HEAT PUMP
20240093918 ยท 2024-03-21
Assignee
Inventors
Cpc classification
F25B2500/01
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B30/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A heat pump includes a compressor that is connected via two refrigerant-conveying fluid lines to a heat pump component through which refrigerant flows, wherein each fluid line has a longitudinal axis, wherein an imaginary direction vector which coincides with the longitudinal axis points, on the route between the compressor and the heat pump component, at least once in a different direction to an imaginary starting direction vector which begins at the compressor, where it likewise coincides with the longitudinal axis, wherein the longitudinal axis extends in a space having three imaginary, mutually perpendicular planes. The fluid line is shaped such that the direction vector, on the route between the compressor and the heat pump component, and with respect to all three planes, extends so as to be rotated by an angle of more than 180? relative to the starting direction vector at least once.
Claims
1. A heat pump, comprising a compressor (1) which is configured to be connected via two refrigerant-conveying fluid lines (2) to a heat pump component (3) through which refrigerant flows, wherein each fluid line (2) has a longitudinal axis (2.1), wherein an imaginary direction vector (4.1) which coincides with the longitudinal axis (2.1) points, on the route between the compressor (1) and the heat pump component (3), at least once in a different direction to an imaginary starting direction vector (4.0) which begins at the compressor (1), where it likewise coincides with the longitudinal axis (2.1), wherein the longitudinal axis (2.1) is configured to extend in a space having three imaginary, mutually perpendicular planes (XY, XZ, YZ), wherein the fluid line (2) is shaped such that the direction vector (4.1), on the route between the compressor (1) and the heat pump component (3), and with respect to all three planes (XY, XZ, YZ), is configured to extend so as to be rotated by an angle of 180? with respect to the starting direction vector (4.0) at least once.
2. The heat pump according to claim 1, wherein the fluid line (2) is configured to be continually curved on all of its curved regions.
3. The heat pump according to claim 1, wherein the fluid line (2), on the route between the compressor (1) and the heat pump component (3), is configured to be guided at least partially selectively around the compressor (1) and/or the heat pump component (3).
4. The heat pump according to claim 1, wherein the fluid line (2) is shaped such that the direction vector (4.1), on the route between the compressor (1) and the heat pump component (3), and with respect to all three planes (XY, XZ, YZ), is configured to extend so as to be rotated by an angle of 270? with respect to the starting direction vector (4.0) at least once.
5. The heat pump according to claim 1, wherein the fluid line (2) is shaped such that the direction vector (4.1), on the route between the compressor (1) and the heat pump component (3), and with respect to all three planes (XY, XZ, YZ), is configured to extend so as to be rotated by an angle of 360? with respect to the starting direction vector (4.0) at least once.
Description
[0013] The heat pump according to the invention, including its advantageous developments according to the dependent claims, is explained in more detail hereinafter with reference to the graphic representation of a preferred exemplary embodiment.
[0014] In the drawings
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022] The heat pump shown schematically in
[0023] In order to eliminate as far as possible a transmission of vibrations from the compressor 1, which preferably comprises an electric motor, to the at least one heat pump component 3, according to the invention it is thus provided that the fluid line 2 is shaped such that the direction vector 4.1, on the route between the compressor 1 and the heat pump component 3, and with respect to all three planes XY, XZ, YZ, is configured to extend so as to be rotated by an angle of 180? to the starting direction vector 4.0 at least once.
[0024] As explained in the introduction, considered as a whole this proviso leads to an increase in the resilience or a reduction in the stiffness of the fluid line between the compressor and the heat pump component and thus to a reduced transmission of vibrations.
[0025] The solution according to the invention is ultimately based on the fluid line 2 preferably being formed from a metallic material. Optionally, plastics is also preferably considered. The more resilient the material of the fluid line actually used per se, however, the less the approach according to the invention is logically required.
[0026] For implementing a flow of refrigerant through the fluid line 2 which is as undisturbed as possible, it is also preferably provided that this fluid line is configured to be continually curved on all of its curved regions. The term continually is understood here in the mathematical sense. In other words, it is thus intended to be provided that the fluid line 2 has no sharp-edged kinks. In
[0027] It is further preferably provided that on the route between the compressor 1 and the heat pump component 3 the fluid line 2 is configured to be at least partially selectively guided around the compressor 1 and/or the heat pump component 3. This proviso, which contributes further to the reduction in the transmission of vibrations, applies to the fluid line 2 leading from the heat pump component 3 to the compressor 1 (as the corresponding arrows indicate).
[0028] As mentioned in the introduction, finally it is particularly preferably provided that the fluid line 2 is deflected not only by at least 180? but preferably by at least 270?. Quite particularly preferably, it is provided that the fluid line 2 is shaped such that the direction vector 4.1, on the route between the compressor 1 and the heat pump component 3, and with respect to one of the three planes XY, XZ, YZ, is configured to perform a full 360? turn in comparison with the starting direction vector 4.0. In
[0029] It is further preferably provided:
[0030] The heat pump shown in
[0031] In the case of this heat pump, it is preferred that a plurality of heat pump components 3 are positioned on a common support element 8 disposed vertically above a load transfer element 6, wherein a resilient insulating element 9 is disposed between the support element 8 and the load transfer element 6.
