COMBUSTION CHAMBER ASSEMBLY UNIT FOR A FUEL-OPERATED VEHICLE HEATER
20210283985 · 2021-09-16
Inventors
Cpc classification
F23D2900/21002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23D3/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/2281
PERFORMING OPERATIONS; TRANSPORTING
F23D2900/05002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/2212
PERFORMING OPERATIONS; TRANSPORTING
B60H1/2206
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A combustion chamber assembly unit for a fuel-operated vehicle heater includes a mixing chamber (20) extending in a direction of a combustion chamber assembly unit longitudinal axis (L) for generating an air/fuel mixture. A fuel feed device (38) feeds fuel to the mixing chamber (20) and a combustion air feed device feeds combustion air to the mixing chamber (20). A diffuser device (22) is arranged downstream in relation to the mixing chamber (20) in the direction of the combustion chamber assembly unit longitudinal axis (L). The fuel feed device (38) includes an evaporator device (36). The combustion air feed device (18) includes a swirling flow generation device (14). The swirling flow generation device (14) is arranged with the evaporator device (36) upstream in relation to the mixing chamber (20) in the direction of the combustion chamber assembly unit longitudinal axis (L).
Claims
1. A fuel-operated vehicle heater combustion chamber assembly unit comprising: a mixing chamber configured to generate an air/fuel mixture and extending in a direction of a combustion chamber assembly unit longitudinal axis; a fuel feed device configured to feed fuel to the mixing chamber, wherein the fuel feed device comprises an evaporator device; a combustion air feed device configured to feed combustion air to the mixing chamber, wherein the combustion air feed device comprises a swirling flow generation device arranged with the evaporator device upstream in relation to the mixing chamber in the direction of the combustion chamber assembly unit longitudinal axis; and a diffuser device arranged downstream in relation to the mixing chamber in the direction of the combustion chamber assembly unit longitudinal axis.
2. The combustion chamber assembly unit in accordance with claim 1, wherein: the mixing chamber is defined by a mixing chamber circumferential wall extending in the direction of the combustion chamber assembly unit longitudinal axis and enclosing same; and the evaporator device comprises the mixing chamber circumferential wall on an inner side of a porous evaporator medium overlapping in at least some areas, which inner side faces the mixing chamber.
3. The combustion chamber assembly unit in accordance with claim 2, wherein: the porous evaporator medium overlaps the mixing chamber circumferential wall essentially over an entire circumference thereof; or the porous evaporator medium has an annular or tubular configuration; or the porous evaporator medium overlaps the mixing chamber circumferential wall essentially over an entire circumference thereof and the porous evaporator medium has an annular or tubular configuration.
4. The combustion chamber assembly unit in accordance with claim 1, wherein: the diffuser device comprises a diffuser circumferential wall; the diffuser circumferential wall has a first circumferential wall length area with a smaller internal dimension than the mixing chamber; and the diffuser circumferential wall has a second circumferential wall length area, following downstream of the first circumferential wall length area in the direction of the combustion chamber assembly unit, with in at least some areas a greater internal dimension than the smaller internal dimension of first circumferential wall length area, which increases along the combustion chamber assembly unit longitudinal axis in the direction away from the first circumferential wall length area.
5. The combustion chamber assembly unit in accordance with claim 4, wherein the diffuser circumferential wall is configured with an essentially constant internal dimension along the combustion chamber assembly unit longitudinal axis in the first circumferential wall length area.
6. The combustion chamber assembly unit in accordance with claim 4, wherein: the internal dimension of the diffuser circumferential wall in the second circumferential wall length area increases digressively in the direction away from the first circumferential wall length area; or a circumferential wall transition area, with progressive increase of internal dimension of the diffuser circumferential wall in at least some areas, is provided between the first circumferential wall length area and the second circumferential wall length area; or the internal dimension of the diffuser circumferential wall in the second circumferential wall length area increases digressively in the direction away from the first circumferential wall length area and a circumferential wall transition area, with progressive increase of internal dimension of the diffuser circumferential wall in at least some areas, is provided between the first circumferential wall length area and the second circumferential wall length area.
