COOLING MODULE OF A VEHICLE AIR CONDITIONING SYSTEM, AND ASSEMBLY FOR COOLING A MOTOR VEHICLE ENGINE WITH A COOLING MODULE OF THIS TYPE
20170334283 · 2017-11-23
Assignee
Inventors
Cpc classification
F01P2003/187
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P2005/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K11/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60K11/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a cooling module (10) of a vehicle air conditioning system, in particular for trucks, having a fan (12) which has an air inlet (14) and an air outlet (16) and generates an air flow in an air flow direction (18) from the air inlet (14) to the air outlet (16), a condenser (20) which can be flowed through bidirectionally for liquefying a refrigerant of the vehicle air conditioning system, which condenser (20) has an air flow cross section (A.sub.1) and is arranged so as to be adjacent to the air outlet (16) of the fan (12), wherein the air flow cross section (A1) has a first part cross section (22) and a second part cross section (24) which is different from the first part cross section (22), wherein the air outlet (16) of the fan (12) is assigned exclusively to the first part cross section (22) and loads the latter in the air flow direction (18) with the entire air flow of the fan (12), and wherein the second part cross section (24) can be flowed through during operation of the fan (12) selectively in the air flow direction (18) of the fan (12) and counter to the air flow direction (18) of the fan (12). Furthermore, the invention also relates to an assembly (28) for cooling a motor vehicle engine (30) with a cooling module (10) of this type.
Claims
1. A cooling module of a vehicle air conditioning unit, for trucks, comprising: a fan which has an air inlet and an air outlet and generates an air flow in an air flow direction from the air inlet to the air outlet ; and a condenser, through which the air flow can pass bi-directionally, for liquefying a refrigerant of the vehicle air conditioning unit, said condenser having an air flow cross section and being arranged adjacent to the air outlet of the fan, wherein the air flow cross section has a first partial cross section and a second partial cross section which is different from the first partial cross section, wherein the air outlet of the fan is exclusively assigned to the first partial cross section and loads the latter in the air flow direction with the entire air flow of the fan, and wherein, during operation of the fan, the flow can pass through the second partial cross section optionally in the air flow direction of the fan and counter to the air flow direction of the fan.
2. The cooling module as claimed in claim 1, wherein the fan is a fan driven by an electric motor.
3. The cooling module as claimed in claim 1, wherein the condenser has a size in the air flow direction , where 10 mm≦t.sub.K<16 mm.
4. The cooling module as claimed in claim 1, wherein the fan and the condenser are accommodated in a module frame and form a pre-assembled unit with the module frame.
5. The cooling module as claimed in claim 4, wherein the module frame has projections for mounting the cooling module on an engine radiator, wherein the projections extend transversally with respect to the air flow direction.
6. The cooling module as claimed in claim 4, wherein the module frame has an air duct in which the fan is fastened, wherein the air duct defines the air inlet and the air outlet of the fan.
7. The cooling module as claimed in claim 4, wherein the module frame is a plastics injection molded part.
8. The cooling module as claimed in claim 1, wherein the condenser has a substantially rectangular air flow cross section with a length and a width, and the fan has at least one axial ventilator with a diameter, wherein the following applies 0.85≦D.sub.1/1≦0.95, and/or 0.85≦D.sub.b/b≦0.95, wherein D.sub.1 and D.sub.b correspond to the sum of the diameters D of all of the axial ventilators of the fan which are arranged next to one another in the direction of the length or width of the condenser.
9. The cooling module as claimed in claim 1, characterized in that the air inlet of the fan is adjacent to a radiator grille of the vehicle, in particular is tightly connected to the radiator grille.
10. The cooling module as claimed in claim 1, wherein the air outlet of the fan is adjacent to and tightly connected to the condenser.
11. An assembly for cooling a motor vehicle engine, comprising: a radiator ventilator which has a ventilator inlet and a ventilator outlet and generates an air flow in an air flow direction from the ventilator inlet to the ventilator outlet; an engine radiator, through which the air flow can pass, for cooling a coolant for the motor vehicle engine, said engine radiator having an air flow cross section and being arranged adjacent to the ventilator inlet of the radiator ventilator; and a cooling module as claimed in claim 1, wherein the condenser of the cooling module is arranged upstream of the engine radiator and is adjacent thereto.
12. The assembly as claimed in claim 11, wherein the condenser of the cooling module has a distance from the engine radiator in the air flow direction, wherein the following applies: 8 mm≦d≦20 mm.