[0032] It is preferred that the lower face 5.1 of the housing 5 consists of a metal sheet disposed between the load transfer element 6 and the resilient insulating element 7, 9, see
[0033] It is further preferred that two load transfer elements 6 are preferably disposed parallel to one another on the lower face 5.1 of the housing 5. The load transfer element 6 is preferably also preferably configured at least three times, preferably six times, particularly preferably eight times, longer than it is wide or high and/or the load transfer element 6 is preferably configured as a profile rail formed from sheet metal. Additionally, it is preferred that the compressor 1 and the support element 8 are assigned the same load transfer element 6, see
[0034] It is also preferred that a heat exchanger 10, preferably a plate heat exchanger, an expansion device 11, a valve device 12 and/or a refrigerant collector 13 are or is selectively disposed on the support element 8, see
[0035] The heat pump shown in
[0036] The heat pump shown in
[0037] It is preferably provided that the spring elements, which are shown only schematically in
[0038] It is also preferably provided that a first fluid line 2 is configured as refrigerant supply line to the compressor 1 and a second fluid line 2 is configured as a refrigerant discharge line from the compressor 1.
[0039] It is also preferably provided that the fluid lines 2 are selectively formed from a material having a stiffness as a metallic material and/or from a metallic material.
[0040] In this heat pump it is also preferred that the compressor 1 and the further heat pump component 3 are configured to be fixedly connected together exclusively, on the one hand, via the fluid lines 2 which connect them together and, on the other hand, via the resilient insulating elements 7, 9 connected to the housing 5 of the heat pump. This proviso leads to a particularly effective decoupling of the compressor from the other heat pump components and thus leads to a heat pump having very low noise.
[0041] Considered in even more detail, it is particularly preferably provided that the further heat pump component 3 is configured as valve device 6, in particular as a multi-way valve.
[0042] It is also particularly preferably provided that the further heat pump component 3 is positioned on a support element 8. It is further preferably provided that the support element 8 is configured to be connected via the spring elements to the housing 5 of the heat pump. It is also further preferably provided that further heat pump components of the heat pump, such as a heat exchanger 10, an expansion device 11 and/or a refrigerant collector 13, are positioned on the support element 8. These further passive heat pump components 3 (since they do not produce vibrations themselves) advantageously form on the support element 8, as can be seen, an integrated subassembly which ultimately is excited to vibrate only via the fluid lines 2.
[0043] The heat pump shown in
[0044] Considered in more detail, it is preferably provided that at least one heat exchanger 10, a valve device 12 and/or an expansion device 11 are selectively disposed on the support element 8.
[0045] It is further preferably provided that a unit composed of the support element 8 and the heat pump components 3 disposed thereon has a first natural frequency which is greater than the disturbance frequency of the first order transmitted by the compressor 1 operating within the operating speed range to the unit acting as a rigid body.
[0046] It is particularly preferably provided that the compressor 1 has an operating speed range of 700 to 7200 revolutions per minute, particularly preferably of 800 to 6900 revolutions per minute, quite particularly preferably of 900 to 6600 revolutions per minute.
[0047] Moreover, it is particularly preferably provided that the unit consisting of the support element 8 and the heat pump components 3 disposed thereon has a first natural frequency of more than 100 Hz, particularly preferably of more than 120 Hz, quite particularly preferably of more than 140 Hz.
[0048] In order to work towards the aforementioned condition, it is also particularly preferably provided that the support element 8 (already) has a first natural frequency which is greater than the disturbance frequency of the first order caused by the compressor 1 operating within the operating speed range.
[0049] In order to work further towards the aforementioned condition, it is also particularly preferably provided that each heat pump component 3 has a first natural frequency which is greater than the disturbance frequency of the first order caused by the compressor 1 operating within the operating speed range.
[0050] In the event that there is also the requirement for action, due to a corresponding material selection of the pipework 3.1 of the heat pump components 3, it is also further particularly preferably provided that the unit, including the pipework 3.1 of the heat pump components 3, has a first natural frequency which is greater than the disturbance frequency of the first order transmitted by the compressor 1 operating within the operating speed range to the unit acting as a rigid body.
[0051] In other words, it is thus preferably provided that in principle a coupled natural frequency of the entire unit is determined or designed on the basis of the local natural frequencies of the individual components such that this is above the first-order disturbance frequency of the compressor 1.
[0052] Thus, for example, to increase the local natural frequency, as shown in
[0053] As visible in
[0054] It is also particularly preferably provided that the resilient insulating element 7, 9 is at least partially formed from an elastomer, preferably from polyurethane foam.
[0055] It is also preferably provided that the compressor 1 and the unit, apart from the required fluid lines 2 between the compressor 1 and the unit, are configured to be capable of vibration independently of one another.
[0056] Finally, in order to ensure a uniform loading of the insulating element 9 (or the insulating elements 9), it is particularly preferably provided that a centre of gravity of the unit is selectedby a suitable arrangement of the heat pump components 3such that a weight force is vertically introduced into the insulating element 9 (or into the insulating elements 9).
LIST OF REFERENCE SIGNS
[0057] 1 Compressor [0058] 2 Fluid line [0059] 2.1 Longitudinal axis [0060] 3 Heat pump component [0061] 3.1 Pipework [0062] 4.0 Starting direction vector [0063] 4.1 Direction vector [0064] 5 Housing [0065] 5.1 Lower face [0066] 6 Load transfer element [0067] 7 Resilient insulating element [0068] 8 Support element [0069] 8.1 Bent edge [0070] 9 Resilient insulating element [0071] 10 Heat exchanger [0072] 11 Expansion device [0073] 12 Valve device [0074] 13 Refrigerant collector [0075] XY Plane perpendicular to XZ and YZ [0076] XZ Plane perpendicular to XY and YZ [0077] YZ Plane perpendicular to XY and XZ