SMART CIRCULATION CONTROL INSTANTANEOUS-HEATING STORAGE HEAT EXCHANGER
20220205682 · 2022-06-30
Inventors
Cpc classification
F24H15/212
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D17/0078
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H15/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D17/0031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/1066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H1/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H15/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D3/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/1051
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H1/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24D19/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A smart circulation control instantaneous-heating storage heat exchanger includes a heat exchanger, a cold-water pipe, a hot-water pipe, an internal circulation pipe, and a control unit. The heat exchanger includes a storage space. The internal circulation pipe includes a two-way valve and a circulation pump. The control unit is connected to the two-way valve and the circulation pump. The internal circulation pipe functions to return a part of heated water back to the storage space to enhance thermal conversion efficiency and save energy and improve controllability. Positions for supplying cold water and returning water are made at different sites, and the circulation pump and the internal circulation pipe are used to selectively execute functions of anti-freezing, pre-heating, and heat balancing. An external circulation pipe is additionally included such that by means of the two-way valve and the circulation pump, switching can be made between internal and external circulations.
Claims
1. A smart circulation control instantaneous-heating storage heat exchanger, comprising: a heat exchanger, which is arranged in an interior of a water heater, the heat exchanger comprising a heat source supply structure and a storage space, wherein the heat source supply structure heats cold water contained in the storage space to convert into hot water, a cold-water pipe, which is connected to the heat exchanger at a first position to supply cold water into the storage space; a hot-water pipe, which is connected to the heat exchanger at a second position to discharge the hot water generated in the storage space; an internal circulation pipe, which is disposed in the interior of the water heater, the internal circulation pipe having two ends that are respectively connected to the hot-water pipe and the storage space to allow hot water contained in the hot-water pipe to return back to the storage space to enhance thermal conversion efficiency, the internal circulation pipe being combined with a two-way valve and a circulation pump; and a control unit, which is connected to the two-way valve and the circulation pump to control a passage channel of the two-way valve to be in an open state or a closed state and also to control a flow rate of the circulation pump.
2. The smart circulation control instantaneous-heating storage heat exchanger according to claim 1, further comprising an external circulation pipe, the external circulation pipe having two ends that are respectively connected to the hot-water pipe and the internal circulation pipe to selectively switch to an external-circulation-pipe flow line to realize external circulation, such that a control system formed of the two-way valve and the control unit is operable to switch a flow line between the internal circulation pipe and the external circulation pipe.
3. The smart circulation control instantaneous-heating storage heat exchanger according to claim 1, wherein the heat source supply structure comprises an air blower, a burner, and heat exchange pipe, wherein the air blower supplies a fuel gas and air to the burner for burning to generate heat, combusted gas generated in the burner and entering the heat exchange pipe to allow the heat exchange pipe to heat the cold water contained in the storage space.
4. The smart circulation control instantaneous-heating storage heat exchanger according to claim 1, wherein a temperature sensor is mounted to the internal circulation pipe between the two-way valve and the circulation pump, and the temperature sensor is connected to the control unit, so that a water temperature sensed by the temperature sensor is transmitted to the control unit to allow the control unit to control and regulate a flow rate generated by the circulation pump or to control and regulate a heating value provided by the heat source supply structure.
5. The smart circulation control instantaneous-heating storage heat exchanger according to claim 1, wherein the control unit comprises a controller including a control circuit board that enables setting of parameters and instructions for controlling the two-way valve and the circulation pump.
6. The smart circulation control instantaneous-heating storage heat exchanger according to claim 1, wherein the connection of the cold-water pipe to the heat exchanger comprises a water inlet connector installed at the first position to ease mounting and assembling and replacement of the cold-water pipe; the connection of the hot-water pipe to the heat exchanger comprises a hot-water connector installed at the second position to ease mounting and assembling and replacement of the hot-water pipe; and the connection of the internal circulation pipe to the storage space comprises a circulation connector installed at a connection site thereof to ease mounting and assembling and replacement of the internal circulation pipe.
7. The smart circulation control instantaneous-heating storage heat exchanger according to claim 2, wherein the heat source supply structure comprises an air blower, a burner, and heat exchange pipe, wherein the air blower supplies a fuel gas and air to the burner for burning to generate heat, combusted gas generated in the burner and entering the heat exchange pipe to allow the heat exchange pipe to heat the cold water contained in the storage space.
8. The smart circulation control instantaneous-heating storage heat exchanger according to claim 2, wherein a temperature sensor is mounted to the internal circulation pipe between the two-way valve and the circulation pump, and the temperature sensor is connected to the control unit, so that a water temperature sensed by the temperature sensor is transmitted to the control unit to allow the control unit to control and regulate a flow rate generated by the circulation pump or to control and regulate a heating value provided by the heat source supply structure.