7. The combustion chamber assembly unit in accordance with claim 4, wherein: the diffuser circumferential wall has a third circumferential wall length area with essentially constant internal dimension along the combustion chamber assembly unit longitudinal axis; and the third circumferential wall length area follows downstream of the second circumferential wall length area in the direction of the combustion chamber assembly unit longitudinal axis.
8. The combustion chamber assembly unit in accordance with claim 4, wherein the diffuser device further comprises a flame diaphragm carried at the diffuser circumferential wall.
9. The combustion chamber assembly unit in accordance with claim 4, wherein: the mixing chamber is defined by a mixing chamber circumferential wall extending in the direction of the combustion chamber assembly unit longitudinal axis and enclosing same; and the diffuser circumferential wall is fixed with the first circumferential wall length area at a downstream end area of the mixing chamber circumferential wall.
10. The combustion chamber assembly unit in accordance with claim 1, wherein the swirling flow generation device comprises a plurality of flow deflection elements arranged following one another in a circumferential direction about the combustion chamber assembly unit longitudinal axis.
11. The combustion chamber assembly unit in accordance with claim 10, wherein the combustion air feed device comprises a swirling flow housing carrying the flow deflection elements.
12. The combustion chamber assembly unit in accordance with claim 10, wherein: the mixing chamber is defined by a mixing chamber circumferential wall extending in the direction of the combustion chamber assembly unit longitudinal axis and enclosing same; the evaporator device comprises the mixing chamber circumferential wall on an inner side of a porous evaporator medium overlapping in at least some areas, which inner side faces the mixing chamber; and the swirling flow housing is fixed at an upstream end area of the mixing chamber circumferential wall.
13. A fuel-operated vehicle heater comprising a combustion chamber assembly unit, the combustion chamber assembly unit comprising: a mixing chamber configured to generate an air/fuel mixture and extending in a direction of a combustion chamber assembly unit longitudinal axis; a fuel feed device configured to feed fuel to the mixing chamber, wherein the fuel feed device comprises an evaporator device; a combustion air feed device configured to feed combustion air to the mixing chamber, wherein the combustion air feed device comprises a swirling flow generation device arranged with the evaporator device upstream in relation to the mixing chamber in the direction of the combustion chamber assembly unit longitudinal axis; and a diffuser device arranged downstream in relation to the mixing chamber in the direction of the combustion chamber assembly unit longitudinal axis
14. The fuel-operated vehicle heater in accordance with claim 13, further comprising: a combustion air blower configured to feed combustion air to the mixing chamber via the swirling flow generation device; and a fuel pump configured to feed fuel to the mixing chamber.
15. The fuel-operated vehicle heater in accordance with claim 14, wherein: the mixing chamber is defined by a mixing chamber circumferential wall extending in the direction of the combustion chamber assembly unit longitudinal axis and enclosing same; and the evaporator device comprises the mixing chamber circumferential wall on an inner side of a porous evaporator medium overlapping in at least some areas, which inner side faces the mixing chamber.
16. The fuel-operated vehicle heater in accordance with claim 14, wherein: the diffuser device comprises a diffuser circumferential wall; the diffuser circumferential wall has a first circumferential wall length area with a smaller internal dimension than the mixing chamber; and the diffuser circumferential wall has a second circumferential wall length area, following downstream of the first circumferential wall length area in the direction of the combustion chamber assembly unit, with in at least some areas a greater internal dimension than the smaller internal dimension of first circumferential wall length area, which increases along the combustion chamber assembly unit longitudinal axis in the direction away from the first circumferential wall length area.
17. The fuel-operated vehicle heater in accordance with claim 16, wherein the diffuser device further comprises a flame diaphragm carried at the diffuser circumferential wall.
