VEHICLE HEATER
20190054800 ยท 2019-02-21
Inventors
Cpc classification
F24H1/009
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/2278
PERFORMING OPERATIONS; TRANSPORTING
B60H1/2212
PERFORMING OPERATIONS; TRANSPORTING
B60H1/2203
PERFORMING OPERATIONS; TRANSPORTING
F23M5/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23C2700/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2241/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H2001/2271
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A vehicle heater housing (46) has an inlet area (49), an outlet area (51) and an air flow space (47) for air to be heated with a burner chamber assembly unit (30), to be fed with combustion air and fuel. A heat exchanger area (11), including a heat exchanger housing (12), is elongated in the direction of a housing longitudinal axis (L) with an outer side (24) around which air flowing in the air flow space flows. Heat transfer ribs are on a side of the heat exchanger housing. The heater housing has a housing circumferential wall (56) and an outlet front wall area (58). The heat transfer ribs have a longitudinal edge (64) extending along the housing circumferential wall and a radial edge extending along the outlet front wall area. A distance of the radial edge from the outlet front wall area changes from radially outwards to radially inwards.
Claims
1. A vehicle heater comprising: a heater housing comprising a housing circumferential wall defining an air flow space for air to be heated and comprising an inlet area for an inlet of air into the air flow space and an outlet area for an outlet of air from the air flow space, the heater housing having an outlet front wall area adjacent to the housing circumferential wall; a burner chamber assembly unit to be fed with combustion air and fuel, the burner chamber assembly unit being disposed in the heater housing; and a heat exchanger area comprised of a heat exchanger housing having an elongated configuration in a direction of a housing longitudinal axis and around which air flowing in the air flow space flows on an outer side and heat transfer ribs provided on the outer side of the heat exchanger housing, the heat transfer ribs having a longitudinal edge, extending along the housing circumferential wall, and a radial edge extending along the outlet front wall area, wherein a distance of the radial edge changes from radially outwards to radially inwards in at least some areas of at least one of the heat transfer ribs.
2. A vehicle heater in accordance with claim 1, wherein the distance of the radial edge from the outlet front wall area increases, from radially outwards to radially inwards in at least some areas of each of the heat transfer ribs.
3. A vehicle heater in accordance with claim 1, wherein: the outlet front wall area has a conically tapering configuration in at least some areas; and a distance of the radial edge from the outlet front wall area increases, at least in the section of the radial edge extending along the conically tapering area of the outlet front wall area.
4. A vehicle heater in accordance with claim 3, wherein the conically tapering area of the outlet front wall area is adjacent to the housing circumferential wall in a radially outward direction and is adjacent to a housing outlet section, providing an outlet opening of the outlet area and essentially cylindrical, in the radially inward direction.
5. A vehicle heater in accordance with claim 1, wherein the radial edge extends essentially linearly in the area with varying distance to the outlet front wall area.
6. A vehicle heater in accordance with claim 1, wherein the radial edge has an angle in the range of 5? to 15?, in relation to the outlet front wall area, in the area with varying distance to the outlet front wall area.
7. A vehicle heater in accordance with claim 1, wherein: the radial edge of the at least one heat transfer rib comprises: a first radial edge area adjacent to the longitudinal edge with respect to a radially outward direction; and a second radial edge area adjacent to the first radial edge area with respect to a radially inward direction and oriented at a right angle nor nearly at a right angle to the housing longitudinal axis; a distance of the radial edge to the outlet front wall increases, in the first radial edge area or in the second radial edge area or in both the first radial edge area or in the second radial edge; and the radial edge is located axially opposite the outlet area with respect the direction of the housing longitudinal axis.
8. A vehicle heater in accordance with claim 1, wherein: the housing circumferential wall has an essentially cylindrical configuration at least in an area enclosing the heat exchanger housing; a longitudinal edge of at least one heat transfer rib is disposed at an essentially constant distance to the housing circumferential wall in the direction of the housing longitudinal axis.
9. A vehicle heater in accordance with claim 1, wherein the heat transfer ribs extend essentially linearly in the direction of the housing longitudinal axis.
