This application claims the priority benefit of Japan application serial no. 2020-068371, filed on Apr. 6, 2020. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a type of heat exchanger that is used as a component of a water heating device such as a hot water supply device and recovers heat from a heating medium such as combustion gas by using a heat transfer pipe, and a water heating device including the same.
As an example of a heat exchanger, there is one described in Patent Document 1.
In the heat exchanger described in the same document, a meandering heat transfer pipe is used for a heat transfer pipe for recovering heat from combustion gas. The meandering heat transfer pipe has a configuration in which a plurality of straight pipe parts are connected to each other via a plurality of curved pipe parts. In the above document, a plurality of heat transfer pipes are used for such a meandering heat transfer pipe, and these are stacked in a vertical height direction, for example. Further, it is conceivable that heat transfer pipes adjacent to each other be set, for example, in an array in which they are displaced from each other in a horizontal direction so that combustion gas can easily act on each heat transfer pipe.
On the other hand, in the heat transfer pipes, the curved pipe parts are processed into flat shapes and have thicknesses smaller than those of the straight pipe parts. This makes it possible to bring heat transfer pipes adjacent to each other close to each other. As a result, it is possible to reduce a width of the entire plurality of heat transfer pipes in the stacking direction and to reduce a size of the entire heat exchanger.
However, according to the above-mentioned conventional technique, there is still room for improvement as described below.
First, since the entire curved pipe parts of the meandering heat transfer pipes are formed in flat shapes, there is a disadvantage that the resistance (flow path resistance) when a fluid to be heated flows through the inside of the heat transfer pipe increases.
Secondly, since an amount of processing for forming the entirety of each curved pipe part into a flat shape is large, a residual stress increases. This causes stress cracking in the heat transfer pipe, which is not preferable. When the heat exchanger is used, a large pressure may act on the heat transfer pipe due to, for example, a water hammer phenomenon, and thus it is desirable to reduce the above-mentioned residual stress as much as possible.
Thirdly, as a means for forming each curved pipe part of the meandering heat transfer pipe in a flat shape, for example, as shown in
[Patent Document 1] Japanese Patent No. 4143431
A heat exchanger provided according to an embodiment of the disclosure includes a plurality of heat transfer pipes that have a meandering shape, in which a plurality of straight pipe parts that extend in an x direction among x, y, and z directions intersecting with each other and are arranged at intervals in the z direction are connected in a series via a plurality of curved pipe parts, and are located in a region through which a heating medium flows and stacked in the y direction. The plurality of heat transfer pipes comprises a first heat transfer pipe and a second heat transfer pipe, which are adjacent to each other in the y direction and misaligned with respect to each other in the z direction such that, in a view in the y direction, the plurality of straight pipe parts are in a non-overlapping state and parts of the plurality of curved pipe parts are in an overlapping state. A first recessed part recessed in the y direction is provided in a part of each curved pipe part of the first heat transfer pipe, and a part of each curved pipe part of the second heat transfer pipe is fitted into the first recessed part.
A water heating device provided according to an embodiment of the disclosure includes the heat exchanger mentioned above.
Other features and advantages of the disclosure will become apparent from the following description of embodiments of the invention with reference to the accompanying drawings.
According to an embodiment of the disclosure, the disclosure provides a heat exchanger that can solve problems such as an increase in flow path resistance of a meandering heat transfer pipe and a large amount of residual stress generated in the heat transfer pipe and can appropriately achieve overall reduction in size, and a water heating device including the heat exchanger.
According to an embodiment of the disclosure, each curved pipe part of the first heat transfer pipe comprises a pair of side surface parts facing in the y direction, and the first recessed part is provided in each of the pair of side surface parts.
According to an embodiment of the disclosure, each curved pipe part of the first heat transfer pipe comprises a pair of side surface parts facing in the y direction, and the first recessed part is provided only on one of the pair of side surface parts.
According to an embodiment of the disclosure, a second recessed part recessed in the y direction is provided in a part of each curved pipe part of the second heat transfer pipe, and respective formation places of the first and second recessed parts are fitted to each other.
According to an embodiment of the disclosure, the second heat transfer pipe has a configuration coincides with a configuration of a heat transfer pipe having a same shape and size with the first heat transfer pipe and has been turned upside down.
According to an embodiment of the disclosure, the first and second heat transfer pipes are configured by using metal round pipes.
According to an embodiment of the disclosure, the heat exchanger according to the disclosure further comprises a case which houses the first and second heat transfer pipes therein and the heating medium is supplied to an inside of the case, and a pair of header parts for inflow of water and outflow of hot water for each of the first and second heat transfer pipes.
According to an embodiment of the disclosure, the x and y directions are both horizontal directions, and the z direction is a vertical height direction.
Hereinafter, preferred embodiments of the disclosure will be specifically described with reference to the drawings.
A heat exchanger HE shown in
The case 1 has a substantially rectangular tubular shape or a frame shape with an upper surface part and a lower surface part being open, and a heating medium is supplied to the inside of the case 1.
The plurality of heat transfer pipes 2 are meandering heat transfer pipes formed by using round pipes made of a metal such as stainless steel and are housed in the case 1. More specifically, as clearly shown in
Both end parts of each heat transfer pipe 2 penetrate a side wall part 10 of the case 1 and are connected to the header parts 7a and 7b provided on an outer surface side of the side wall part 10. As a result, water supplied from the outside to the header part 7a passes through each heat transfer pipe 2, reaches the header part 7b, and outflows. In such a process, the water is heated by combustion gas.
