COOLANT PUMP FOR A VEHICLE
20220228591 · 2022-07-21
Inventors
Cpc classification
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2031/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0673
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2005/125
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A Pump for recirculating a cooling fluid of a vehicle comprises a pump body, which is fixed during use; an impeller mounted on a driven shaft; with a friction coupling of the electromagnetic type, made of a fixed electromagnet, a rotor and an armature. A pulley for taking up a rotational movement is connected to a movement source such as a shaft of the combustion engine of the vehicle and mounted on an outer bearing keyed onto the pump body. An electric motor is provided for driving the driven shaft independently of the movement take-up pulley; and a bell member is fastened to an end of the driven shaft opposite to that which carries the impeller.
The friction coupling is designed to rotationally couple/decouple the pulley and bell member and the electric motor is arranged inside the bell member on the opposite side to the impeller relative to friction coupling.
Claims
1.-17. (canceled)
18. Pump for recirculating a cooling fluid for a vehicle, comprising: a pump body (11), which is fixed during use; an impeller (1) mounted on a driven shaft (2); at least one friction coupling (20) of the electromagnetic type, comprising a fixed electromagnet (22), a rotor (21;121) and an armature (23); movement take-up means (21c;121c) for taking up a rotational movement, configured to be connected to a movement source such as a shaft of the combustion engine of the vehicle; said movement take-up means (21c) being mounted on an outer bearing (40) keyed onto the pump body (11); an electric motor (50) for driving the driven shaft (2) independently of the movement take-up means (21c; 121c); a bell member (14;153) fastened to an end of the driven shaft opposite to that which carries the impeller, wherein the friction coupling is designed to rotationally couple/decouple the movement take-up means (21c;121c) and the bell member (14;153); wherein said electric motor (50) is arranged inside the bell member (14) on the opposite side to the impeller (1) relative to the friction coupling (20); and wherein said movement take-up means (21c;121c) are formed on an outer circumferential edge of a shaped circular ring (21a;121a) which forms part of said rotor (21) and are arranged in a position radially more outer lying than the electromagnet (22) and/or the armature (23) of the friction coupling.
19. Pump according to claim 18, wherein said movement take-up means comprise a pulley (21a) which is formed on the outer circumferential edge of the circular ring (21a) and is suitable for coupling with a corresponding movement transmission belt (3).
20. Pump according to claim 18, wherein the movement take-up means (21c) are arranged in a position which is radially more outer lying than the bell member (14;153).
21. Pump according to claim 18, wherein the armature (23) of the friction coupling is axially arranged on the opposite side of the electromagnet (22) to the pump impeller and is connected to the bell member (14;153).
22. Pump according to claim 18, wherein said rotor (21;121) also forms an element for closing the magnetic flux generated by the electromagnet and/or wherein said rotor (21;121) includes a seat (21b) inside which the fixed electromagnet (22) is housed.
23. Pump according to claim 18, wherein said bell member (14) is provided with a resilient lamina (24) connected to the armature of the electromagnetic friction coupling.
24. Pump according to claim 18, wherein the movement take-up means (21c) are at least partially arranged axially overlapping the electromagnet (22).
25. Pump according to claim 24 wherein the movement take-up means (21c) are arranged concentrically with the electromagnet (22).
26. Pump according to claim 18, wherein the electric motor (50) and/or the bell member (14) is/are arranged in a position axially on the outside of the movement take-up means (21c).
27. Pump according to claim 18, wherein the movement take-up means (121c) are at least partially arranged axially overlapping the armature (23) and optionally the bell member (14;153).
28. Pump according to claim 18, wherein the circular ring (121a), on the outer circumferential edge of which the movement take-up means are formed, projects axially towards the end of the driven shaft opposite to the impeller-carrying end, fastened to the bell member (14;153), from a body of the rotor (121) mounted on the outer bearing (40).
29. Pump according to claim 18, wherein the electric motor (50) is of the brushless or asynchronous type.
30. Pump according to claim 18, wherein the electric motor (50) has an electric rotor (53) connected to the bell member (14) for rotational operation thereof and/or wherein the electric rotor and the bell member (153) are formed as a single body made of plastomagnetic material.
