This application claims the benefit of Japanese Patent Application Number 2017-103867 filed on May 25, 2017, the entirety of which is incorporated by reference.
The disclosure relates to a water heater including a passing water quantity control means that controls a passing water quantity in a heat exchanger.
In a water heater, a water supply pipe and a hot water outlet pipe are coupled to a heat exchanger, which is heated with a burner. When a faucet is opened to pass water through inside an apparatus, a controller (an operation control means) that detects the passing water causes the burner to burn to heat the water that passes through the heat exchanger. Then, hot water is output from the hot water outlet pipe. Among such water heaters, as disclosed in JP-A-2008-57845, there is known a water heater that includes a passing water quantity control means, such as a water servo, that controls a passing water quantity in the heat exchanger in the water supply pipe. The controller performs a combustion control of the burner and an operational control of the passing water quantity control means to perform an output hot water temperature control. The output hot water temperature control causes a detected temperature (output hot water temperature) obtained from a temperature detection means, such as a thermistor, disposed in the hot water outlet pipe to match a set temperature.
However, in the water heater of JP-A-2008-57845, at a start of a hot water supply, the passing water quantity controlled by the passing water quantity control means is set to a predetermined water quantity. Therefore, in the case of what is called a cold start, the output hot water temperature takes time to reach the set temperature and a consumption quantity of water and fuel gas during that period increases, thereby leading to a loss. The cold start is when a temperature of inflow water is low when a power supply is first turned on to start an operation after the water heater is installed or when the operation is started after a lapse of long time since the last hot water supply.
Therefore, the applicant has provided the following disclosure in JP-A-2010-117053. The operation control means compares the detected temperature obtained from the temperature detection means with the set temperature at the start of the hot water supply. When the detected temperature is lower than the set temperature by a predetermined amount, the output hot water temperature control is executed by configuring the passing water quantity control means to have a passing water quantity that is further restricted compared with the predetermined water quantity. Thus, the reach time to the set temperature is reduced even in the case of the cold start, thereby ensuring conserved water and gas.
In the passing water control in JP-A-2010-117053, after the output hot water temperature matches the set temperature, the restriction of the passing water quantity needs to be gradually released to return the passing water quantity back to the predetermined water quantity. However, there is a case where the burner is constituted of a plurality of stages of units (burner group) that are divided into each of a plurality of burners, each of which includes mutually different numbers of burners, and performs a switching control of combustion stages by selecting the unit to burn. In such case, for switching of the combustion stages, a control is performed such that a gas input is once decreased to transfer a fire to a neighboring unit and then the gas input is increased in order to smoothly transfer the fire. Therefore, in spite of performing a control to increase the output hot water temperature at the start of the hot water supply, the control to decrease the gas input is temporarily performed due to switching of the combustion stages. As a result, the output hot water temperature does not linearly increase proportionately to an increase of the passing water quantity, and an undershoot possibly occurs, which fluctuates reacting to the increase and decrease of the gas input.
The following describes what is mentioned above specifically. First,
Meanwhile,
Then, as illustrated in
Thus, since switching of the combustion stages is performed twice between t3 and t4 in which the restriction of the passing water quantity is released, the output hot water temperature does not linearly increase like the two-dot chain line illustrated in
Therefore, it is an object of the disclosure to provide a water heater that can perform a stable output hot water temperature control without an occurrence of an undershoot even though, for example, switching of combustion stages of burners is performed when a restriction of a passing water quantity is released in the water heater that performs a control to restrict the passing water quantity at a start of a hot water supply (“undershoot” refers to a phenomenon in which an output hot water temperature is temporarily lowered, not linearly increasing proportionately to an increase of the passing water quantity).
