COOLING FAN ASSEMBLY
20240352943 ยท 2024-10-24
Inventors
Cpc classification
F04D29/329
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/384
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/166
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fan assembly includes two or more axial flow fans rotatably mounted on a support structure. The fans are of the adjustable pitch type, i.e., each fan includes a pitch adjustment mechanism that is actuatable by axially shifting a positioning rod extending outward from the hub of the fan. The assembly further includes a control member and a plurality of adjustment mechanisms coupled respectively to the positioning rods and to the control member in such a way that the position of the control member determines the axial position of the positioning rods and thereby the pitch of the blades of all the fans of the assembly. A single actuator is configured to actuate a movement of the control member.
Claims
1. A cooling fan assembly comprising: a support structure; a plurality of cooling fans, each fan comprising: an axle that is rotatable with respect to the support structure; a hub that is uniform with or fixed to the axle; a set of blades extending outward radially with respect to the hub, wherein a pitch of the blades is adjustable by pivoting the blades about respective radial axes; a mechanism mounted in the hub, for simultaneously adjusting the pitch of the blades; and a positioning rod oriented and movable in an axial direction of the fan, partially extending out of the hub, and coupled to the mechanism in such a way that an axial position of the positioning rod determines the pitch of the blades of the fan; an actuator; a control member that is movable relative to the support structure, and that is furthermore coupled to the actuator, so that the actuator is configured to drive a movement of the control member; and a plurality of adjustment mechanisms, one for each fan, wherein each of the plurality of adjustment mechanisms is coupled to the positioning rod of a respective one of the plurality of cooling fans and to the control member, in such a way that movement of the control member simultaneously sets the axial positions of the positioning rods of the plurality of cooling fans and thereby the pitches of the blades of the plurality of cooling fans.
2. The cooling fan assembly according to claim 1, wherein the control member is an elongate member that is either rotatable about its central axis or axially displaceable.
3. The cooling fan assembly according to claim 2, wherein the control member is a control rod that is rotatable about its central axis, and wherein the actuator is configured to drive the rotation of the control rod.
4. The fan assembly according to claim 3, wherein each of the plurality of adjustment mechanisms is a crank mechanism, and wherein each crank mechanism comprises a crank arm and a connecting arm, the connecting arm being coupled to the positioning rod of a respective one of the plurality of cooling fans, so that the crank mechanism is configured to drive the axial movement of the positioning rod of the respective one of the plurality of cooling fans by rotating the crank arm.
5. The fan assembly according to claim 3, wherein the control rod comprises a lever and wherein the actuator is coupled to the lever.
6. The fan assembly according to claim 5, wherein the actuator is a motor comprising a rotatable outlet axle and wherein the axle is coupled to the lever by a crank mechanism.
7. The fan assembly according to claim 6, wherein the motor is an electric motor.
8. The fan assembly according to claim 3, wherein: the control rod is a main control rod that is directly coupled to one or more of the plurality of adjustment mechanisms configured to displace the positioning rods of one or more first fans of the plurality of cooling fans, the fan assembly further comprises an additional control rod that is directly coupled to one or more further ones of the plurality of adjustment mechanisms configured to adjust the blades of one or more second fans of the plurality of cooling fans placed at a different height level than the one or more first fans, and the main control rod and the additional control rod are coupled by a mechanical transmission configured so that movement of the main control rod drives a movement of the additional control rod.
9. The fan assembly according to claim 3, wherein the control rod is axially displaceable along its central axis, and wherein the actuator is configured to drive an axial movement of the control rod.
10. The fan assembly according to claim 9, wherein the actuator is configured to drive the axial movement in one direction only, and wherein movement in the opposite direction is actuated by one or more springs.
11. The fan assembly according to claim 1, wherein the control member is a single member to which the plurality of adjustment mechanisms is directly coupled, in a sense that each of the plurality of adjustment mechanisms comprises a component that is fixed to or uniform with the control member.
12. The fan assembly according to claim 1, wherein a phase difference between the pitch of the blades of at least two of the plurality of cooling fans is different from zero.
13. The fan assembly according to claim 1, wherein at least two of the plurality of cooling fans have different diameters.
14. A work machine comprising an internal combustion engine equipped with a radiator and with a cooling fan assembly according to claim 1, arranged to produce a flow of air for cooling a liquid coolant flowing through the radiator.
15. The work machine according to claim 14, wherein the work machine is a combine harvester, a forage harvester, a cotton harvester or a sugar cane harvester.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0015] Embodiments will now be described with reference to the drawings. The detailed description is not limiting the scope of the invention, which is defined only by the appended claims.
[0016]
[0017] Each of the cooling fans 2 comprises a rotation axle 4 configured to be coupled to a drive configuration generally known in the art, for example a belt drive, or a set of electric motors, preferably but not necessarily configured to drive the rotation of the fans 2 at the same rotational speed. The axles 4 are rotatably mounted on a support structure (not shown), which may be the housing of the engine or a separate support mounted on the chassis of the work machine.