31. Pump according to claim 18, comprising two independent power supply circuits, i.e. a first circuit (52a) for the electric motor (50) and a second circuit (52a) for the electromagnetic coupling (20).
32. Pump according to claim 18, wherein the electric motor (50) has a single stator winding or the electric motor (50) comprises at least one pair of windings on the poles of the stator which are connected in cascade to a drive (70) which controls the electric motor.
33. Pump according to claim 32, characterized in that the drive (70) which controls the electric motor comprises a twin-section configuration with a CPU (71) which controls a first driver (72a) and a second driver (72b) for driving a respective first bridge (73a) and second bridge (73b) for controlling respective different pairs of windings of the electric motor.
34. Pump according to claim 18, wherein a drive (70) for the electric motor is located within the volume of the bell member (14).
Description
[0017] Further details may be obtained from the following description of non-limiting examples of embodiment of the subject of the present invention provided with reference to the attached drawings in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] As shown in
[0024] Sealing means, in particular a sealing gasket 12, coaxial with the shaft 2, are arranged inside the pump body 11.
[0025] The shaft 2 of the impeller is designed to rotate with respect to the pump body 11, in particular by means of internal bearings 13, on the inner ring of which the said shaft 2 is keyed.
[0026] On the outside of the pump body 11 there is keyed an outer bearing 40, the outer ring 40a of which is integral with a suitably shaped circular ring 21a, the outer circumferential edge of which has, formed thereon, movement take-up means, in the example in the form of a pulley 21c, suitable for coupling with a belt 3 for taking up the movement from the shaft of the combustion engine and transmission to the ring 21a itself, generating the rotational movement for the shaft 2 of the pump.
[0027] Since the pulling force of the belt 3 is transmitted onto the outer bearing 40 it is possible to limit the size of the inner bearings 13 which are not subject to dynamic loads, thus increasing the working life and limiting the overall dimensions.
[0028] The circular ring 21a forms part of the rotor 21 of an electromagnetic coupling 20 which comprises a fixed electromagnet 22 housed inside a corresponding seat 21b of the rotor 21 itself, and an armature 23 arranged facing the electromagnet 22 on the opposite side thereto relative to the impeller 1.
[0029] The armature 23 is connected to a resilient recall lamina 24 in turn fixed to a bell member 14 to be rotated (described more fully below) and designed to allow an axial displacement of the armature, but prevent it from performing relative rotational movements with respect to the said bell member.
[0030] The rotor 21 may be provided with through-openings in the axial direction for defining the path of the magnetic flow able to determine the force of attraction of the armature 23.
[0031] With this coupled arrangement, the armature 23 is able to perform movements in the axial direction towards/from the rotor 21, being prevented from performing a relative rotation with respect to the bell member 14 when the electromagnet 22 is energized or de-energized.
[0032] As shown in
[0033] The connection between bell member and shaft is performed using conventional means 14a (not described in detail).
[0034] As shown, the electric motor 50, which is preferably of the brushless or asynchronous type, is arranged in a position axially on the outside of the electromagnet 22. The electromagnetic coupling 20 is preferably arranged axially between the pump impeller and the electric motor.
[0035] As shown, the pulley 21c which forms the movement take-up means is formed on the outer edge of a circular ring of the rotor 21, radially on the outside of the seat 21b of the electromagnet 22. In this embodiment, the pulley 21c is also situated radially more outer lying than both the armature 23 and the bell member 14.
[0036] Preferably, the movement take-up means, in particular the pulley 21c and the electromagnetic coupling, in particular at least the electromagnet 22, are arranged concentrically. With such a configuration it is possible to ensure the maximum freedom for design of the dimensions (including the radial dimensions) of the bell member 14 and the electric motor 50, in particular when the movement take-up means are arranged in an axially outer position with respect to the said bell member 14 and optionally the armature 23 (and not arranged above them).