10. A vehicle heater in accordance with claim 1, wherein the heat exchanger housing comprises a circumferential wall area extending essentially in a direction of the housing longitudinal axis and a bottom wall area, disposed adjacent to the circumferential wall area and comprising a dome shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In the drawings:
[0015]
[0016]
DESCRIPTION OF PREFERRED EMBODIMENTS
[0017] Referring to the drawings, a fuel-operated vehicle heater 10 has a burner chamber assembly unit and a blower, which is used both to feed the combustion air and to feed the heating air as best shown in
[0018] A burner chamber assembly unit 30 with a burner chamber housing 32 and a Y-pipe 34 is carried on a combustion assembly unit carrier area 28, which is also axially adjacent to the circumferential wall area 14. Liquid fuel is fed via a fuel feed line 38 in a porous evaporator medium 36 provided at a bottom area of the burner chamber housing 32. The air necessary for the combustion is fed by a combustion air blower 40, configured here as a side channel blower, in the direction towards the burner chamber housing 32. The combustion air blower 40 is likewise carried on the combustion assembly unit carrier area 28 of the heat exchanger housing 12. The combustion air blower 40 comprises an electric motor 42, which drives both a feed wheel 43 used to feed the combustion air and a feed wheel 44 used to feed the air to be heated.
[0019] A heater housing 46 defines the air flow space 47 through which the air to be heated flows and has a heating air inlet opening 48 in an inlet area 49 close to the feed wheel 44. The air fed by the feed wheel 44 flows along the heater housing 46 in the direction towards the heat exchanger housing 12 and flows around the second heat transfer ribs 26 before it exits from the heater housing 46 at a heating air outlet opening 50 of an outlet area 51 lying near the bottom wall area 18.
[0020] The heater housing 46 comprises a housing circumferential wall 56 with, for example, an essentially rectangular cross section and with an essentially cylindrical structure in relation to the housing longitudinal axis L. An outlet front wall area, which is generally designated by 58, is adjacent to the end of the housing circumferential wall 56 located near the outlet area 51. The outlet wall area 58 comprises a conically tapering area 60, which is adjacent to the housing circumferential wall 56 in the radially outward direction in a transition area and is adjacent to a housing outlet section 62 with an essentially cylindrical configuration, for example, with a circular structure in the radially inward direction in a transition area. The heating air outlet opening 50 of the outlet area 51 is formed in this housing outlet section 62.
[0021] The combustion air fed by the combustion air blower 40 into the burner chamber housing 32 is burned there with fuel evaporated from the porous evaporator medium 36. The combustion exhaust gases flow along the Y-pipe 34 and reach the interior 16. There, the combustion exhaust gases flow along the first heat transfer ribs 22 back in the direction towards an exhaust gas outlet opening 54 formed in an exhaust gas pipe 52.
[0022] The heat transfer ribs 26 provided on the outer side 24 of the heat exchanger housing 12, i.e., the second heat transfer ribs 26, have each in the radially outward direction a longitudinal edge 64 extending essentially in the direction of the housing longitudinal axis L and having an essentially constant distance to the housing circumferential wall 56. In the area located near the outlet area 51, the longitudinal edge 64 passes over into a radial edge 66. In a first radial edge area 68, the radial edge 66 is adjacent to the longitudinal edge 64. A second radial edge area 70, which is oriented essentially at right angles to the housing longitudinal axis L and is located opposite the heating air outlet opening 50 in the axial direction, is adjacent to the first radial edge area 68 in the radially inward direction. The first radial edge area 68 extends essentially parallel to the conically tapering area 60 of the outlet front wall area 58.
[0023]
[0024] It can be clearly seen in
[0025] The above-described embodiment is preferably selected in all second heat transfer ribs 26, which have an identical shape and identical dimensions especially in the axial end area of same located near the outlet front wall area 58, so that the first radial edge areas 68 especially also define a common conical surface enclosing same.
[0026] A nonuniform pressure loss of the air flowing through the air flow space 47 is generated with this configuration of the axial end area of the heat exchanger housing 12, which leads to this air being forced in a reinforced manner in contact with the heat exchanger housing 12, especially the bottom wall area 18 of same, which is configured essentially with the shape of a spherical dome, in order to absorb heat from the combustion exhaust gases flowing along the inner side 20 in a reinforced manner there. It is thus guaranteed that a greater part of the heat transported into the combustion exhaust gases can be transferred to the air flowing through the heater housing 46.
[0027] Finally, it should be pointed out that the embodiment of the heat exchanger housing 12 according to the present invention described in detail above with reference to
[0028] The vehicle heater 10 may have a different configuration than shown in
[0029] 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.