Heating device for a vehicle and method of operating the heating device
09895957 ยท 2018-02-20
Assignee
Inventors
Cpc classification
F24H1/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/2225
PERFORMING OPERATIONS; TRANSPORTING
B60H2001/2296
PERFORMING OPERATIONS; TRANSPORTING
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/2218
PERFORMING OPERATIONS; TRANSPORTING
B60H2001/2237
PERFORMING OPERATIONS; TRANSPORTING
B60H1/2221
PERFORMING OPERATIONS; TRANSPORTING
F24H1/142
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60H1/22
PERFORMING OPERATIONS; TRANSPORTING
F24H1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F13/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heating device for a vehicle and a method for operating the heating device includes a flow path for a heat transport medium and an electrical heating arrangement for heating the heat transport medium on a heating section of the flow path. The heating section has at least two channels running in a serpentine pattern, through which the heat transport medium can flow in parallel.
Claims
1. A heating device for a vehicle, said heating device comprising a flow path for a liquid heat transport medium, and an electric heating unit having a heating resistor for heating the heat transport medium in a heating section of the flow path, said heating section including at least two serpentine channels connected in parallel through which the heat transport medium flows in parallel, in which the flow path includes an inlet section upstream of the heating section and an outlet section downstream of the heating section, wherein the channels branch off from the inlet section and discharge into the outlet section.
2. The heating device of claim 1, in which a cross sectional area of the inlet section decreases in the direction of flow of the heat transport medium in accordance with the branch-offs of the channels.
3. The heating device of claim 1, in which the inlet section and the outlet section are elongated and extend parallel to each other.
4. The heating device of claim 1, in which each channel branches off perpendicularly from the inlet section and discharge perpendicularly into the outlet section.
5. The heating device of claim 1, in which each of the channels includes precisely 2*N hairpin curves wherein N is a natural number.
6. The heating device of claim 1, wherein the flow path further includes an inlet upstream of an inlet section admitting the heat transport medium into the heating device, and an outlet downstream of an outlet section discharging the heat transport medium from the heating device.
7. The heating device of claim 1, wherein at least one of the channels includes at least one rotation element generating rotation of the heat transport medium which flows in the at least one of the channels, said rotation being about a longitudinal axis of the at least one of the channels.
8. The heating device of claim 7, wherein the rotation element mixes the heat transport medium inside the channel.
9. The heating device of claim 1, including an electronic control unit controlling the heating device, wherein the control unit includes a heat discharge body discharging waste heat from the control unit to the heat transport medium in an inlet section of the flow path.
10. The heating device of claim 9, including a heat transfer unit transferring heat from the heating unit to the heat transport medium in the heating section, wherein the heat transfer unit and the heat discharge body are a single piece.
11. The heating device of claim 10, including a connecting piece interconnecting the heat transfer unit and the heat discharge body, said connecting piece extending along a non-straight line so that thermal resistance between the heat transfer unit and the heat discharge body is increased in comparison to a straight line.
12. The heating device of claim 11, wherein the non-straight line is shaped as an L, U, V, S, Z, N, M, or W.
13. The heating device of claim 10, wherein the heat transfer unit at least partially defines the channels.
14. A method of operating a heating device according to claim 1 in a vehicle, said method comprising: heating a liquid heat transport medium flowing simultaneously through at least two serpentine channels of a heating device, said channels being connected flow-technically in parallel to each other, the heat transport medium being heated by an electric heating unit of the vehicle that comprises a heating resistor.
Description
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(15) In the following description of the drawings, identical reference symbols refer to identical or comparable components.
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(17) At least one heating unit 25 (shown in
(18) Each of the control units 26 is mechanically connected to a heat discharge body 28. The heat discharge body 28 serves to discharge waste heat from the electronic control unit 26 to the heat transport medium in the inlet chamber 16. The inlet chamber 16 is therefore also referred to as a preheating section of the flow path. Each control unit 26 may have one or more heat discharge bodies 28 associated with it. Alternatively, the several heat discharge bodies 28 may be considered a single larger heat discharge body. In the shown example, the heat discharge bodies 28 extend from the control units 26 into the inlet chamber 16 and the heat transport medium flows past them during operation of the heating device 10, whereby heat from the heat discharge bodies 28 is transferred to the heat transport medium. The heat discharge bodies 28 and hence the control units 26 are thus cooled while the heat transport medium is preheated. The preheated heat transport medium flows from the inlet chamber 16 further through the channels 20. Thereby it flows past the heat transfer unit 18, which defines the channels 20, and absorbs heat generated by the heating units 25. Each of the channels 20 or the channels 20 collectively are therefore also referred to as a heating section of the flow path. The heat transport medium thus heated then flows further through the outlet chamber 22 and leaves the heating device 10 through the outlet 24.
(19) The heat discharge bodies 28 may for example each be formed as a fin having for instance a rectangular or V-shaped cross section, to discharge heat from the control unit, e.g., the power semiconductor, into the heat transport medium. The heat discharge body 28 therefore also serves for routing the heat transport medium. Alternatively, the heat discharge body 28 may for example be a cone, a bolt, or a pin to discharge heat from a spot below the respective control device, e.g., from below a relatively small chip area. Such a cone, bolt, or pin may further enhance turbulence of the heat transport medium and thus increase the discharge of heat. Overheating of the electronic control unit can thus be avoided and the waste heat from the control unit is used for heating the heat transport medium.
(20) In the shown example the inlet section 16 is limited to the exterior by a wall 32 of the housing 12. The outlet section 22 is limited to the exterior by a wall 34 of the housing 12. The walls 32 and 34 each extend from the inlet 14 and the outlet 24, respectively, in a first direction and in a second direction, respectively, wherein the first and the second direction are inclined relative to two of the three principal axes of the housing 12, which is generally quad-shaped. The wall 32 thus causes the inlet section 16 to narrow in the flow direction (that is, in a direction away from the inlet 14). The wall 34 extends so that the outlet section 22 broadens in the flow direction, that is, in a direction toward the outlet 24. This causes the channels 20 to have approximately the same pressure of the heat transport medium.
(21) The flow path defined by the heating unit 10 is further schematically illustrated in
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(24) The embodiment schematically represented in
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(27) For example a device as known from mixing jets for multiple-component adhesives may be used as the mixing device. In the implementation described herein, however, no different substances but different temperature regions of the same heat transport medium are mixed.
(28) The total number of deflection elements 50 and their deflection angles (e.g., between 150 and 180) may be varied in accordance with the shape of the channel 20. As the mixing device 46 itself replaces only a relatively small volume and may be streamlined, for example, it is possible to avoid flow cut-offs and dead water regions. The additional pressure loss resulting from the mixing device 46 may therefore be very small while significantly increasing the flow of heat.
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(30) The flow diagram in
(31) The features of the invention disclosed in the preceding description, in the drawings, and in the claims may be relevant, individually as well as in any combination, for carrying out the invention.
LIST OF REFERENCE SYMBOLS
(32) 10 heating device 12 housing 14 inlet 16 inlet chamber 20 channel 22 outlet chamber 24 outlet 25 heating unit 26 control unit 28 heat discharge body 30 electrical contact 32 wall 34 wall 36 branch-off 38 confluence 40 top wall 42 heat transfer unit 44 connecting piece 46 mixing device 48 rotation element 50 deflection element