Field of the Invention
The present invention relates to a water heater, and particularly to a water heater of an exhaust suction type which suctions and exhausts combustion gas to the outside of the water heater.
Description of the Background Art
It has been known that oscillating combustion occurs depending on a combustion condition in a burner having a large number of burner ports. Namely, when flame is disturbed by disturbance of a flow velocity (an amount per unit time of injection from burner ports) of an air fuel mixture, an amount per unit time of heat generation (a rate of heat generation) by flame fluctuates. When a cycle of fluctuation in pressure caused by this fluctuation coincides with a natural frequency of a burner, this frequency is excited and oscillating combustion occurs. When oscillating combustion occurs, a combustion state becomes unstable and noise may be generated due to oscillation of the burner.
A burner capable of achieving low-NOx combustion and high-load combustion has recently been demanded with reduction in size of the burner. It has been known, however, that oscillating combustion is likely particularly in such a burner (see, for example, Japanese Patent Laid-Open No. 2000-249306).
It has conventionally empirically been known that oscillating combustion is likely to occur when burner ports are equal in size (cross-sectional area). Therefore, for example, measures for suppression of oscillating combustion based on an effect of interference between flames by making sizes of burner ports of combustion tubes non-uniform have been taken. A mechanism of occurrence of oscillating combustion, however, has not sufficiently been clarified. Actually, measures for suppression of oscillating combustion are taken for each individual burner through trial and error by experientially changing a combustion condition, a shape of a burner and the like.
As disclosed in Japanese Utility Model Publication No. 63-24347 and Japanese Utility Model Publication No. 8-585, on the other hand, a water heater of an exhaust suction type having air blow means on a downstream side of an exhaust flow path of a burner in order to suction and exhaust combustion gas to the outside of the water heater has been known.
Conventionally, there has been insufficient discussion of measures for suppression of oscillating combustion when a burner is reduced in size and when low-NOx combustion and high-load combustion are desired in a water heater of an exhaust suction type.
Measures for suppression of oscillating combustion have been discussed for a water heater of a forced exhaust type in which combustion gas is exhausted to the outside as a fan forces outside air into the inside. The present inventors have found, however, that measures similar to those for the water heater of the forced exhaust type alone cannot necessarily sufficiently suppress oscillating combustion in a water heater of an exhaust suction type particularly when a burner is reduced in size and low-NOx combustion and high-load combustion are desired.
The present invention was made in view of the above-described problems, and an object thereof is to provide a water heater of an exhaust suction type capable of more reliably achieving suppression of occurrence of oscillating combustion of a burner.
A water heater according to the present invention includes a burner of a premixed type which generates combustion gas by burning an air fuel mixture in a combustion region, a heat exchanger heating water which flows through the inside, through heat exchange with combustion gas generated in the burner, and a fan suctioning combustion gas which has passed through the heat exchanger and exhausting combustion gas to the outside. The burner includes a burner case partitioned into a combustion chamber and a gas introduction chamber by a partition plate and a plurality of combustion tubes arranged in the combustion chamber. The burner case is provided with an air supply opening for supplying air into the gas introduction chamber. The partition plate has a plurality of opening portions communicating with the inside of the combustion tubes and a plurality of through holes communicating with the outside of the combustion tubes within the combustion chamber.
The water heater according to the present invention is constructed such that the air supply opening has an opening area smaller than a total sum of a total of opening areas of the plurality of opening portions and a total of opening areas of the plurality of through holes. According to such a construction, fluctuation in pressure in the burner case can be suppressed by providing an air flow resistance on an upstream side of the burner. Therefore, a water heater of an exhaust suction type capable of more reliably achieving suppression of occurrence of oscillating combustion of the burner can be provided.
In the water heater according to the present invention, the air supply opening preferably has a plurality of air supply opening portions. Thus, in an environment where fluffy dust or sandy dust is present, dust suctioned into the burner is distributed as compared with a case that a single air supply opening portion is provided, and hence local clogging in a combustion tube located directly above the air supply opening portion can be suppressed.