18. The fuel-operated vehicle heater in accordance with claim 16, wherein: the mixing chamber is defined by a mixing chamber circumferential wall extending in the direction of the combustion chamber assembly unit longitudinal axis and enclosing same; and the diffuser circumferential wall is fixed with the first circumferential wall length area at a downstream end area of the mixing chamber circumferential wall.
19. The fuel-operated vehicle heater in accordance with claim 16, wherein the swirling flow generation device comprises a plurality of flow deflection elements arranged following one another in a circumferential direction about the combustion chamber assembly unit longitudinal axis.
20. The fuel-operated vehicle heater in accordance with claim 19, wherein the combustion air feed device comprises a swirling flow housing carrying the flow deflection elements.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In the drawings:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DESCRIPTION OF PREFERRED EMBODIMENTS
[0031] Referring to the drawings,
[0032] A combustion air blower 24, which is configured, for example, as a side channel blower, feeds the combustion air V needed for the combustion, for example, approximately in the direction of the combustion chamber assembly unit longitudinal axis L towards the swirling flow generation device 14 of the combustion air feed device 18. As a result, the flow of combustion air V, which is at first directed approximately in the direction of the combustion chamber assembly unit longitudinal axis L, is deflected in the circumferential direction, so that a swirling flow of the combustion air V enclosing the combustion chamber assembly unit longitudinal axis L is generated in the mixing chamber 20 following the swirling flow generation device 14 or even in the diffuser device 22 adjoining the mixing chamber 20.
[0033] In the exemplary embodiment shown in
[0034] In its downstream end, the swirling flow housing 26 is inserted into an upstream end area 30 of a mixing chamber circumferential wall 32, which has a basically essentially cylindrical shape, and is thus connected in substance, for example, by welding. An inner side of the mixing chamber circumferential wall 32 is overlapped approximately over the entire axial extension thereof and preferably over the entire circumference with a porous evaporator medium 34, having a tubular or annular configuration, of an evaporator device, generally designated by 36, of a fuel feed device 38. Liquid fuel B is introduced into the porous evaporator medium 34 via a fuel line 40 traversing the mixing chamber circumferential wall or opening into same. By means of capillary feed action and possibly also supported by gravity, the liquid fuel B is distributed in the inner volume of the porous evaporator medium 34, which may be made of, for example, metal mesh, metallic foam, foam ceramic or the like. On the surface exposed in the radially inward direction, the porous evaporator medium 34 releases the fuel B in vapor form into the mixing chamber 20 bordered by the mixing chamber circumferential wall, so that this fuel vapor can mix with the flow of combustion air V introduced into the mixing chamber 20 upstream via the swirling flow generation device 14. This mixing is supported based on the fact that the combustion air flow reaches the mixing chamber 20 as a swirling flow.
[0035] The diffuser device 22, which adjoins or is permanently connected to a downstream end area 44 of the mixing chamber circumferential wall 32, comprises a diffuser circumferential wall 46 with a first circumferential wall length area 48. This first circumferential wall length area 48, which is configured along the combustion chamber assembly unit longitudinal axis L with an essentially constant internal dimension, i.e., for example, with an essentially constant internal diameter or constant internal cross-sectional area, i.e., has an essentially cylindrical configuration, is inserted into the downstream end area 44 of the mixing chamber circumferential wall 32 and is permanently connected in substance thereto, for example, by welding.
[0036] A second circumferential wall length area 50 of the diffuser circumferential wall 46 follows the first circumferential wall length area 48 of the diffuser circumferential wall 46. The internal dimension of the diffuser circumferential wall 46 increases in this second circumferential wall length area 50. It is seen that this increase of the internal dimension, i.e., for example, of the internal diameter or of the internal cross section is degressive in the direction of the combustion chamber assembly unit longitudinal axis L, i.e., the rate of increase in the direction of the combustion chamber assembly unit longitudinal axis L decreases in the downstream direction until the rate of increase of the internal dimension is zero in the transition to a third circumferential wall length area 52. In the third circumferential wall length area 52, the diffuser circumferential wall 46 has an essentially constant internal dimension, for example, internal diameter or internal cross-sectional area, so that an essentially cylindrical structure of the diffuser circumferential wall 46 is also present in this area, and the transition to the third circumferential wall length area 52 can take place in an essentially kink-free or continuous manner because of the degressive increase of the internal dimension of the diffuser circumferential wall 46 in the second circumferential wall length area.
