HEATING DEVICE FOR HEATING A GAS STREAM
20230184461 · 2023-06-15
Inventors
- Volkmar KNIPPS (Haiterbach, DE)
- Stefan MÜLLER (Horb-Ihlingen, DE)
- Ramazan SAHAN (Bösingen, DE)
- Falko SCHUBE (Altensteig, DE)
Cpc classification
F01N3/2825
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2842
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B2203/022
ELECTRICITY
F01N3/2807
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2260/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B3/32
ELECTRICITY
F01N2240/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B3/32
ELECTRICITY
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a heating device for heating a gas flow, in particular an exhaust gas flow of an internal combustion engine, said heating device comprising an electrically conductive heating element that can be flowed through by the gas flow in an axial direction and that has at least two heating segments that are sectionally separated from one another by a gap that is in particular open at one side; a carrier device having at least one electrically insulating carrier element that at least sectionally surrounds the heating element in a peripheral direction and/or at least sectionally covers a marginal region of at least one axial end face of the heating element, wherein the carrier element has at least one spacer section that projects into the gap; and a housing section in which the heating element and the carrier device are held.
Claims
1-29. (canceled)
30. A heating device for heating a gas flow, said heating device comprising an electrically conductive heating element that can be flowed through by the gas flow in an axial direction and that has at least two heating segments that are sectionally separated from one another by a gap; a carrier device having at least one electrically insulating carrier element that at least sectionally surrounds the heating element in a peripheral direction and/or at least sectionally covers a marginal region of at least one axial end face of the heating element, wherein the carrier element has at least one spacer section that projects into the gap; and a housing section in which the heating element and the carrier device are held.
31. The heating device in accordance with claim 30, wherein the spacer section extends in the axial direction and/or in a direction perpendicular to the axial direction from the carrier element into the gap.
32. The heating device in accordance with claim 30, wherein the carrier element is of a ring-like design or has a basic shape of a circular segment.
33. The heating device in accordance with claim 30, wherein the carrier device is formed in multiple pieces.
34. The heating device in accordance with claim 33, wherein the carrier device comprises a first carrier element and a second carrier element that each surround at least a part of the periphery of the heating element and/or that each cover at least a part of a marginal region of at least one end face of the heating element.
35. The heating device in accordance with claim 33, wherein the first carrier element and the second carrier element are identical parts.
36. The heating device in accordance with claim 30, wherein the heating element is supported at the housing section via a bearing mat.
37. The heating device in accordance with claim 30, wherein the carrier device is supported at the housing section via a bearing mat.
38. The heating device in accordance with claim 30, wherein a clearance exists between the carrier device and/or the heating element, on the one hand, and the housing section, on the other hand, in a radial direction at least in a cold state of the heating element.
39. The heating device in accordance with claim 30, wherein the heating element has a honeycomb basic structure.
40. The heating device in accordance with claim 30, wherein the heating element has a plurality of gaps.
41. The heating device in accordance with claim 30, wherein the housing section has at least one axial shoulder at which the heating element is supported in the axial direction.
42. The heating device in accordance with claim 30, wherein the housing section is formed in multiple parts.
43. The heating device in accordance with claim 42, wherein the housing section comprises a first housing element and a second housing element between which the carrier device is held with the heating element.
44. The heating device in accordance with claim 43, wherein the first housing element and/or the second housing element and/or the carrier device and/or the first carrier element and/or the second carrier element are L-shaped in a cross-section.
45. The heating device in accordance with claim 43, wherein the first housing element and/or the second housing element has/have a connection section by means of which the housing section can be connected to further gas-conducting components.
46. The heating device in accordance with claim 43, wherein the first housing element is plugged into the second housing element.
47. The heating device in accordance with claim 43, wherein the first housing element and/or the second housing element is/are sheet metal components.
48. The heating device in accordance with claim 43, wherein the first housing element and/or the second housing element comprises/comprise a ring section having at least one tab section extending in the axial direction.
49. The heating device in accordance with claim 43, wherein the first housing element and/or the second housing element component is/are cast parts.