Preferably, the combustion region is constituted of a plurality of unit regions which can independently be controlled such that an amount of generation of combustion gas can be varied in accordance with requested hot water supply capability, and the air supply opening is arranged at a position other than a portion directly under at least one of the plurality of unit regions which is always combusted in a combustion state of the burner. Thus, an air flow resistance against a flow of air supplied into the always combusted unit region can be higher and fluctuation in pressure in the burner case can more efficiently be suppressed. In addition, since clogging by dust of a combustion tube located in the most important unit region always combusted in a combustion state can be suppressed, the combustion state in the combustion region can be stabilized.
Preferably, a protruding portion protruding outward is provided in a part of a periphery of the air supply opening of the burner case and no protruding portion is provided in other part of the periphery of the air supply opening. Thus, even though a piece of paper which is larger than the opening area of the air supply opening may stick to the air supply opening, a path for air between outside air and the gas introduction chamber can be ensured in a portion where no protruding portion is provided or a portion other than a tip end of the protruding portion, and the air supply opening can be prevented from being closed.
Preferably, the air supply opening is in a rectangular shape and the protruding portion is formed by folding back a part of the burner case outward in a portion corresponding to at least one side of the rectangular shape. Since the air supply opening portion is in a rectangular shape, the protruding portion can readily be formed by folding back a part of the burner case which has been burred outward in advance (burring process) in the portion corresponding to at least one side of the rectangular shape.
Preferably, the protruding portion has a hole portion. Thus, a path for air between outside air and a gas introduction chamber through the hole portion can more reliably be ensured and the air supply opening can more reliably be prevented from being closed.
Preferably, the burner is of a rich and lean combustion type. Since oscillating combustion is particularly likely in this case, measures for suppression of oscillating combustion according to the present invention are effective.
According to the present invention, a water heater of an exhaust suction type capable of more reliably achieving suppression of occurrence of oscillating combustion of a burner can be provided.
An embodiment of the present invention will be described hereinafter with reference to drawings. In the drawings, the same or corresponding elements have the same reference characters allotted. Relation of such a dimension as a length, a width, a thickness, or a depth is modified as appropriate for clarity and brevity of the drawings and does not represent actual dimensional relation.
Referring mainly to
(Burner)
Referring mainly to
A gas supply pipe 10 is connected to a fuel gas introduction chamber 201a which is a part of gas introduction chamber 201. A main electromagnetic valve 10a, a proportional valve 10b, and a plurality of electromagnetic valves 10c are attached to gas supply pipe 10 (see
Referring mainly to
Some of air supplied into gas introduction chamber 201 through air supply opening 25 (air supply opening portions 26 and 27) is mixed as primary air with fuel gas supplied into fuel gas introduction chamber 201a through gas supply pipe 10 to form an air fuel mixture, and this air fuel mixture is supplied into combustion tubes 22 through gas inlets 22aa and 22ab of the plurality of combustion tubes 22 through the plurality of opening portions 20aa and 20ab provided in partition plate 20. Thus, burner 2 is of a premixed type in which combustion gas is generated by burning an air fuel mixture obtained by mixing in advance.
The rest of air supplied into gas introduction chamber 201 through air supply opening 25 is supplied as secondary air to the outside of combustion tubes 22 within combustion chamber 202 while it is rectified, through the plurality of through holes 20b provided in partition plate 20.