[0037] The electric power supply for the motor may be provided for example by means of a cable 52 connected to an energy source, such as an electric power supply for the engine.
[0038] Independently of the power supply for the motor 50, a second power supply for energizing the electromagnet via wires 52a is provided.
[0039] With this configuration the operating principle of the pump is as follows:
A) when the electromagnet 22 is energized (
[0040] B) when the electromagnetic 22 is de-energized (
[0041] C) if, in the idle condition of the shaft 2, a rotation of the impeller 1 with an independent number of revolutions, for example less than that determined by the rotor 21b of the electromagnetic coupling 20, is required, the electric motor 50 is powered so that the movement of the electric rotor 53 causes rotation of the bell member 14 and therefore the shaft 2 at the desired speed of rotation suitable for determining recirculation of the fluid which is actually required.
[0042] In a first embodiment, the electric motor is designed with a single winding on the poles of the stator, said form being advantageous if the amount of material used and the costs are to be kept to a minimum.
[0043] According to a further embodiment it is envisaged that the electric motor 50 comprises at least one pair of windings on the poles of the stator which are connected in cascade to a drive 70 which controls the motor which may for example a brushless or asynchronous motor.
[0044] The drive 70 may comprise in turn a twin-section configuration with a CPU 71 which controls a first driver 72a and a second driver 72b for driving a respective first bridge 73a and second bridge 73b; in this way it is possible to provide a configuration known by the term “fail-safe” such that, in the event of malfunctioning or breakage of one of the windings and/or one of the sections of the drive 70, the other winding nevertheless becomes operative, ensuring the movement of the impeller 1 and therefore recirculation of the cooling fluid for the combustion engine.
[0045] As shown, the drive may be provided on the outside of the motor (
[0046] It is also envisaged that the two windings may comprises a different number of polarities for providing different driving torques: for example a high torque for normal operation and low torque for emergency fail-safe operation.
[0047] In any case a fail-safe function may be always ensured by an independent drive via an electric motor or electromagnetic coupling connected to different movement take-up means.
[0048] In preferred embodiments, a preferred example of which is shown in
[0049] In these embodiments, the movement take-up means 121c may be extended so as to be arranged at least partially above the bell member 14 and optionally also the electric motor 50.
[0050] In greater detail, the shaped circular ring 121a, on the outer circumferential circular edge of which the movement take-up pulley 121c is formed, is composed at least partly by a projecting coaxial extension of the rotor 121 of the coupling; namely, the rotor comprises a body 121 which is keyed onto the outer bearing 40 (and includes the seat 122 for the electromagnet) and from which at least a part of the circular ring 121a projects axially in the direction of the end of the driven shaft 2 fastened to the bell member 14.
[0051] With this configuration, the movement take-up means may be arranged axially at least partly above the armature 23 and optionally also the bell member 14, this allowing a great freedom to increase the axial dimensions of the movement take-up means and therefore increase the pulling force of the belt 3 without increasing the overall axial dimensions of the pump; in this way a space between the belt edge 3 and the end of the driven shaft 2 fastened to the bell member 14 is reduced.
[0052] As shown in
[0053] Such a greater volume allows greater freedom to design the dimensions of the outer bearing 40 and/or the electromagnetic coupling, allowing optimum definition of the transmittable torque value of the coupling and/or preventing any constructional complications (e.g. due to welded eyelets). It will be clear to the person skilled in the art that in this configuration the movement take-up means 121c could also be arranged radially more inner lying than the electromagnet 22 of the friction coupling.
[0054]
[0055] In particular, the rotor/bell member 153 has a body formed as a single pressed part, comprising a hollow cylinder coaxial with the driven shaft 2 and a circular rear closing plate fastened to the said shaft; said body is made, in particular by means of injection-moulding, of a plastomagnetic material consisting essentially of a plastic binder and at least 50%, preferably at least 80%, more preferably at least 90%, 93%, 95% or 99% by weight of a ferromagnetic metal which can be magnetized in a permanent manner, such as ferrite, neodymium or samarium cobalt. The body formed as one piece is magnetized with Halbach magnetization so as to reproduce inside the hollow cylinder, which forms part of an electric rotor, a permanent magnetic field with at least two magnetic poles and on the outside of the hollow cylinder a substantially zero magnetic field.