[0037] In the upstream area of the second circumferential wall length area 50, this transitions into the first circumferential wall length area 48 in a circumferential wall transition area 54. Since the first circumferential wall length area 48 has an approximately constant internal dimension in the exemplary embodiment shown, the circumferential wall transition area 54 is configured for a kink-free or continuous connection to the first circumferential wall length area 48 starting from this length area 48 with progressive increase of the internal dimension, i.e., for example, of the internal diameter or of the internal cross-sectional area, of the diffuser circumferential wall 46.
[0038] A flame diaphragm 56, which is used to stabilize the combustion or the flame in the area located upstream thereof, i.e., essentially in the mixing chamber 20 and in the diffuser device 22 following it, is provided in the third circumferential wall length area 52.
[0039] During the combustion operation, the mixture of combustion air V and fuel B, which is fed by a fuel pump 58, for example, feed pump, generated in the mixing chamber 20 with the swirling flow suggested in
[0040] Because of the swirling flow generated by the swirling flow generation device 14, a portion of the waste gas entering the diffuser device 22 or even being generated therein is deflected in the radially inward direction and thus in the upstream direction, i.e., also fed back in the direction toward the mixing chamber 20. Due to this feeding back of combustion waste gas in the combustion process, the percentage of nitrogen oxide contained in the waste gas is markedly reduced. Since this recirculation of combustion waste gas is essentially generated by the flow guiding or the swirling flow and since this recirculation is essentially also independent of whether a flame diaphragm 56 is present or of where this flame diaphragm is positioned, a low-loss splitting of the waste gas stream takes place, so that an efficient combustion operation may also take place in the area of the mixing chamber 20 or of the diffuser device 22 adjoining it. For this combustion operation, essentially the volume of the mixing chamber 20 and the volume defined by the first circumferential wall length area 48, by the circumferential wall transition area 54 and by the second circumferential wall length area 50, and partly by the third circumferential wall length area 52 form a combustion chamber 64 of the combustion chamber assembly unit 10.
[0041] In the embodiment shown in
[0042] There is a difference in the configuration of the swirling flow generation device 14 of the combustion air feed device 18. The swirling flow housing 26 of the combustion air feed device 18 comprises two plate-like or disk-like housing components 66, 68, which are arranged following one another in the direction of the combustion chamber assembly unit longitudinal axis L and which have between them the plurality of flow deflection elements 28 extending from the radially outward direction to the radially inward direction. Flow ducts 70 leading from the radially outward direction to the radially inward direction and following one another, via which the combustion air which is then introduced as swirling flow into the combustion chamber 20 is led from the radially outward direction to the radially inward direction, are thus formed in the circumferential direction. The housing part 68 has a neck section 72 inserted into the upstream end area 30 of the mixing chamber circumferential wall 32 and permanently connected to the mixing chamber circumferential wall 32.
[0043] Also in this embodiment of the combustion chamber assembly unit 10, the combustion air V enters the mixing chamber 20 as a swirling flow, is mixed with the evaporated fuel and burned there, so that the combustion waste gas generated in the combustion chamber 64 during the combustion is also led in the radially inward direction and again back in the direction of the mixing chamber 20 because of the swirling flow partially present in the diffuser device 22.
[0044] While specific embodiments of the invention have been shown and described in detail to illustrate the application of the principles of the invention, it will be understood that the invention may be embodied otherwise without departing from such principles.