Referring mainly to
Referring mainly to
Here, combustion region 28 including the plurality of combustion tubes 22 is constituted of a plurality of unit regions 28a, 28b, and 28c which can independently be controlled so as to allow variation in amount of generation of combustion gas in accordance with requested hot water supply capability. Specifically, two combustion tubes 22 (see
Referring mainly to
In the water heater in the present embodiment, burner 2 is of a rich and lean combustion type. A burner of a rich and lean combustion type is characterized in that an air fuel mixture (a lean gas) of which ratio of air to fuel is higher than 1 is burnt in a lean burner port for achieving lower NOx, while an air fuel mixture (a rich gas) of which ratio of air to fuel is lower than 1 is burnt in a rich burner port adjacent to the lean burner port. A construction of the combustion tube included in the burner of the rich and lean combustion type in the present embodiment will be described.
Referring mainly to
Some of rich gas supplied through gas inlet 22ab for rich gas passes through a hole provided in a sidewall of main body unit 23 and is injected through end rich burner port portions 221a and 222a between an outer wall of main body unit 23 and an inner wall of each of side rich-gas units 221 and 222. Rich gas other than this passes through a rich-gas passage within main body unit 23 and is injected from a rich burner port portion 223a of central rich-gas unit 223. Lean gas supplied through gas inlet 22aa for lean gas passes through a lean-gas passage within main body unit 23 and is injected from lean burner port portions 224a and 225a of a pair of lean-gas units 224 and 225.
Referring mainly to
Air supply opening portions 26 and 27 are arranged at positions other than a portion directly under unit region 28a including two combustion tubes 22 (two combustion tubes 22 stored in burner case 21 shown in
Air supply opening portion 26 is arranged directly under unit region 28b (
Referring mainly to
(Primary Heat Exchanger)
Referring mainly to
(Secondary Heat Exchanger)
Referring mainly to
Thus, the water heater in the present embodiment is of a latent heat recovery type which includes a secondary heat exchanger recovering mainly latent heat in addition to the primary heat exchanger recovering mainly sensible heat of combustion gas, and can obtain heat of condensation (latent heat) by condensing vapor contained in combustion gas and can achieve high heat exchange efficiency. The water heater according to the present invention is not limited to the water heater of the latent heat recovery type, and a water heater other than the latent heat recovery type may be applicable.
Secondary heat exchanger 4 mainly has a drainage water discharge port 4a, a heat conduction pipes 4b, a sidewall 4c, a bottom wall 4d, and an upper wall 4g. Heat conduction pipes 4b is layered as it is helically wound. Sidewall 4c, bottom wall 4d, and upper wall 4g are arranged to surround heat conduction pipes 4b.
In secondary heat exchanger 4, water flowing through heat conduction pipes 4b is pre-heated (heated) through heat exchange with combustion gas of which heat has been exchanged in primary heat exchanger 3. As a temperature of combustion gas is lowered to approximately 60° C. through this process, moisture contained in combustion gas is condensed so that latent heat can be obtained. In addition, latent heat is recovered in secondary heat exchanger 4 and moisture contained in combustion gas is condensed, thereby producing drainage water.
Bottom wall 4d serves as a partition between primary heat exchanger 3 and secondary heat exchanger 4, and also serves as an upper wall of primary heat exchanger 3. This bottom wall 4d is provided with an opening 4e that allows communication between a space where heat conduction pipe 3a of primary heat exchanger 3 is arranged and a space where heat conduction pipes 4b of secondary heat exchanger 4 is arranged.
As shown with hollow arrows in
Upper wall 4g is provided with an opening 4h. This opening 4h allows communication between the space where heat conduction pipes 4b of secondary heat exchanger 4 is arranged and an internal space in exhaust box 5. As shown with hollow arrows in
Drainage water discharge port 4a is provided in sidewall 4c or bottom wall 4d. This drainage water discharge port 4a opens at a lowest position in the space surrounded by sidewall 4c, bottom wall 4d and upper wall 4g (at a lowermost position in a vertical direction in the state where the water heater is placed), which is lower than the lowermost end of heat conduction pipes 4b. Thus, drainage water produced in secondary heat exchanger 4 can be guided to drainage water discharge port 4a along bottom wall 4d and sidewall 4c as shown with black arrows in
(Exhaust Box)
Referring mainly to
Exhaust box 5 mainly has a box main body 5a and a fan connection portion 5b. An internal space of box main body 5a communicates through opening 4h of secondary heat exchanger 4 with the internal space in which heat conduction pipes 4b of secondary heat exchanger 4 is arranged. Fan connection portion 5b is provided so as to protrude from the upper portion of box main body 5a. This fan connection portion 5b has a cylindrical shape, for example, and has an internal space 5ba that communicates with the internal space of box main body 5a.