[0056] The plastic binder may be a polyamide, preferably PA6, PA12, PA66 or PPS. The single-piece body is for example injection-moulded from a preform of the plastomagnetic material. The magnetic field inside the hollow cylinder may for example have at least 2, at least 4 or at least 8 magnetic poles arranged angularly equidistant on the circumferential extension of the internal volume of the cylinder. The magnetic poles of the field of the rotor may be inclined at a predefined skew angle, for example of 20°.
[0057] As shown in
[0058] As shown, the single body made of plastomagnetic material may also comprise a circumferential radial base, to which the armature of the electromagnetic coupling is connected, in a manner similar to the bell member 14 described above.
[0059] An example of a method for forming an external rotor 153 made of plastomagnetic material may for example comprise the following steps: [0060] preparation of a preform, for example a ball, made of a plastomagnetic material consisting essentially of at least 50%, preferably at least 80%, more preferably 90%, even more preferably at least 93%, 95% or 99% by weight of a permanently magnetizable metal, in particular ferrite or neodymium or samarium cobalt, and, for the remaining part, of a plastic binder, in particular a polyamide, preferably PA6, PA12, PA66 or PPS; [0061] moulding, preferably by means of injection, the preform inside a mould so as to form a rotor body comprising a hollow cylinder extending around a longitudinal axis and closed by a circular plate at one of its two bases; [0062] magnetization of at least the hollow cylinder of the body so as to provide a Halbach array which produces a permanent magnetic field of the rotor which has at least two magnetic poles in the internal volume of the hollow cylinder and is substantially zero on the outside thereof.
[0063] It is therefore clear how with the pump according to the invention it is possible to obtain effective recirculation of the cooling fluid for vehicles which may be varied depending on the actual requirement by means of the alternative operation by an external movement source, such as the combustion engine, or an auxiliary electric motor, while keeping the overall axial dimensions small owing to the particular arrangement of the rotational movement take-up means which are designed for connection to the combustion engine itself and are arranged between the impeller and the bell member and radially more outer lying than the electromagnet, the armature and optionally the bell member and the electric motor, so that the definition of the dimensions during the design stage of each drive may also be adapted to the actual cooling requirement of the vehicle while keeping the overall axial dimensions compact.
[0064] In addition to the above, the small radial size of the pulley, which incorporates also the rotor function of the electromagnetic coupling, makes the device, and therefore the pump, suitable also for vehicles with engines which run at a low number rpm, but require a high rotational speed of the cooling pump. Since the pulley extends in the axial direction from the rotor body it is also advantageously possible to increase the pulling force of the belt and/or gain volume for other components of the pump, without increasing the overall axial dimensions.
[0065] In addition, the pump according to the invention ensures the rotation of the impeller 1 also in the case of electrical failure of either one of the two independent power supply circuits, i.e. of the motor or the electromagnetic coupling, ensuring the recirculation of the cooling fluid (“fail-safe mode).
[0066] It is also envisaged that, when the electromagnet 122 is de-energized, the pump may be operated by the electric motor 50: [0067] at a slow speed when the combustion engine has a high number of revolutions; and [0068] with a suitable speed also when the combustion engine is not running, so as to ensure recirculation and therefore cooling of the combustion engine also in the case of temporary stoppages such as stop-and-go conditions in the vicinity of traffic lights.
[0069] A further advantageous effect of the structure according to the invention consists in the absence of radial loads, due to the pulling force of the belt 3, acting on the bearings supporting the impeller shaft, said absence helping increase the working life of the bearings and reducing the risks of malfunctioning.
[0070] Although described with reference to a circuit for cooling a vehicle combustion engine, it is envisaged that the pump according to the invention may perform the recirculation of a fluid for cooling also other secondary or auxiliary circuits of the vehicle, by deriving the movement where possible also from sources other than the drive shaft.