Modular induction fluid heater
09924565 ยท 2018-03-20
Assignee
Inventors
Cpc classification
F24H1/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B6/10
ELECTRICITY
F24H1/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H2250/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/0015
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/2226
PERFORMING OPERATIONS; TRANSPORTING
B60H1/2221
PERFORMING OPERATIONS; TRANSPORTING
International classification
H05B6/10
ELECTRICITY
F24H1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for electrically heating a fluid, in particular for use in an electrically operated motor vehicle, comprising an induction coil, which is integrated in an oscillating circuit and produces an alternating magnetic field, and at least one first inductor, which is positioned within the alternating magnetic field. The inductor can be arranged inside a module, through which a fluid to be heated can flow, and the induction coil is arranged outside the module.
Claims
1. A device for electrically heating a fluid for use in an electrically operated motor vehicle, the device comprising: an induction coil that generates an alternating magnetic field; and at least one inductor that is heatable by the alternating magnetic field, the inductor being arranged within the alternating magnetic field, wherein the inductor is arranged in an interior of a module that is adapted to have a fluid to be heated flow therethrough, wherein a bottom housing part and a top housing part of the module each have a partition wall inside that runs centrally and divides the top housing part or the bottom housing part in each case into a first flow channel and a second flow channel, and wherein the first flow channel of the top housing part or of the bottom housing part is in fluid communication with an inlet or outlet of the module and the second flow channel of the top housing part is in fluid communication with the second flow channel of the bottom housing part, wherein the induction coil is arranged outside of the module, wherein the inductor seals fluid-tight with walls of the first flow channel and walls of the second flow channel of the top housing part or of the bottom housing part and the inductor divides an interior of the module into a top and bottom region, wherein the first flow channel of the bottom housing part is in fluid communication via a first connection with the second flow channel of the bottom housing part, and the first flow channel of the top housing part is in fluid communication via a second connection with the second flow channel of the top housing part, and wherein the first connection and the second connection each include an enclosed channel that extends outside of the module to connect the first flow channels to the second flow channels of the top and bottom housing parts.
2. The device according to claim 1, wherein the induction coil is electrically integrated into an oscillating circuit.
3. The device according to claim 1, wherein the inductor, to generate a turbulent surround-flow and/or through-flow, has surface elements, holes, and/or punches.
4. The device according to claim 1, wherein the inductor, to generate a turbulent surround-flow, has a suitably shaped surface by embossing, beading, primary shaping and/or cutting deformation.
5. The device according to claim 1, wherein the module is dividable.
6. The device according to claim 1, wherein the inductor has an opening through which the second flow channel of the top region of the module is in fluid communication with the second flow channel of the bottom region of the module.
7. The device according to claim 1, wherein a flow path of the fluid runs via a connector into the module, in the first flow channel of the bottom housing part, in the second flow channel of the bottom housing part through an opening of the inductor, in the second flow channel of the top housing part, in the first flow channel of the top housing part, and finally through a connector out of the module or in an opposite direction.
8. The device according to claim 1, wherein at least one turbulence insert is arranged in the module with the inductor.
9. An assembly group having at least one first module and at least one second module, each according to the module of claim 1, wherein one of the modules is arranged above and one of the modules below the induction coil.
10. The assembly group according to claim 9, wherein a flow of the fluid passes through the individual modules in series or parallel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7)
(8) A heating element 4, comprising an electrically conductive material 6, is introduced into magnetic field 1. Eddy currents 5 are induced in heating element 4 due to magnetic field 1. Because eddy currents 5 work against the specific resistance of heating element 4, heat is produced in heating element 4.
(9) It follows that material 6 which comprises heating element 4 must have a certain specific internal resistance to enable an effective heating of heating element 4. The lower the internal resistance of material 6, the lower the heating effect.
(10) Heating element 4 must be arranged at such a distance to induction coil 2 that it is still located within the forming magnetic field. Other elements made of electrically nonconductive materials can be arranged between heating element 4 and induction coil 2.
(11) Induction heating systems are constructed according to this simple principle. In alternative embodiments, heating element 4 can also have different external dimensions and shapes. Thus, in principle, any regular or also irregular arrangement of material 6 of heating element 4 is conceivable.
(12)
(13) Induction coil 11 is positioned between two structurally similar modules 19. Modules 19 are formed substantially from a top housing part 15, a bottom housing part 14, and one or more inductors 12. Depending on the intended use, a turbulence insert 13 can be arranged in addition in module 19.
(14) Above coil 11, a bottom housing part 14 is arranged, which has an inlet or outlet connection 16 for a fluid. An inductor 12 that is heated by currents induced by coil 11, is inserted in bottom housing part 14. Inductor 12 is followed by a turbulence insert 13, which is used to swirl the fluid flowing around inductor 12 for the purpose of improving the heat transfer from inductor 12 to the fluid flowing around it.
