HOT WATER SUPPLIER
20230091101 · 2023-03-23
Assignee
Inventors
- Naoya Yoshida (Hyogo, JP)
- Toshihiko Hamagami (Hyogo, JP)
- Kazuhiro Nishimura (Hyogo, JP)
- Hisataka Hayase (Hyogo, JP)
Cpc classification
Y02B30/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G01N25/00
PHYSICS
F24D17/0078
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A hot water supplier includes a combustion unit including multiple combustion stages; a combustion fan supplying combustion air; a fuel supply unit supplying fuel; a heat exchange unit; a water supply unit supplying hot water to heat exchange unit; a hot water tapping unit discharging hot water heated in heat exchange unit by using combustion heat obtained by burning fuel in combustion unit; and a control unit controlling heating operation. When reheating operation is allowed in which hot water from hot water tapping unit is returned to water supply unit and reheated by heat exchange unit, control unit stores heating time using only a combustion stage having minimum combustion capacity during reheating operation as time data. If this time data tends to increase over time, deterioration progress of a heat retaining material covering a hot water pipe to which hot water is supplied from hot water tapping unit is determined.
Claims
1. A hot water supplier, comprising a combustion unit that comprises a plurality of combustion stages for switching between combustion capacities according to required heat; a combustion fan that supplies combustion air to the combustion unit; a fuel supply unit that supplies fuel to the combustion unit; a heat exchange unit; a water supply unit that supplies hot water to the heat exchange unit; a hot water tapping unit that discharges hot water heated in the heat exchange unit by using combustion heat obtained by burning fuel in the combustion unit through heating operation; and a control unit that controls the heating operation, wherein, when the hot water supplier is configured to allow reheating operation in which the hot water from the hot water tapping unit is returned to the water supply unit and heated by the heat exchange unit, the control unit stores heating time using only a combustion stage having a minimum combustion capacity of the combustion unit during the reheating operation as time data, and if this time data tends to increase over time, progress of deterioration of a heat retaining material that covers a hot water pipe to which the hot water is supplied from the hot water tapping unit is determined.
2. The hot water supplier according to claim 1, wherein the control unit is communicably connected to an external server via a communication network and transmits the time data to the external server, and the progress of deterioration of the heat retaining material is determined by the external server instead of the control unit based on the accumulated time data.
3. The hot water supplier according to claim 1, wherein the control unit corrects the time data according to outside air temperature.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DESCRIPTION OF THE EMBODIMENTS
[0023] Hereinafter, embodiments for implementing the disclosure will be described based on embodiments.
Embodiment
[0024] First, an instant hot water circulation system 1 that provides instant hot water function will be described. As shown in
[0025] For an instant hot water function that heated hot water is supplied as soon as the hot water supply faucets F1-F3 are opened, the instant hot water circulation system 1 is configured such that the hot water heated by the hot water supplier 10 and supplied to the hot water supply pipe 2 returns from the hot water supply pipe 2 to the hot water supplier 10 via a return pipe 4 connected to the water supply pipe 3. Circulation pumps 5a and 5b are respectively installed in the branch pipes of the return pipe 4 which are branched into two in the middle, and the branch pipes merge and are connected to the water supply pipe 3. A branch point of the return pipe 4 is equipped with a flow path switching valve 6 for switching between the circulation pumps 5a and 5b for circulating hot water. In order to constantly circulate hot water, one of the circulation pumps 5a and 5b is always driven, and the circulation pump to be driven is switched periodically.
[0026] The hot water supply pipe 2 and the return pipe 4 are hot water pipes to which hot water is supplied from the hot water supplier 10, and are covered with a heat retaining material 7 in order to prevent heat dissipation of the circulating hot water. The heat retaining material 7 is formed of, for example, a foamed resin. When the temperature of the circulating hot water becomes lower than the preset reheating start temperature, the temperature of the circulating hot water is maintained by performing a reheating operation of reheating through the heating operation of the hot water supplier 10 while circulating the hot water.