In order to achieve the above-described object, there is provided a water heater according to a first aspect of the disclosure. The water heater includes a burner, a water supply pipe, a hot water outlet pipe, a heat exchanger, a passing water quantity control unit, a temperature detection unit, and an operation control unit. The heat exchanger is coupled to the water supply pipe and the hot water outlet pipe. The heat exchanger is heated with the burner. The passing water quantity control unit is disposed in the water supply pipe. The passing water quantity control unit controls a passing water quantity in the heat exchanger. The temperature detection unit detects a hot water temperature inside the hot water outlet pipe. The operation control unit executes an output hot water temperature control in which a detected temperature obtained from the temperature detection unit is caused to match a set temperature by a combustion control of the burner and an operational control of the passing water quantity control unit. The operation control unit, upon confirmation that a predetermined start condition of a passing water restriction is satisfied at a start of a hot water supply, performs the output hot water temperature control by configuring the passing water quantity control unit to have a predetermined passing water quantity that is further restricted compared with a predetermined water quantity, and upon confirmation that a predetermined release condition of the passing water restriction is satisfied, executes the passing water control in which the passing water quantity is returned back to the predetermined water quantity by gradually releasing the passing water restriction. The operation control unit, when a predetermined undershoot factor of the detected temperature is confirmed while the passing water quantity is returned back to the predetermined water quantity, temporarily stops the release of the restriction of the passing water quantity until the undershoot factor is resolved.
According to a second aspect of the disclosure, in the first aspect of the disclosure, a plurality of the burners may be disposed. The operation control means is to switchingly control the burners to a predetermined combustion stage during the output hot water temperature control. The undershoot factor may be the switching control of the combustion stages.
According to a third aspect of the disclosure, in the first aspect of the disclosure, the start condition of the passing water restriction may be that the detected temperature is lower than the set temperature by a predetermined temperature or more by comparing the detected temperature with the set temperature.
According to a fourth aspect of the disclosure, in the first aspect of the disclosure, the release condition of the passing water restriction may be that a difference between the detected temperature and the set temperature is within a predetermined temperature.
With the disclosure according to the first aspect, when the predetermined undershoot factor of the detected temperature is confirmed while the passing water quantity is returned back to the predetermined water quantity, the release of the restriction of the passing water quantity is temporarily stopped until the undershoot factor is resolved. Thus, the stable output hot water temperature control can be performed without the occurrence of the undershoot even though, for example, switching of the combustion stages of the burners is performed when the restriction of the passing water quantity is released.
With the disclosure according to the second aspect, in addition to the effect of the first aspect, the undershoot at the start of the hot water supply can be effectively inhibited even when the plurality of stages of burners are disposed because the undershoot factor is the switching control of the combustion stages of the burners.
With the disclosure according to the third aspect, in addition to the effect of the first aspect or the second aspect, the reach time to the set temperature can be reduced even in the case of what is called the cold start because the start condition of the passing water restriction is that the detected temperature is lower than the set temperature by the predetermined temperature or more. As a result, water and gas can be conserved.
With the disclosure according to the fourth aspect, in addition to the effect of any one of the first aspect to the third aspect, the passing water quantity can be returned back to the predetermined water quantity at the appropriate timing because the release condition of the passing water restriction is that the difference between the detected temperature and the set temperature is within the predetermined temperature.
The following describes an embodiment of the disclosure based on the drawings.
Between the water supply pipe 6 and the hot water outlet pipe 7, a bypass pipe 16 that bypasses the heat exchanger 5 is coupled. The water supply pipe 6 has an upstream side with respect to a coupling position with the bypass pipe 16. In the upstream side, a water quantity sensor 17 and a water servo 18 are disposed. The water quantity sensor 17 detects a water quantity flowing in a whole apparatus. The water servo 18 serves as a passing water quantity control means. At the coupling position with the bypass pipe 16, a bypass servo 19 that controls the water quantity to the bypass pipe 16 is disposed. The water quantity sensor 17, the water servo 18, and the bypass servo 19 are each electrically coupled to the controller 12. On the other hand, the hot water outlet pipe 7 is coupled to a hot water tap 20. The hot water outlet pipe 7 includes thermistors 21 and 22 that detects temperatures of hot water in a downstream side and an upstream side (a side of outlet from the heat exchanger 5), respectively, with respect to a coupling position of the bypass pipe 16. The thermistors 21 and 22 are electrically coupled to the controller 12. A remote control 23 is configured to perform a setting operation of, for example, a set temperature.