50. The heating device in accordance with claim 30, wherein the housing section has a first and a second contact opening through which the heating element is electrically contactable.
51. The heating device in accordance with claim 30, wherein the housing section is held by an outer housing that surrounds the housing section in the radial direction.
52. The heating device in accordance with claim 51, wherein the outer housing comprises a first outer housing element and a second outer housing element.
53. The heating device in accordance with claim 30, wherein the carrier element is at least sectionally produced from corundum and/or an electrically insulating ceramic material.
54. An exhaust gas treatment device comprising an inlet and an outlet and at least one exhaust gas treatment unit for treating an exhaust gas flow, wherein a heating device is arranged between the inlet and the exhaust gas treatment unit, wherein the heating device comprises an electrically conductive heating element that can be flowed through by the gas flow in an axial direction and that has at least two heating segments that are sectionally separated from one another by a gap; a carrier device having at least one electrically insulating carrier element that at least sectionally surrounds the heating element in a peripheral direction and/or at least sectionally covers a marginal region of at least one axial end face of the heating element, wherein the carrier element has at least one spacer section that projects into the gap; and a housing section in which the heating element and the carrier device are held.
55. The exhaust gas treatment device in accordance with claim 54, wherein a single-piece housing component is provided that receives the exhaust gas treatment unit and the heating device.
56. The exhaust gas treatment device in accordance with claim 55, wherein the housing section of the heating device forms a part of a housing of the exhaust gas treatment device.
57. The exhaust gas treatment device in accordance with claim 54, wherein the housing section is held by an outer housing that surrounds the housing section in the radial direction, wherein the outer housing has an inlet connection section for connecting the heating device to a tube section of an exhaust gas system that forms the inlet, and wherein the outer housing has an outlet connection section that is connected to a housing component receiving the exhaust gas treatment unit.
58. An exhaust gas system of an internal combustion engine comprising an exhaust gas treatment device, wherein the exhaust gas treatment device comprising an inlet and an outlet and at least one exhaust gas treatment unit for treating an exhaust gas flow, wherein a heating device is arranged between the inlet and the exhaust gas treatment unit, wherein the heating device comprises an electrically conductive heating element that can be flowed through by the gas flow in an axial direction and that has at least two heating segments that are sectionally separated from one another by a gap; a carrier device having at least one electrically insulating carrier element that at least sectionally surrounds the heating element in a peripheral direction and/or at least sectionally covers a marginal region of at least one axial end face of the heating element, wherein the carrier element has at least one spacer section that projects into the gap; and a housing section in which the heating element and the carrier device are held.
59. The heating device in accordance with claim 30, wherein the gap is open at one side.
Description
[0043] The present invention will be explained in the following purely by way of example with reference to advantageous embodiments and to the enclosed drawings. There are shown:
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[0064] The heating disk 10 at least partly consists of an electrically conductive material and/or is at least partly coated with such a material so that it is heated during a current feed by means of electrical connectors 12 (resistance heating). To form a suitably high electrical resistance of the heating disk 10, the heating disk 10 has gaps 16 that extend in parallel and that sectionally separate individual heating segments 14 from one another. The gaps 16 are alternately open at the sides (in
[0065] The heating segments 14 do not represent an impenetrable flow resistance, but rather have a plurality of fine axial channels (not shown) through which a gas flow axially flowing onto an end face of the heating disk 10 can pass. It has proved particularly suitable if the heating segments 14 have a honeycomb basic structure. Such a basic structure has a high number of channels and therefore provides a large surface that promotes the heat exchange between the heating disk 10 and the gas flow.
[0066] During the operation of the heating disk 10, said heating disk 10 expands due to thermal effects, which can have the result that adjacent heating segments 14 contact one another in regions that are not provided and an electrical short circuit is hereby generated. Mechanical loads and vibrations, such as, for example, typically occur on a use in a motor vehicle, can bring about similar problems.
