period of storage within the supply line of the quantity of lubricant exceeds an estimated period of effectiveness of the quantity of lubricant or a predetermined portion of the estimated lubricant effectiveness period so as to prevent degraded or ineffective lubricant from being dispensed on or within the machine component.
2. The lubrication system as recited in claim 1 wherein the control is configured to determine the estimated lubricant effectiveness period of the quantity of lubricant.
3. The lubrication system as recited in claim 2 further comprising a sensor coupled with the control and configured to sense a property of the quantity of lubricant, the control being configured to use lubricant property information from the sensor to determine the estimated lubricant effectiveness period.
4. The lubrication system as recited in claim 3 wherein the sensor is one of a temperature sensor and a pressure sensor.
5. The lubrication system as recited in claim 1 wherein the control is an electronic controller having memory and a software program stored in the memory, the program being configured to monitor the lubricant storage period, to compare the storage time with the lubricant effectiveness period and to operate the pump and return valve when the when period of storage within the supply line of the quantity of lubricant exceeds an estimated period of effectiveness of the quantity of lubricant or a predetermined portion of the estimated period of lubricant effectiveness.
6. The lubrication system as recited in claim 5 wherein the return valve includes an electric actuator for opening and closing the valve, the actuator being electrically connected with the electronic controller.
7. The lubrication system as recited in claim 6 wherein the return valve includes a passage fluidly coupling the lubricant supply line with the lubricant, a closure element movable between a closed position at which lubricant flow through the valve passage is obstructed and an open position at which lubricant flow through the valve passage is permitted, and a solenoid for displacing the closure element between the closed and open positions, the solenoid being operatively connected with the control so as to initiate displacement of the closure element from the closed position to the open position.
8. The lubrication system as recited in claim 1 wherein the dispenser valve is a normally closed valve such that lubricant flow is prevented through the dispenser line when the return valve directs flow to the reservoir.
9. The lubrication system as recited in claim 1 wherein the reservoir includes a tank, the tank being one of integral with the pump and fluidly connected with the pump.
10. The lubrication system as recited in claim 1 further comprising a manifold with a passage fluidly connected with the supply line and with the dispenser valve, the dispenser valve being connected with the manifold.
11. A method of operating a lubrication system for lubricating at least one movable machine component, the system including a lubricant reservoir, a dispenser line having an outlet for discharging lubricant on or within the machine component, a dispenser valve selectively permitting lubricant flow through the dispenser line, a supply line fluidly coupled with the reservoir and with the dispenser line, a return valve selectively permitting lubricant flow from the supply line to the reservoir, and a pump for pumping lubricant and through the supply line, the method comprising the steps of: monitoring a time of storage of a quantity of lubricant within the supply line; comparing the lubricant storage time with an estimated period of effectiveness of the quantity of lubricant; and operating the pump and opening the return valve when the storage period exceeds an estimated period of effectiveness of the quantity of lubricant or a predetermined portion of the estimated period of lubricant effectiveness so as to prevent degraded or ineffective lubricant from being dispensed on or within the machine component.
12. The method as recited in claim 11 further comprising the step of determining the estimated lubricant effectiveness period.
13. The method as recited in claim 12 wherein the lubrication system includes a sensor monitoring a property of the quantity of lubricant within the supply line and the step of determining the estimated lubricant effectiveness period includes receiving property information from the sensor and using the property information to determine the estimated lubricant effectiveness period.