13. The assembly as claimed in claim 11, wherein a mounting element is provided which connects the radiator ventilator to the engine radiator.
14. The assembly as claimed in claim 11, wherein the air flow cross section of the engine radiator has a first partial cross section and a second partial cross section which is different from the first partial cross section, wherein the first partial cross section is covered by the cooling module and the second partial cross section is freely adjacent to a radiator grille of the vehicle.
15. The assembly as claimed in claim 11, wherein the air flow cross section of the engine radiator is at least twice as large as the air flow cross section of the condenser.
Description
[0028]
[0029] In the present exemplary embodiment, the fan 12 comprises two axial ventilators and is driven by an electric motor, wherein the fan 12 provides a maximum static pressure difference of at most 300 Pa.
[0030] The air flow cross section. A.sub.1 of the condenser 20 has a first partial cross section 22, which is illustrated shaded, and, outside the shaded region, a second partial cross section 24 which is different from the first partial cross section 22, wherein the air outlet 16 of the fan 12 is assigned exclusively to the first partial cross section 22 and loads the latter in the air flow direction 18 with the entire air flow of the fan 12, wherein, during operation of the fan 12, a flow can pass through the second partial cross section 24 optionally in the air flow direction 18 of the fan 12 and counter to the air flow direction 18 of the fan 12.
[0031] The condenser 20 has a size t.sub.K in the air flow direction 18, where t.sub.K≦20 mm, in particular 10 mm 16 mm. It has turned out that a size of this order of magnitude constitutes a particularly good compromise between smallest, possible flow resistance and greatest possible cooling power.
[0032] According to
[0033] The module frame 26 s in particular a plastic injection molded part which can be produced at reasonable cost and can be adapted with little outlay in terms of manufacturing to different boundary conditions.
[0034] The module frame 26 has projections 48 for mounting the cooling module 10 on the engine radiator 38 (also see
[0035] Furthermore, the module frame 26 has a circular-cylindrical air duct 42 in which the fan 12 is fastened, wherein the air duct 42 defines the air inlet 14 and the air outlet 16 of the fan 12. In the present exemplary embodiment, the fan 12 is fastened by a fan ring 44 in the air duct 42 of the module frame 26 both in a form-fitting manner and by a screw connection (also see
[0036] The condenser 20 has refrigerant collecting lines 27 via which said condenser is fixedly connected to the module frame 26, in particular is screwed or clamped thereto (also see
[0037]
[0038] Furthermore, a mounting element 52 is provided which connects the radiator ventilator 32 to the engine radiator 38. In particular, the mounting element 52 surrounds the air flow cross section A.sub.2 of the engine radiator 38 and tapers in a funnel-shaped manner toward the radiator ventilator 32, and therefore the radiator ventilator 32 loads the entire air flow cross section A.sub.2 on the suction side.
[0039] According to
[0040] The assembly 28 for cooling a motor vehicle engine 30 also comprises the cooling module 10 which differs from the cooling module 10 according to
[0041] The condenser 20 of the cooling module 10 is arranged, according to
[0042]
[0043] The condenser 20 of the cooling module 10 has a distance d from the engine radiator 38 in the air flow direction 18, wherein the following applies: d>6 mm, in particular 8 mm ≦d≦20 mm. This distance d suffices in order t o distribute the air flow, which is conveyed in the air flow direction 18 through the first partial cross section 22 of the condenser 20, downstream of the condenser 20 (arrow 60) and to permit a back flow counter to the air flow direction 18 via the second partial cross section 24 of the condenser 20 (arrow 62). The resultantly reduced flow resistance of the condenser 20 contributes to a particularly energy-efficient operation of the cooling module 10 when the motor vehicle engine 30 is switched off.
[0044] With a comparison of
[0045]
[0046] In addition, 0.75≦D.sub.1/l ≦1, in particular 0.85≦D.sub.1/l≦0.95, also applies to the cooling module 10 according to
[0047] According to
[0048] If the air flow cross section A.sub.1 of the condenser 20 is selected in such a manner that a satisfactory cooling power of the vehicle air conditioning unit arises both when the motor vehicle engine 30 is running and when the latter is switched off, a sufficient cooling of the motor vehicle engine 30 during the full load operation of the motor vehicle can also be ensured via the indicated ratio of sizes of the air flow cross sections A.sub.1, A.sub.2.
[0049]
[0050] In addition, the air duct 42 also defines the air outlet 16 of the fan 12 and is adjacent in this region to the condenser 20. In particular, the air duct 42 is tightly connected in the region of the air outlet 16 to the condenser 20.