[0067] This is remedied in that the heating disk 10 is supported by a carrier device that comprises two separate carrier elements 18 in the example shown. The carrier elements 18 are circular segments of the same kind (identical parts) that are adapted to the geometry of the outer contour of the heating disk 10. They each have spacers 20 at their concave inner sides, said spacers 20 being formed in a complementary manner to the gap openings respectively associated with them. When the carrier elements 18 are assembled at the heating disk 10 (see
[0068] Due to the almost complete enclosure of the heating disk 10 by the carrier elements 18, said heating disk 10 is also insulated in the radial direction. In deviation from the embodiment shown, the carrier elements 18 can (sectionally) have a greater axial thickness than the heating disk 10 to also be able to function as spacers in the axial direction.
[0069] To achieve a good electrical insulation, the carrier elements 18 are composed of corundum, a glass ceramic material, mica, and/or a ceramic material.
[0070]
[0071]
[0072] The inlet 28 and the outlet 30 can be connected to further gas-conducting components, for example, to an inlet funnel, not shown, or to a housing component that surrounds an exhaust gas purification component such as a catalytic converter. Said components can be plugged into or plugged onto the inlet 28 and/or the outlet 30. A welded connection or another type of connection is then established to connect the components and the heating device 26 to one another in a gas-tight manner.
[0073] The construction shown in
[0074] In the embodiment in accordance with
[0075] Since the carrier elements 18 are slightly thicker than the heating disk 10, the corresponding axial overhang 38 is pressed into the bearing mats 24 arranged at the inlet side, which increases the local pressing of the bearing mats 24 and ultimately also improves the fixing of the composite comprising the carrier elements 18 and the heating disk 10. The axial overhang 38 can, for example, be in an order of magnitude of 0.5 to 1 mm. In certain applications, an axial overhang 38 can also be omitted or is selected larger, if this is necessary.
[0076] An air gap 42 is provided between the outer periphery of the carrier elements 18 and of the bearing mats 24, on the one hand, and axial sections 40 of the housing parts 32, 34 in order to absorb an expansion of the composite comprising the heating disk 10 and the carrier elements 18 due to thermal effects.
[0077] Projections 44 that extend in the axial direction from the axial shoulders 36 secure the bearing mats 24 radially inwardly. In many cases, such a securing is not necessary so that the projections 44 can be omitted.
[0078] The heating disk 10 shown in
[0079] In
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[0081] The heating disk 10 is encompassed at both sides by a respective carrier ring 18B, as can be seen in
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[0083] The heating disk 10 is encompassed at both sides by carrier rings 18B that are in turn each supported via bearing mats 24 at the housing parts 32, 34. An air gap 42 is provided radially outside the carrier rings 18B. The carrier rings 18B are spaced apart from one another at the end face (i.e. they do not contact one another at least in a cold state, see spacing 52) in order to compensate or offset component tolerances and/or thermal expansions and thus to ensure a secure support of the disk 10.
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[0085] It can furthermore easily be seen that the spacers 20 project into the gaps 16 over only a part of the axial extent of the gaps 16. Furthermore, it can be seen that only the bearing mat 24, and no carrier element or carrier ring (even though this would generally be possible), is arranged between the inlet-side end face of the heating disk 10 and the corresponding axial shoulder 36. An electrical insulation between the heating disk 10 and the housing section 32 is nevertheless provided since the material of the bearing mats 24 has electrically insulating properties.
[0086] Alternatively, it is possible to configure the spacers 20 such that they extend completely through the gaps 16 in the axial direction or even project from the oppositely disposed end face of the heating disk 10.
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[0088] Exhaust gas (arrow) flowing from the left into the sheet metal housing 56 is heated by the heating device 26 so that the catalytic converter 58 reaches its operating temperature as quickly as possible.
[0089] In the embodiment shown, the heating device 26 comprises the structure or composite already described with reference to
[0090] The heating device 26 thus obtained is then inserted from the left into the sheet metal housing 56 until it contacts a shoulder 62 of the sheet metal housing 56. The fixing of the heating device 26 takes place by means of a further weld seam 60A.