[0018] Each fan 2 comprises a hub 5, with fan blades 6 extending radially outward from the hub. The fan blades 6 are coupled to a mechanical system that is present inside the hub 5, for adjusting the pitch of the blades 6, i.e. the angular position of the blades about a radially oriented axis. To this aim, each blade 6 is mounted on a rotatable cylinder, the rotation of which is controlled by said mechanical system. The system may for example be a mechanism involving levers and a control disc, as disclosed in U.S. Pat. No. 3,169,582. The mechanism is actuated by changing the axial position of a non-rotatable positioning rod 7 mounted coaxially with respect to the rotation axle 4 of the fan. The range of the blade pitch is preferably large enough to enable the reversing of the flow direction of air flow generated by the fans 2, when the pitch is changed through its full range.
[0019] The positioning rod 7 of each fan 2 is adjustable through an adjustment mechanism 9. In the embodiment shown, this is a crank mechanism comprising a rotatable crank arm 10 and a connecting arm 11. The connecting arm 11 is rotatably coupled to the crank arm 10 at one end of said connecting arm 11 and to the positioning rod 7 at the other end, so that a rotation of the crank arm 10 about a fixed rotation axis 12 (i.e. fixed relative to the support structure) is translated into an axial displacement of the positioning rod 7, and hence to an adjustment of the pitch of the blades 6.
[0020] It is seen furthermore that the crank arms 10 of the three crank mechanisms 9 are aligned and interconnected by a control rod 15. The control rod 15 is rotatably mounted with respect to the support structure and in the embodiment shown, passes through a front portion of the housings 3. The central axis 12 of the control rod 15 coincides with the rotation axes of the crank arms 10 of the three crank mechanisms. The three crank arms 10 are fixed to the control rod 15, so that a rotation of the control rod 15 about its central axis 12 actuates a simultaneous rotation of the crank arms 10 and thereby a simultaneous adjustment of the pitch of the blades 6 of the three fans 2.
[0021] The control rod 15 is rotatably supported at at least two support points, for example at its two extremities, by suitable support means (not shown) such as rotary bearings or the like mounted in a fixed position relative to the support structure onto which the fans are mounted.
[0022] A lever 16 is attached to the control rod 15 at one extremity thereof. To illustrate the function of the lever 16, reference is made to
[0023] As illustrated in
[0024] This solution is technically straightforward and less expensive than the current control systems for setting the pitch of multiple blades. The pitch of all the blades is adjustable through a single actuator and a reliable mechanical connection comprising, in the embodiment shown, a plurality of crank mechanisms 9 and a control rod 15. No hydraulic, pneumatic or electrical connections directly coupled to the fans are required.
[0025] The invention is however not limited to the embodiment illustrated in
[0026] The rotation of the control rod 15 could be actuated by other means than the lever 16. Any suitable transmission could be mounted between the output axle 14 of actuator 17 and the control rod 15 for driving the rotation of the latter, for example a gear transmission or a belt drive. Another alternative is to place the actuator 17 at the same height as the control rod 15 and to directly couple said control rod 15 to the output axle 14 of the actuator 17.
[0027] Instead of the crank mechanisms 9 comprising the crank arms 10 and connecting arms 11, any other suitable mechanical adjustment mechanism may be used for displacing the positioning rods 7, for example a rack and pinion drive including a circular gear (pinion) coaxially fixed to the control rod 15 and a linear gear (rack) for transferring the rotation of the control rod 15 into an axial displacement of the positioning rod 7. Another transmission could include a worm drive with a worm wheel and a worm.
[0028] According to another embodiment of the invention, the control rod 15 is not rotatable but it is displaceable axially in the direction of its longitudinal central axis 12. Such an embodiment is illustrated in
[0029] The axially displaceable rod 15 (or cable/wire in alternative embodiments) is coupled to adjustment mechanisms 34, represented symbolically by squares in
[0030] Both
[0031] The mechanism illustrated in
[0032] In the embodiment of
[0033] An variant of the embodiment of
[0034]
[0035] According to embodiments of the invention and as already illustrated in
[0036] The adjustment mechanisms 9 or 34, for example the crank mechanisms 10,11 for adjusting the positioning rods 7 of the fans may have different dimensions, or different types of adjustment mechanisms may be used for different fans, in order for example to realizeby the same rotation or by the same axial displacement of the control rod 15-a larger change in the blade pitch in one fan compared to another fan of the assembly, enabling a different air flow adjustment on different areas of the radiator.
[0037] The phase difference between the angular blade positions of different fans may be constant or variable depending on the exact configurations in terms of the types and dimensions of the adjustment mechanisms 9 or 34. Said phase difference may be zero so that all the fans always deliver the same air flow regardless of the position of the control member 15. Alternatively, a non-zero phase difference may be deliberately applied between two or more fans, enabling a difference in air flow rate. This also enables a sequential reversing of the flow direction when the fans are fully reversible, i.e. the fans sequentially reverse their flow direction, when the pitch of the blades is changed through its full range.