[0027] Next, the hot water supplier 10 will be described. As shown in
[0028] The water supply pipe 3 is connected to a water supply unit 15 that supplies hot water to the heat exchange unit 14. A hot water tapping unit 16 for discharging the hot water heated by the heat exchange unit 14 is connected to the hot water supply pipe 2. The water supply unit 15 includes a water supply temperature sensor 17 and a flow rate sensor 18. The hot water tapping unit 16 includes a first hot water tapping temperature sensor 19 and a second hot water tapping temperature sensor 20, and by mixing the hot water heated by the heat exchange unit 14 with the hot water from the water supply unit 15 via a bypass passage 22 provided with a flow rate regulating valve 21, the temperature is adjusted and the hot water is discharged.
[0029] The hot water supplier 10 includes a control unit 24 that drives the combustion fan 13, drives the flow rate regulating valve 21, and adjusts the combustion capacity of the combustion unit 11 to control the heating operation. As shown in
[0030] The control unit 24 receives detection signals of the water supply temperature sensor 17, the flow rate sensor 18, the first hot water tapping temperature sensor 19, and the second hot water tapping temperature sensor 20, and adjusts the temperature of the hot water heated by the heat exchange unit 14 to the set temperature. The control unit 24 is connected to a hot water supply remote controller 25 capable of setting the hot water supply temperature and the like, and is communicably connected to an external server 35 connected to a communication network 32 such as the Internet through a communication device 31 connected to the hot water supply remote controller 25.
[0031] When the hot water supply faucet F1 of the plurality of hot water supply faucets F1-F3, for example, is opened to start the supply of hot water, the water supply temperature sensor 17 detects the inflow of low-temperature tap water or the flow rate sensor 18 detects a flow rate larger than that during circulation, and the heating operation is started. When hot water is not supplied, in a case where the circulating hot water gradually dissipates heat and the detected temperature of the water supply temperature sensor 17 drops below the reheating start temperature, for example, reheating operation is performed by burning using only the combustion stage 11a having the minimum combustion capacity (one-stage combustion). Moreover, in a case where the detected temperature of the water supply temperature sensor 17 becomes equal to or higher than a preset heating end temperature, the reheating operation is ended. Through the reheating operation, the temperature of the circulating hot water is maintained, for example, within a certain range near the hot water supply temperature set by the hot water supply remote controller 25.
[0032] During the heating operation including the reheating operation, the control unit 24 takes the time data for heating using only the combustion stage 11a having the minimum combustion capacity (one-stage combustion time) as time data, and stores and accumulates heating operation data including the time data. Further, when the one-stage combustion time (time data) tends to increase over time, it is determined that the heat retaining material 7 covering hot water pipes (hot water supply pipe 2, and return pipe 4) to which heated hot water is supplied is deteriorating. One-stage combustion is sufficient to maintain the temperature of the circulating hot water, and the heating operations of the one-stage combustion is mostly a reheating operation for maintaining the temperature of the circulating hot water.
[0033] The increase in the one-stage combustion time (time data) indicates that the temperature of the discharged hot water drops immediately during circulation and the frequency of the reheating operation increases. Therefore, the control unit 24 may determine the progress of deterioration of the heat retaining material 7 by the increase in the one-stage combustion time. As a result of the determination, when the heat retaining material 7 needs to be replaced and repaired, a notification prompting the replacement and repair may be performed, for example, by displaying on the hot water supply remote controller 25 of the hot water supplier 10.
[0034] For example, as shown in
[0035] Also, for example, as shown in
[0036] The lower the outside air temperature, the easier it is for the temperature of the circulating hot water to drop. For example, as shown in
[0037] For example, correction is performed by averaging the time data of the period when the outside air temperature is high and the one-stage combustion time is short and of the period when the outside air temperature is low and the one-stage combustion time is long so as not to depend on the outside air temperature. The outside air temperature may be obtained from a weather server (not shown) that provides weather data via the communication network 32, for example, and when the hot water supplier 10 is provided with an outside air temperature sensor (not shown), the detected temperature by the outside air temperature sensor may be used as the outside air temperature. By correcting the time data, the progress of deterioration of the heat retaining material 7 can be determined not only by comparison with the same month of the previous year but also by comparison between arbitrary months. Further, the relationship shown in
[0038] It is also possible that the control unit 24 periodically transmits the heating operation data including the one-stage combustion time (time data) newly stored during the heating operation to the external server 35, and instead of the control unit 24, the external server 35 determines that the deterioration of the heat retaining material 7 is progressing when the accumulated time data tends to increase over time. There is no need to accumulate long-term heating operation data in the control unit 24, and progress of deterioration of the heat retaining material 7 can be determined without increasing the processing load of the control unit 24. Therefore, the control unit 24 having a high capacity is not required, and the increase in the manufacturing cost of the hot water supplier 10 is suppressed.