14. A lubrication system for lubricating at least one movable machine component, the system comprising; a lubricant reservoir containing lubricant; a dispenser line having an outlet for discharging lubricant on or within the machine component; a dispenser valve selectively permitting lubricant flow through the dispenser line; a supply line fluidly coupled with the reservoir and with the dispenser line; a return valve selectively permitting lubricant flow from the supply line to the reservoir; a pump fluidly coupled with the supply line and configured to pump lubricant from the reservoir and through the supply line; and a control operatively connected with the pump and with the return valve, the control being configured to monitor a time after a quantity lubricant enters the supply line to determine a period of storage within the supply line and to operate the pump and the return valve such that the quantity of lubricant within the supply line flows out of the supply line and into the reservoir when the period of storage within the supply line of the quantity of lubricant exceeds an estimated period of effectiveness of the quantity of lubricant or a predetermined portion of the estimated lubricant effectiveness period so as to prevent degraded or ineffective lubricant from being dispensed on or within the machine component; wherein the control is an electronic controller having memory and a software program stored in the memory, the program being configured to monitor the lubricant storage period, to compare the storage time with the lubricant effectiveness period and to operate the pump and return valve when the when period of storage within the supply line of the quantity of lubricant exceeds the estimated period of effectiveness of the quantity of lubricant or the predetermined portion of the estimated period of lubricant effectiveness.
15. A lubrication system for lubricating at least one movable machine component, the system comprising; a lubricant reservoir containing lubricant; a dispenser line having an outlet for discharging lubricant on or within the machine component; a dispenser valve selectively permitting lubricant flow through the dispenser line; a supply line fluidly coupled with the reservoir and with the dispenser line; a return valve selectively permitting lubricant flow from the supply line to the reservoir; a pump fluidly coupled with the supply line and configured to pump lubricant from the reservoir and through the supply line; a control operatively connected with the pump and with the return valve, the control being configured to monitor a time after a quantity lubricant enters the supply line to determine a period of storage within the supply line and to operate the pump and the return valve such that the quantity of lubricant within the supply line flows out of the supply line and into the reservoir when the period of storage within the supply line of the quantity of lubricant exceeds an estimated period of effectiveness of the quantity of lubricant or a predetermined portion of the estimated lubricant effectiveness period so as to prevent degraded or ineffective lubricant from being dispensed on or within the machine component; and a sensor coupled with the supply line and with the control, the sensor being configured to sense a property of the quantity of lubricant within the supply line and the control being further configured to use lubricant property information from the sensor to determine the estimated lubricant effectiveness period.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The foregoing summary, as well as the detailed description of the preferred embodiments of the present invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there is shown in the drawings, which are diagrammatic, embodiments that are presently preferred. It should be understood, however, that the present invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
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DETAILED DESCRIPTION OF THE INVENTION
(9) Referring now to the drawings in detail, wherein like numbers are used to indicate like elements throughout, there is shown in
(10) Furthermore, the control 26 is operatively connected with the pump 24, with the dispenser valve 18 and with the return valve 22, and preferably includes an electronic controller 30 as described below. The control 26 is configured to operate the pump 24 and the return valve 22 such that a quantity of lubricant L.sub.Q within the supply line 20 flows out of or is purged from the supply line 20, through the return valve 22 and the return line 25, and back into the reservoir 12 when a period of storage T.sub.S within the supply line 20 of the quantity of lubricant L.sub.Q exceeds an estimated period of effectiveness P.sub.E of the quantity of lubricant L.sub.Q or a predetermined portion (e.g., , , 90%, etc.) of the estimated lubricant effectiveness period P.sub.E. Simultaneously or shortly thereafter, the pump 24 dispenses or pumps another, fresh quantity of lubricant L.sub.Q into the supply line 20 and the control 26 closes the return valve 22 when the degraded or expired quantity of lubricant L.sub.Q has been evacuated from the supply line 20, thereby retaining the fresh lubricant quantity L.sub.Q within the supply line 20. Preferably, the control 26 is also configured to periodically (e.g., once a day, once every five days, etc.) operate the pump 24 and open the return valve 22 to flush out the currently stored quantity of lubricant L.sub.Q and replenish the supply line 20 with a fresh quantity of lubricant L.sub.Q. Thus, the lubrication system 10 of the present invention prevents degraded or ineffective lubricant from being dispensed on or within the machine components 1 (e.g., bearings, gears, etc.).