(Fan)
Referring mainly to
Fan 6 is arranged downstream of the heat exchanger (the primary heat exchanger and the secondary heat exchanger) in the direction of flow of combustion gas and constructed to pull air into burner 2. Fan 6 is connected to exhaust tube 7 located outside water heater 100 in order to suction combustion gas which has passed through secondary heat exchanger 4 (of which heat has been exchanged in secondary heat exchanger 4) and to emit combustion gas to the outside of water heater 100. Exhaust tube 7 is arranged outside water heater 100 and connected on an outer circumferential side of fan case 61. Therefore, combustion gas emitted to the outer circumferential side of impeller 62 can be emitted out of water heater 100 through exhaust tube 7.
Fan 6 is thus located downstream of exhaust box 5 and secondary heat exchanger 4 in the flow of combustion gas. Namely, in water heater 100, burner 2, primary heat exchanger 3, secondary heat exchanger 4, exhaust box 5, and fan 6 are arranged in this order from upstream to downstream in the flow of combustion gas produced in burner 2. Since combustion gas is suctioned and exhausted by means of fan 6 as above in this arrangement, water heater 100 in the present embodiment is a water heater of an exhaust suction and combustion type.
(Drainage Water Tank)
In the water heater of the latent heat recovery type, drainage water (condensate) resulting from condensation of vapor in combustion gas within the secondary heat exchanger is generated. Here, combustion gas contains a nitrogen oxide generated as a result of reaction between nitrogen and oxygen in air caused by combustion or a sulfur oxide generated as a result of reaction between a sulfur component in fuel and oxygen caused by combustion. Since drainage water thus generated in the secondary heat exchanger exhibits strong acidity owing to such a nitrogen oxide or sulfur oxide, normally, it is discharged to the outside after it is neutralized by a neutralizer disposed in the drainage water tank.
Referring mainly to
(Pipe)
Referring mainly to
Functions and effects of the water heater in the present embodiment will now be described. Initially, in the water heater in the present embodiment, the opening area of air supply opening 25 (the total of the opening area of air supply opening portion 26 and the opening area of air supply opening portion 27) in the bottom plate of burner case 21 is smaller than the total sum of the total of the opening areas of the plurality of opening portions 22aa, 20ab provided in the wall surface of partition plate 20 and the total of the opening areas of the plurality of through holes 20b provided in the bottom surface of partition plate 20. According to such a construction, fluctuation in pressure in burner case 21 can be suppressed by providing an air flow resistance on the upstream side of burner 2. Therefore, a water heater of an exhaust suction type in which occurrence of oscillating combustion of the burner can more reliably be suppressed can be provided. Since fluctuation in pressure in burner case 21 freely takes place when there is no air flow resistance on the upstream side of burner 2 (relation as above between the opening area of air supply opening 25 and the opening areas of opening portions 20aa and 20ab and through holes 22b in partition plate 20 is not satisfied), an effect to suppress fluctuation in pressure is not obtained.
In the water heater in the present embodiment, air supply opening 25 is constituted of two separate air supply opening portions 26 and 27. Thus, in an environment where fluffy dust or sandy dust is present, dust suctioned into burner 2 is distributed as compared with a case that a single air supply opening portion is provided, and hence local clogging in a combustion tube located directly above the air supply opening portion can be suppressed.