[0039] As shown in
[0040] The operation and effect of the hot water supplier 10 according to the above embodiments will be described. The hot water supplier 10 discharges hot water heated by the heating operation from the hot water tapping unit 16. In the case when it is configured to allow the hot water discharged to be returned to the water supply unit 15 and reheated for an instant hot water function in which the heated hot water is supplied as soon as the hot water supply faucets F1-F3 are opened, the hot water pipes (hot water supply pipe 2, return pipe 4) through which the discharged hot water passes are covered with the heat retaining material 7 for preventing heat dissipation. As a result, in the reheating operation of reheating the circulating hot water, the temperature of hot water may be maintained by circulating hot water while heating by burning using only the combustion stage 11a of the combustion unit 11 having the minimum combustion capacity (one-stage combustion). Moreover, the increase in the heating time (time data) using only the combustion stage 11a having the minimum combustion capacity indicates that the temperature of the discharged hot water drops immediately during circulation and the frequency of reheating increases, therefore the control unit 24 may determine the progress of deterioration of the heat retaining material 7 based on the increasing tendency of the time data.
[0041] The control unit 24 transmits the heating time (time data) using only the combustion stage 11a having the minimum combustion capacity to the external server 35. Further, instead of the control unit 24, the external server 35 determines the progress of deterioration of the heat retaining material 7 based on the accumulated time data. The progress of deterioration of the heat retaining material 7 can be determined without increasing the processing load of the control unit 24, therefore the control unit 24 having high processing capability is not required, and the increase in manufacturing cost of the hot water supplier 10 can be suppressed.
[0042] Moreover, by correcting the time data according to the outside air temperature by the control unit 24, the time data of the period when the outside air temperature is high and the heating time using only the combustion stage 11a having the minimum combustion capacity is short and of the period when the outside temperature is low and the heating time using only the combustion stage 11a having the minimum combustion capacity is long may be averaged according to the outside temperature, such that the progress of deterioration of the heat retaining material 7 can be easily determined.
[0043] In addition, a person skilled in the art may implement the embodiments with various modifications without deviating from the gist of the disclosure, and the disclosure includes such modifications.
[0044] According to the above configuration, the hot water supplier discharges hot water heated through the heating operation from the hot water tapping unit. When it is configured to allow the hot water that has been discharged to be returned to a water supply unit and reheated for an instant hot water function in which the heated hot water is supplied as soon as a hot water supply faucet is opened, the passage of the hot water discharged is covered with a heat retaining material for preventing heat dissipation. As a result, heat dissipation is suppressed, and in the reheating operation that reheats the circulating hot water, the temperature of the hot water may be maintained by circulating the hot water while heating by burning using only the combustion stage having the minimum combustion capacity of the combustion unit. Moreover, the increase in the heating time using only the combustion stage having the minimum combustion capacity indicates that the temperature of the discharged hot water drops immediately during circulation and the frequency of reheating increases, therefore the control unit may determine the progress of deterioration of the heat retaining material based on the increasing tendency of the heating time using only the combustion stage having the minimum combustion capacity.
[0045] According to the above configuration, the control unit transmits the time data to the external server. Instead of the control unit, the external server determines the progress of deterioration of the heat retaining material based on the accumulated time data. Therefore, the progress of deterioration of the heat retaining material can be determined without increasing the processing load of the control unit, and since a control unit having a high processing capacity is not required, an increase in the manufacturing cost of the hot water supplier can be suppressed.
[0046] According to the above configuration, by correcting the time data according to the outside air temperature, the time data of the period when the outside air temperature is high and the heating time using only the combustion stage having the minimum combustion capacity is short and of the period when the outside temperature is low and the heating time using only the combustion stage having the minimum combustion capacity is long may be averaged according to the outside temperature, such that the progress of deterioration of the heat retaining material can be easily determined.
Effects
[0047] According to the hot water supplier of the disclosure, when it is configured to allow the hot water that has been heated and discharged to be returned and reheated for an instant hot water function, it is possible to determine the progress of deterioration of a heat retaining material that covers the hot water pipe through which discharged hot water passes.