(15) In further embodiments of the invention, it is advantageous if inductor 12 itself is designed such that it assumes the function of turbulence insert 13. One part per module 19 can be saved in this way. For the function of the turbulence insert to be taken over by the inductor, the surface structure of the inductor must be designed accordingly. This can be done by using various shaping processes such as, for instance, embossing or the introduction of beading in the inductor. Virtually any surface structures can be produced on the inductor with these two methods.
(16) Additional shapes according to the invention can be attained by a selective primary shaping, for instance. Surface structures can also be produced by cutting methods.
(17) Module 19 is closed by a top housing part 15 that has an inlet or outlet connector 17 for supplying or removing a fluid. Bottom housing part 14 and top housing part 15 are identical in the design shown here, further reducing the variety of parts.
(18) The arrangement of two modules 19, one above and one below induction coil 11, is shown in
(19) During operation, a fluid flows either through connector 16 into bottom housing part 14 or through connector 17 into top housing part 15. This depends only on the selected flow direction and in principle is conceivable in both directions. The fluid is then distributed in module 19 and then flows around turbulence insert 13 and inductor 12, or in the case of a combination component of inductor 12 and turbulence insert 13, only around this one component.
(20) The now heated fluid flows through the respective other connector 16, 17 out of module 19.
(21) In this way, there is no direct contact between the current-carrying coil 11 and inductor 12 in contact with the fluid. Thus, additional isolation can be omitted. The efficiency of the heat transfer can thereby be increased.
(22) The precise design of module 19 and the geometry of inductor 12 or turbulence insert 13 depend greatly on the underlying intended use. Any desired shape of inductor 12 is conceivable in principle. Inductor 12 can also have elevations and depressions, or conductive fins or other elements that contribute to the swirling of the fluid flow.
(23) In alternative embodiments, it is also conceivable to arrange a plurality of inductors within a module. Thus, a plurality of closed channels, through which fluid flows and each of which has an inductor, can be formed by the module. It is also conceivable to stack a plurality of planes through which fluid flows, each with an inductor.
(24) Basically, inductor(s) 12 must be positioned in the magnetic field of coil 11 so that sufficiently strong eddy currents can still be induced in inductor(s) 12.
(25) In alternative embodiments of the invention, an arrangement of only one module in the magnetic field of the coil is also conceivable, as well as the arrangement of a plurality of modules. Care must be taken basically that the inductors that are arranged in the modules, are still arranged within the sphere of action of the magnetic field generated by the coil.
(26) The shaping of the inductor and the induction coil in alternative embodiments may also be different from the design shown in
(27) The material selection for module 19 and the tubes surrounding inductor 12 should be made in view of the employed induction method and the other operational requirements. Plastics are advantageously employed here, because no eddy currents can be induced in these, as a result of which unwanted interactions can be reduced.
(28)
(29)
(30) Inductor 12 is arranged between top housing part 15 and bottom housing part 14, thereby dividing module 19 into a top and bottom region.
(31) A partition wall 21, 29, which in conjunction with inductor 12 divides each housing part 14, 15 into a first flow channel 22, 30 and a second flow channel 23, 31, runs centrally in top housing part 15 and bottom housing part 14. First flow channel 22 of bottom housing part 14 is hereby in fluid communication with second flow channel 23 of bottom housing part 14 via a connection 28. The same applies to top housing part 15 where first flow channel 30 is in fluid communication with second flow channel 31 via connection 27.
(32)
(33) It can be easily recognized that top partition wall 29 and bottom partition wall 21 is closed with inductor 1 and thus housing parts 14, 15 are divided into two flow channels 22, 23, 30, 31.
(34) First flow channel 22 of bottom housing part 14 is thus formed by inductor 12, wall 24, and partition wall 21. Second flow channel 23 of bottom housing part 14 is formed by inductor 12, wall 25, and partition wall 21. Similarly, first flow channel 30 of top housing part 15 is formed by inductor 12, wall 32, and partition wall 29 and second flow channel 31 of top housing part 15 by inductor 12, wall 33, and partition wall 29.
(35)
(36) This section lies within the region of the two connections 27, 28, each of which connect first flow channels 22, 30 with second flow channels 23, 31. As shown in
(37) Connectors 16, 17 can be used optionally as an inlet or outlet. This depends on the selected flow direction. The flow sequence of a module 19 is described hereafter in case that connector 16 is used as an inlet and connector 17 as an outlet of module 19.
(38) The fluid then flows through connector 16 into first flow channel 22 of bottom housing part 14, subsequently flows through connection 28 into second flow channel 23 of bottom housing part 14, then through opening 26 into second flow channel 31 of top housing part 15, through connection 27 into first flow channel 30 of top housing part 15, and finally through connector 17 out of module 19.
(39) The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.