In the water heater in the present embodiment, air supply opening portions 26 and 27 are arranged at positions other than a portion directly under unit region 28a including two combustion tubes 22 which is always combusted in a state of combustion of burner 2, of the plurality of unit regions 28a, 28b, and 28c constituting combustion region 28. Thus, an air flow resistance against a flow of air supplied into the always combusted unit region can be higher and fluctuation in pressure in the burner case can more efficiently be suppressed. In addition, since clogging by dust of a combustion tube located in the most important unit region always combusted in a combustion state can be suppressed, the combustion state in the combustion region can be stabilized.
In the water heater in the present embodiment, protruding portions 26a, 26b, 27a, and 27b protruding outward are provided in a part of the periphery of air supply opening 25 (air supply opening portions 26 and 27) in the bottom plate of burner case 21 and no protruding portion is provided in other portions of the periphery of air supply opening 25. Thus, even though a piece of paper which is larger than the opening area of air supply opening 25 may stick to air supply opening 25, a path for air between outside air and gas introduction chamber 201 can be ensured in a portion where no protruding portion is provided and the air supply opening can be prevented from being closed.
In the water heater in the present embodiment, since air supply opening portions 26 and 27 are in the rectangular shape, protruding portions 26a, 26b, 27a, and 27b can readily be formed by folding back a part of burner case 21 which has been worked in advance outward (burring process) in a portion corresponding to at least one side of the rectangular shape.
In the water heater in the present embodiment, lower NOx and stabilization of combustion flame can be achieved by employing a burner of a rich and lean combustion type.
A water heater in the present embodiment is different from that in the first embodiment in shape of protruding portions 27a and 27b provided around air supply opening 25 (air supply opening portions 26 and 27) of burner case 21. Since the present embodiment is otherwise the same as the first embodiment, redundant description will not be provided.
Referring to
When air supply opening portion 27 provided in the bottom plate of burner case 21 is equal in size, as shown in
Air supply opening portion 26 is smaller in opening area than air supply opening portion 27 in the present embodiment. Therefore, even when air supply opening portion 26 alone is clogged, significant deterioration in combustion does not take place, and hence a shape of protruding portions 26a and 26b is similar to that in the first embodiment. Protruding portions 26a and 26b, however, may be deformed similarly to protruding portions 27a and 27b in the present embodiment.
In the water heater in the present embodiment described above, in a case that protruding portions 27a and 27b have hole portions 27c and 27d, even when a piece of paper greater than an opening area of air supply opening portion 27 may stick to air supply opening portion 27, a path for air between outside air and gas introduction chamber 201 can be ensured through hole portions 27c and 27d and hence clogging of the air supply opening can more reliably be suppressed.
Although embodiments of the present invention have been described, it should be understood that the embodiments disclosed herein are illustrative and non-restrictive in every respect. The scope of the present invention is defined by the terms of the claims, and is intended to include any modifications within the scope and meaning equivalent to the terms of the claims.
Number | Date | Country | Kind |
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2014-151718 | Jul 2014 | JP | national |
Number | Name | Date | Kind |
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4501261 | Tsutsui | Feb 1985 | A |
5950573 | Shellenberger | Sep 1999 | A |
7597066 | Shimada | Oct 2009 | B2 |
8267051 | Ando | Sep 2012 | B2 |
20040039354 | Lutz, II | Feb 2004 | A1 |
20130149653 | Fukunishi | Jun 2013 | A1 |
Number | Date | Country |
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S63-024347 | Jul 1988 | JP |
H08-000585 | Jan 1996 | JP |
2000-249306 | Sep 2000 | JP |
Entry |
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Decision to Grant Patent; issued by the Japanese Patent Office dated Oct. 27, 2015, which corresponds to Japanese Patent Application No. 2014-151718 and is related to U.S. Appl. No. 14/750,983; with English language translation. |
Number | Date | Country | |
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20160025373 A1 | Jan 2016 | US |