The plurality of heat transfer pipes 2 are divided into first and second heat transfer pipes 2A and 2B, and these are provided with first and second recessed parts 3A and 3B. This point will be described in more detail below.
The plurality of heat transfer pipes 2 are arranged in a lateral width direction of the case 1 (a left to right direction in
As shown in
The second recessed part 3B is provided at a place corresponding to the above-mentioned overlapping part OV in each curved pipe part 21 of the second heat transfer pipe 2B and is recessed in the y direction. Here, the second heat transfer pipe 2B in the present embodiment has a configuration in which the first heat transfer pipe 2A is turned upside down. Therefore, similarly to the above-mentioned first recessed part 3A, the second recessed part 3B is provided on each of the pair of left and right side surface parts of each curved pipe part 21, and the pair of left and right second recessed parts 3B face each other.
The plurality of first and second heat transfer pipes 2A and 2B are set to be in a state in which the formation parts of the first recessed parts 3A and the formation parts of the second recessed parts 3B are fitted to each other, that is, a state in which the formation parts of the second recessed parts 3B are fitted in the first recessed parts 3A, and the formation parts of the first recessed parts 3A are fitted in the second recessed parts 3B (see
Next, an operation of the above-mentioned heat exchanger HE will be described.
First, as described above, in the overlapping parts OV of each curved pipe parts 21 of the first and second heat transfer pipes 2A and 2B, the formations parts of the first and second recessed parts 3A and 3B are fitted to each other. For this reason, as shown in the partial enlarged view of
The first and second heat transfer pipes 2A and 2B do not have a configuration in which the entire curved pipe part 21 is formed in a flat shape, but have a configuration in which the first and second recessed parts 3A and 3B are only partially provided in each curved pipe part 21. For this reason, it is possible to reduce the resistance (flow path resistance) when water flows through each curved pipe part 21. Further, the first and second recessed parts 3A and 3B are relatively small in size, and thus when these are formed on each curved pipe part 21 by pressing, the amount of pressing (an amount of deformation) can be reduced. Therefore, the residual stress caused by the pressing can be reduced, and the first and second heat transfer pipes 2A and 2B can be made excellent in durability strength. Further, when the amount of pressing on the curved pipe part 21 is large, the heat transfer pipe 2 may be deformed so that both end parts of the curved pipe part 21 are widened, but according to the present embodiment, it is possible to eliminate such a risk.
Further, in the present embodiment, any of the first and second recessed parts 3A and 3B is provided on each of the pair of left and right side surface parts of each curved pipe part 21. For this reason, as compared with the case in which any of the first and second recessed parts 3A and 3B is provided in only one of the pair of side surface parts, for example, as in another embodiment, which will be described later, it is possible to reduce the overall width L1 of the plurality of heat transfer pipes 2 while reducing depth dimensions of the first and second recessed parts 3A and 3B. If the depth dimensions of the first and second recessed parts 3A and 3B are increased, the residual stress when these parts are pressed may increase, but according to the present embodiment, it is possible to appropriately avoid such a risk.
As described above, the second heat transfer pipe 2B has a configuration in which the first heat transfer pipe 2A is turned upside down. For this reason, manufacturing costs of the heat exchanger HE can be reduced as compared with the case in which the first and second heat transfer pipes 2A and 2B having different shapes and sizes are used.
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The disclosure is not limited to the contents of the above-described embodiment. The specific configuration of each part of the heat exchanger and the water heating device according to the disclosure can be redesigned in a various way within the scope intended by the disclosure.
The specific shape, size, depth, or the like of the first and second recessed parts are not limited. It does not matter if their shapes or the like are different between in the case in which the first and second recessed parts are provided on each of the pair of left and right side surface parts of the curved pipe parts of the heat transfer pipe, and in the case in which they are provided on only one of them.
In the above embodiment, among the plurality of heat transfer pipes misaligned in the vertical height direction, one on the lower height side is set as the first heat transfer pipe, and the other is set as the second heat transfer pipe, but the disclosure is not limited thereto and may be the reverse of the embodiment described above.
Further, in the above-described embodiment, the x and y directions indicated in the disclosure are horizontal directions, and the z direction corresponds to the vertical height direction, but the disclosure is not limited thereto, and these directions can be appropriately selected. For example, it is also possible to have a configuration in which a plurality of heat transfer pipes lying substantially horizontally are stacked (arranged) in the vertical height direction, that is, a configuration in which the y direction is the vertical height direction. In this case, the width of the entire plurality of heat transfer pipes in the vertical height direction can be reduced, and reduction in size of the heat exchanger can be achieved.
The heat transfer pipe has a meandering shape, but the specific size, number, material, or the like of the straight pipe part and the curved pipe part are not limited. The heat transfer pipe can be formed by bending a single pipe member, but instead of this, the straight pipe part and the curved pipe part may be formed of separate members, and these may be integrally connected.
The heating medium indicated in the disclosure is not limited to combustion gas generated by the burner and may be high-temperature exhaust gas or the like. The heat exchanger according to the disclosure can be used for anything other than latent heat recovery. The water heating device indicated in the disclosure is a concept including not only a hot water supply device for general hot water supply and bath hot water supply, but also a water heating device for hot water heating or snow melting.
Number | Date | Country | Kind |
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2020-068371 | Apr 2020 | JP | national |