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[0092] However, instead of the planar ring 32A, an L-shaped housing part 32B is used here. It can be inserted more easily into the housing part 34A since its section extending in the axial direction acts as a guide.
[0093] The heating device 26 in accordance with
[0094] A pressing of the bearing mat 24A during the assembly of the heating device 26 only or at least mainly takes place in the axial direction. Between the housing part 34A and the carrier rings 18B, the bearing mat 24A is not pressed or is only slightly pressed in a cold state of the heating device 26 so that a thermal expansion of the components can be absorbed. Under certain circumstances, an air gap can also additionally be provided here.
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[0096] In the heating device 26 in accordance with
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[0100] As can in particular be seen from
[0101] During the assembly, the housing parts 32, 34 are laterally applied to the heating disk 10, which is provided with the carrier device and, if necessary, with one or more bearing mats, until the end faces of mutually oppositely disposed tabs 70 are in contact with one another. Then, the tabs 70 are connected to one another, in particular welded. The axial extent of the tabs 70, which can also have different axial lengths, defines the spacing which the ring sections 68 have from one another in an assembled state. This spacing, in turn, defines how strongly the components encompassed by the housing parts 32, 34 are held. In this connection, one speaks of a path-controlled assembly or also of an assembly “on blockage”.
[0102] The state shown in
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[0104] The connection of the shells 74, 76 can, for example, take place by welding or another process. A connection between the housing shells 74 and/or 76, on the one hand, and the housing parts 32 and/or 34, on the other hand, can likewise take place by welding. For example, the shells 74, 76 are sectionally connected to the ring sections 68. This is possible without further ado since corresponding contact regions are accessible from the end faces. Additionally or alternatively, it is also possible to provide radial openings (not shown), for example elongated holes, in the housing shells 74, 76, through which radial openings a welding of the shells 74, 76 to the tabs 70 is made possible.
[0105] The embodiment shown in
[0106] In the design described above, the tabs 70A, 70B do not necessarily provide a limitation of the assembly movement. It would indeed be possible to provide abutment elements that achieve this in a well-defined manner. However, in the assembly in the embodiment in accordance with
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[0109] With reference to
[0110] In
[0111] The carrier elements 18E in accordance with
[0112] The carrier elements 18E in accordance with
[0113] The carrier elements 18E in accordance with
[0114] The carrier elements 18E in accordance with
[0115] It is understood that individual features that have been explained in more detail with reference to specific embodiments can also be transferred to other embodiments, if necessary, to be able to take optimum account of the requirements present in each case.
[0116] The concept in accordance with the invention was indeed described above with respect to the exhaust gas technology of an internal combustion engine. However, it can also be applied in other areas in which a heating of a gas flow is required.
REFERENCE NUMERAL LIST
[0117] 10 heating disk
[0118] 12 connector
[0119] 14 heating segment
[0120] 16 gap
[0121] 18, 18D, 18E carrier element
[0122] 18A, 18B, 18C carrier ring
[0123] 20 spacer
[0124] 24, 24A, 24B bearing mat
[0125] 26 heating device
[0126] 28 inlet
[0127] 30 outlet
[0128] 32, 32A, 32B, 32B′
[0129] 34, 34A, 34A′ housing part
[0130] 36 axial shoulder
[0131] 38 axial overhang
[0132] 40 axial section
[0133] 42, 42A air gap
[0134] 44 projection
[0135] 46 contact surface
[0136] 48 peripheral wall
[0137] 50 connection recess
[0138] 52 spacing
[0139] 54 exhaust gas treatment device
[0140] 56 sheet metal housing
[0141] 57 bearing mat
[0142] 58 catalytic converter
[0143] 60, 60A weld seam
[0144] 62 shoulder
[0145] 64 inner tube
[0146] 68 ring section
[0147] 70, 70A, 70B, 70C tab
[0148] 72, 72A, 72B cutout
[0149] 74, 76 housing shells
[0150] 78 spacer section
[0151] 80 end face section
[0152] A axial direction
[0153] P1, P2 package