An operation of the water heater 1 will be described based on a flowchart in
First, the hot water tap 20 is opened to pass water within the apparatus. When the passing water is detected (a signal obtained from the water quantity sensor 17 confirms that the passing water quantity flowing inside the apparatus exceeds an ignition water quantity) at S1, the controller 12 starts an ignition operation at S2. That is, a pre-purge is performed by causing the air supply fan 3 to rotate. The main solenoid valve 9 and the switching solenoid valve 11, and the gas proportional valve 10 are each opened to supply gas to the burner 4 and the ignitor 13 is operated to perform an ignition control of the burner 4. The ignition of the burner 4 is confirmed with the flame rod 15.
Next, at S3, the controller 12 determines whether a restriction operation of the passing water is necessary or not. The restriction operation of the passing water is determined to be necessary when a preliminarily set start condition of the passing water restriction is satisfied. The preliminarily set start condition here is that a difference between an output hot water temperature obtained from the thermistor 21 as a temperature detection means and the set temperature set with the remote control exceeds, for example, 10° C. On the other hand, when it is determined that the restriction operation of the passing water is not necessary here, the operation proceeds to S12.
When it is determined that the restriction operation of the passing water is necessary at S3, the water servo 18 is set to a position where a predetermined water quantity is restricted by a predetermined quantity (for example, 63% of the predetermined water quantity) at S4. The controller 12 continuously changes a gas quantity by controlling a degree of opening of the gas proportional valve 10 in accordance with the difference between the output hot water temperature (detected temperature) detected with the thermistor 21 and the set temperature set with the remote control 23. Thus, the controller 12 performs an output hot water temperature control in order to cause the output hot water temperature to match the set temperature.
Then, at S5, it is determined whether a release condition of the passing water restriction is satisfied or not. Here, it is satisfied when the difference between the output hot water temperature and the set temperature is, for example, within ±3° C.
When the release condition of the passing water restriction is satisfied, a release of the passing water restriction is started at S6. In other words, a control to gradually return the water servo 18 back to the predetermined water quantity is performed.
While the release of the passing water restriction is controlled, it is determined whether there is an undershoot factor or not by a determination at S7. The undershoot may occur, for example, when switching of the combustion stages of the burners 4 is performed and a water quantity detected with the water quantity sensor 17 is changed (undershoot factors). When there is no undershoot factor, the operation proceeds to S11.
Here, when the undershoot factor is confirmed, the operation of the water servo 18 is stopped at S8 to temporarily stop the release operation of the passing water restriction. This temporary stop is continued until confirming a resolution of the undershoot factor (a termination of switching of the combustion stages of the burners 4 or a stabilized flow rate) at the subsequent S9.
When the undershoot factor is resolved at S9, the release of the passing water restriction is resumed at S10. At S11, it is determined whether a termination condition of the release of the passing water restriction is satisfied (for example, when the output hot water temperature matches the set temperature and when a predetermined time passes after the start of the hot water supply) or not. Here, when the termination condition of the release of the passing water restriction is satisfied, the controller 12 returns the water servo 18 back to the position of the predetermined water quantity at S12 and continues the output hot water temperature control as it is. When the termination condition of the release of the passing water restriction is not satisfied, the operation returns to S7.
When the passing water is no longer detected at S13 due to a closure of the hot water tap 20, the controller 12 closes each of the main solenoid valve 9, the switching solenoid valve 11, and the gas proportional valve 10 at S14 to extinguish the fire of the burner 4. The air supply fan 3 is caused to rotate for a certain period of time to execute a fire extinguishing operation in which a post-purge is performed.