(11) As used herein, the terms period of effectiveness P.sub.E and lubricant effectiveness period P.sub.E each mean a period of time during which a particular quantity of lubricant L.sub.Q remains at least generally capable of effectively lubricating a particular machine component 1. In other words, the period of effectiveness P.sub.E and lubricant effectiveness period P.sub.E each mean an estimated time interval from the point in time at which a fresh quantity of lubricant L.sub.Q has been dispensed into the supply line 20 to a point in time at which the particular lubricant quantity L.sub.Q will have degraded to the extent of becoming at least generally ineffective (or the effectiveness has diminished substantially) to lubricate the machine component 1. Clearly, the period of effectiveness or lubricant effectiveness period P.sub.E of lubricant within a supply line 20 should be substantially greater than the life of a quantity of lubricant within or on a machine component 1 that is operational or in use. In any case, as discussed below, the period of effectiveness P.sub.E is preferably determined from empirical data and varies due to the operational conditions within the supply line 20 (e.g., ambient temperature, lubricant pressure, etc.) and the material properties (e.g., rheological, chemical, etc.) of the particular lubricant.
(12) Referring particularly to
(13) Preferably, the control 26 is configured to determine or calculate the lubricant effectiveness period P.sub.E using both information from the sensors 22 and empirically-derived data stored within memory of the control 26. Such empirical data may be generated by measuring the time period between the point in time at which a quantity of fresh (i.e., unused) lubricant is provided or delivered into a supply line 20 until the point in time at which the particular quantity of lubricant has degraded to the extent of being generally ineffective to lubricate, or at least the lubrication effectiveness has diminished significantly, as discussed above. The data is preferably generated for each one of a plurality of different sets or combinations of operating conditions, such as different operating or ambient temperatures to which the supply line 20 is exposed, differing lubricant pressures within the supply line 20, and for any other relevant variable operating condition or parameter, and the data is stored within the control 26. Using such empirically-derived data stored within electronic memory, the control 26 is configured (i.e., by means of stored software, wiring, etc.) to determine or select the lubricant effectiveness period P.sub.E based upon information from the sensor(s) 28 at the time the quantity of lubricant L.sub.Q is delivered from the lubricant reservoir 12 into the supply line 20. However, the lubricant effectiveness period P.sub.E may be determined by any other appropriate means or may be a predetermined, constant value as discussed above.
(14) More specifically, the control 26 preferably includes an electronic controller 30, which has electronic memory and a software program stored in the memory. The controller software program is configured (i.e., by software code) to monitor the lubricant storage period T.sub.S, to compare the storage period T.sub.S with the lubricant effectiveness period P.sub.E and to operate the pump 24 and return valve 22, as described above and depicted in
(15) Preferably, the memory of the control 26 also includes stored information concerning the fluid supply line 20 (e.g., lubricant capacity, length, etc.), properties of the specific type of lubricant (preferably a type of grease), for example, rheological properties of the lubricant, empirically derived lubricant effectiveness periods P.sub.E within the supply line 20, and any other information that the control 26 utilizes to determine or calculate lubricant effectiveness period P.sub.E. Further, the control 26 is preferably either a separate master controller, as shown in
(16) Referring to
(17) Preferably, the valve actuator 34 is a solenoid 40 for displacing the closure element 38 between the closed and open positions and is operatively connected with the control 26, preferably through a bus line 39, such that the control 26 initiates displacement of the closure element 38 from the closed position to the open position. Further, the valve 22 preferably includes a biasing member 42, such as a spring, for returning the closure element 38 to the closed position when the solenoid 40 is deactivated. Although preferably formed as a normally-closed, solenoid actuated valve, the return valve 22 may be constructed as any other appropriate type of valve, such as for example, a rotatable ball valve, a motor-driven stem valve, etc., and the scope of the present invention is in no manner limited to any particular structure of the valve 22.
(18) Referring particularly to
(19) Referring now to
(20) It will be appreciated by those skilled in the art that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as generally defined herein and in the appended claims.