The present invention relates to a variable speed fan drive.
Current variable speed fan drive systems used in work vehicles such as agricultural tractors typically use a viscous drive on the system cooling fan. A hydraulically operated variable speed fan drive is described in U.S. Pat. No. 7,165,514, issued in January 2007 and assigned to the assignee of this application. This variable speed fan drive has a driven sheave and fan which are mounted on an auxiliary shaft on the engine. This variable speed fan drive has a driver sheave unit with a non-rotating axially movable piston operated by pressurized engine oil controlled by a solenoid operated valve. A rotating driver shaft extends through the piston and is non-rotatably connected to an axially fixed driver sheave and an axially movable driver sheave. There are several seals and ball bearings between the rotating shaft and the non-rotating piston. These seals and ball bearings can leak or wear out. Engine oil must continuously circulate to the bearings to provide lubrication. Engine oil can become dirty and can clog the control solenoid. Engine oil is also at low pressure, typically less than 5 bar, and this requires that the piston have a large pressure-responsive area. The driven sheave unit requires a large spring to apply enough tension to the belt to minimize belt slip and wear.
Accordingly, an object of this invention is to provide a variable speed fan drive system which requires fewer seals and bearings.
A further object of the invention is to provide such a variable speed fan drive system which is operated by high pressure hydraulic system fluid.
A further object of the invention is to provide such a variable speed fan drive system wherein the driving sheave unit is a stand-alone unit which can be pressure tested apart from an engine.
These and other objects are achieved by the present invention, wherein a variable speed fan drive is provided for a vehicle powered by an internal combustion engine. The fan drive has a driver variable sheave unit, a driven variable sheave unit and a belt engaging both the driver and driven variable sheave units. The driver variable sheave unit includes a driver shaft drivingly coupled to an engine output shaft, a first axially fixed half sheave mounted for rotation with the driver shaft, and a first axially movable half sheave member mounted for rotation with the driver shaft and movable axially on the driver shaft. The first axially movable half sheave member includes a belt engaging flange formed integrally with an axially movable piston member mounted for rotation with the driver shaft and movable axially in response to hydraulic pressure.
The driven variable sheave unit comprises a driven shaft having an end rotatably supported by bearings in a housing, a second axially fixed half sheave fixed to the driven shaft for rotation therewith, an second axially movable half sheave mounted on the driven shaft for rotation therewith, a spring retainer mounted on the driven shaft for rotation therewith, and a plurality of return springs mounted between the retainer and the second axially movable half sheave. The return springs are spaced apart from each other and spaced apart from an exterior surface of the driven shaft. The second axially movable half sheave is located between the second axially fixed half sheave and the return springs. The driven shaft has a member formed thereon which engages the spring retainer and holds the spring retainer on the driven shaft against a bias of the return springs. The spring retainer has spaced apart tabs which projecting therefrom, and a magnetic sensor is mounted on the housing for generating a speed signal as the tabs move past the sensor.
Referring to
A rotating axially fixed driver half sheave 30 is mounted for rotation with the driver shaft 24 and includes a central hub 32 held between the damper 22 and an inner end of the shaft 24. Driver half sheave 30 also includes an angled belt flange 34 which projects outwardly from the hub 32. The bolt bores 25 and screws 26 also extend through hub 32.
A rotating axially movable driver half sheave 40 is mounted for rotation with the driver shaft 24 and is axially movable with respect to the driver shaft 24. Movable driver half sheave 40 includes a hollow hub 42 and an angled belt flange 44 which projects outwardly from the hub 42. Hub 42 includes a larger diameter part 46 and a smaller diameter part 48. Hub parts 46 and 48 are slidable on driver shaft parts 23 and 21, respectively. Driver half sheave 40 and driver shaft 24 enclose a pressure chamber 50 which is sealed by seals 52 carried in grooves in hub part 48 and by seals 54 carried in grooves in hub part 46. Axially extending keys 56 are received by corresponding grooves 58 on an inner surface of hub part 46. As a result of the cooperation of the keys 56 and grooves 58, the half sheave 40 rotates with the driver shaft 24, but is axially slidable with respect to driver shaft 24.
A non-rotating union member 60 is received in the bore 27 of the rotating driver shaft 24 and encloses a chamber 62. An end 64 of a hydraulic line 66 is sealingly connected to the outer end of union member 60. A passage 68 extends through union member 60 and communicates pressurized hydraulic fluid from line 66 to chamber 62. Radial passages 70 in the driver shaft 24 communicates pressurized hydraulic fluid from chamber 62 to chamber 50. A belt 69 is received between and is driven by half sheave flanges 34 and 44.
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A rotating axially fixed driven half sheave 90 is mounted for rotation with the driven shaft 80 and includes a central hub 92 which is attached to the end of shaft 80 by bolts 91. Driven half sheave 90 also includes an angled belt flange 94 which projects outwardly from the hub 92. A fan spacer 15 is bolted to the end of hub 92.
A rotating axially movable driven half sheave 100 is mounted for rotation with the driven shaft 80 and is axially movable with respect to the driven shaft 80. Driven half sheave 100 includes a hollow hub 102 and an angled belt flange 104 which projects outwardly from the hub 102. Axially extending keys 106 are formed on the shaft 80 and are received by corresponding grooves 108 on an inner surface of hub 102. As a result of the cooperation of the keys 106 and grooves 108, the half sheave 100 rotates with the driven shaft 80, but is axially slidable with respect to driven shaft 80. Belt 69 is engaged by flanges 94 and 104.
A hollow annular spring retainer 110 is mounted on the shaft 80, and has annular hub 111 with an inner frustoconical surface 112 which engages the shoulder surface 85 and which operates to center the spring retainer 110 on the shaft 80. Retainer 110 includes a plurality (such as six) of spring holding cups 114 spaced apart and positioned radially outwardly from the hub 111. Each cup 114 holds an end of a return spring 120. The other end of each return spring 120 engages movable driven half sheave 100, and is biased to urge driven half sheave 100 towards fixed half sheave 94. A plurality of legs 116 extend axially away from an outer peripheral edge of each cup 114.
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While the present invention has been described in conjunction with a specific embodiment, it is understood that many alternatives, modifications and variations will be apparent to those skilled in the art in light of the foregoing description. Accordingly, this invention is intended to embrace all such alternatives, modifications and variations which fall within the spirit and scope of the appended claims.