Thus, according to the water heater 1 of the above-described configuration, the controller 12 performs the output hot water temperature control by configuring the water servo 18 to have the predetermined passing water quantity restricted compared with the predetermined water quantity upon confirmation that the predetermined start condition of the passing water restriction is satisfied at the start of the hot water supply. The controller 12 executes the passing water control in which the passing water quantity is returned back to the predetermined water quantity by gradually releasing the passing water restriction upon confirmation that the predetermined release condition of the passing water restriction is satisfied. When the predetermined undershoot factor of the output hot water temperature is confirmed while the passing water quantity is returned back to the predetermined water quantity, the release of the restriction of the passing water quantity is temporarily stopped until the undershoot factor is resolved. Thus, even though, for example, switching of the combustion stages of the burners 4 is performed when the restriction of the passing water quantity is released, the undershoot does not occur, thereby ensuring performing a stable output hot water temperature control.
Here in particular, the undershoot factor is the switching control of the combustion stages of the burners 4. Therefore, even in the case where a plurality of stages of the burners 4 are disposed, the undershoot at the start of the hot water supply can be effectively inhibited.
The start condition of the passing water restriction is that the output hot water temperature is lower than the set temperature by 10° C. or more by comparing the output hot water temperature with the set temperature. Therefore, even in the case of what is called the cold start, the reach time to the set temperature can be reduced, thereby leading to the conserved water and gas.
Furthermore, the release condition of the passing water restriction is that the difference between the output hot water temperature and the set temperature is within ±3° C. Therefore, the passing water quantity can be returned back to the predetermined water quantity at an appropriate timing.
In the above-described configuration, the start condition of the passing water restriction is that the difference between the output hot water temperature and the set temperature exceeds 10° C. However, the difference can be set to a value other than 10° C. Also, the start condition of the passing water restriction is not limited to this condition but may be when five minutes or more passes after the last termination of the operation. Furthermore, the start condition of the passing water restriction may be determined to be necessary at a first operation after turning on the power or may be when a plurality of these conditions meet.
Similarly, the release condition of the passing water restriction is not limited to the condition that the difference between the output hot water temperature and the set temperature is within ±3° C. but the difference can be changed as necessary and other conditions can also be set.
The configuration of the water heater itself is not limited to the above-described content. The disclosure is applicable to a water heater as long as the water heater includes the passing water quantity control means, such as the water servo. The water heater may include not only a water heater with more or less stages of the burners, but also, for example, a water heater of a type without a bypass pipe, a water heater of a type provided with a bath side circuit that is configured to fill hot water in a bath tub and reheat by including a heat exchanger for bath, and a water heater of a type provided with a heat exchanger for a latent heat recovery.
It is explicitly stated that all features disclosed in the description and/or the claims are intended to be disclosed separately and independently from each other for the purpose of original disclosure as well as for the purpose of restricting the claimed invention independent of the composition of the features in the embodiments and/or the claims. It is explicitly stated that all value ranges or indications of groups of entities disclose every possible intermediate value or intermediate entity for the purpose of original disclosure as well as for the purpose of restricting the claimed invention, in particular as limits of value ranges.
Number | Date | Country | Kind |
---|---|---|---|
2017-103867 | May 2017 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
4501261 | Tsutsui | Feb 1985 | A |
20080022946 | Inami | Jan 2008 | A1 |
20100116222 | Tsuji | May 2010 | A1 |
20100116223 | Tsuji | May 2010 | A1 |
20120046801 | Mori | Feb 2012 | A1 |
20140000534 | Naitoh | Jan 2014 | A1 |
Number | Date | Country |
---|---|---|
2008-57845 | Mar 2008 | JP |
2010-117053 | May 2010 | JP |
Number | Date | Country | |
---|---|---|---|
20180340709 A1 | Nov 2018 | US |