9. The smart circulation control instantaneous-heating storage heat exchanger according to claim 2, wherein the control unit comprises a controller including a control circuit board that enables setting of parameters and instructions for controlling the two-way valve and the circulation pump.
10. The smart circulation control instantaneous-heating storage heat exchanger according to claim 2, wherein the connection of the cold-water pipe to the heat exchanger comprises a water inlet connector installed at the first position to ease mounting and assembling and replacement of the cold-water pipe; the connection of the hot-water pipe to the heat exchanger comprises a hot-water connector installed at the second position to ease mounting and assembling and replacement of the hot-water pipe; and the connection of the internal circulation pipe to the storage space comprises a circulation connector installed at a connection site thereof to ease mounting and assembling and replacement of the internal circulation pipe.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0025] Referring to
[0026] The heat exchanger 10 is arranged in an interior of a water heater 11. The heat exchanger 10 comprises a heat source supply structure 12 and a storage space 13. The heat source supply structure 12 is operable to heat and convert cold water contained in the storage space 13 into hot water.
[0027] In the drawings, the wavy pattern hatching indicates water contained in the storage space 13 and thicker and darker part of the hatching indicates water having a relatively high temperature at such a location.
[0028] The cold-water pipe 20 is connected to the heat exchanger 10 at a first position in order to feed cold water into the storage space 13.
[0029] The hot-water pipe 30 is connected to the heat exchanger 10 at a second position in order to feed out hot water generated in the storage space 13.
[0030] The internal circulation pipe 40 is disposed in the interior of the water heater 11. The internal circulation pipe 40 has two ends that are respectively connected to the hot-water pipe 30 and the storage space 13 in order to return hot water contained in the hot-water pipe 30 back to the storage space 13. The internal circulation pipe 40 is combined with a two-way valve 41 and a circulation pump 42.
[0031] The internal circulation pipe 40 functions to form an internal-circulation-pipe flow line to realize internal circulation.
[0032] The control unit 50 is connected to the two-way valve 41 and the circulation pump 42 in order to control a passage channel of the two-way valve 41 to be in an open state or a closed state and also to control a flow rate of the circulation pump 42.
[0033] Referring to
[0034] With a control system so formed of the two-way valve 41 and the control unit 50, switching the flow line between the internal circulation pipe 40 and the external circulation pipe 60.
[0035] Referring again to
[0036] In an embodiment, a temperature sensor 43 is mounted to a part of the internal circulation pipe 40 located between the two-way valve 41 and the circulation pump 42. The temperature sensor 43 is connected to the control unit 50, so that a water temperature sensed by the temperature sensor 43 is transmitted to the control unit 50 to allow the control unit 50 to signal and thus control and regulate the flow rate of the circulation pump 42 or to control and regulate a heating value provided by the heat source supply structure 12.
[0037] In an embodiment, the control unit 50 may be a controller including a control circuit board that enables setting of parameters and instructions for signaling and thus controlling the two-way valve 41 and the circulation pump 42.
[0038] In an embodiment, the connection of the cold-water pipe 20 to the heat exchanger 10 is provided, at the connection site at first position, with a water inlet connector 21, which eases mounting/removing and replacement of the cold-water pipe 20; the connection of the hot-water pipe 30 to the heat exchanger 10 is provided, at the connection site at the second position, with a hot-water connector 31, which eases mounting/removing and replacement of the hot-water pipe 30; and the connection of the internal circulation pipe 40 to the storage space 13 is provided, at the site of connection, with a circulation connector 44, which eases mounting/removing and replacement of the internal circulation pipe 40.
[0039] The above provides a description to the parts/components of the present invention and the assembly thereof, and in the following, examples of use, features, and advantages of the present invention will be described.
[0040] Referring to
[0041] cold water flows through the water inlet connector 21 into the heat exchanger 10 and is subject to heat exchange inside the storage space 13 to provide hot water, which is discharged from the hot-water connector 31.
[0042] In a condition of continuous supply of hot water, the control system made up of the two-way valve 41 and the control unit 50 switches or sets the two-way valve 41 to an internal circulation mode, in which the internal circulation pipe 40 is opened and the circulation pump 42 is kept in continuous operation to cause hot water to flow at a rate of 1-5 liters per minute through the circulation connector 44 to return back into the heat exchanger 10, such that cold water contained in the storage space 13 is mixed with the hot water so returned to cause rise of temperature, wherein the temperature sensor 43 senses the rise of internal temperature of the storage space 13, indicating there is no extra supply of thermal energy, with which automatic regulation and reduction of the supply of thermal energy is made.
[0043] Referring to
[0044] Referring to
[0045] Referring to
[0046] In the internal circulation configuration and the external circulation configuration respectively shown in
[0047] (1) Anti-freezing mode (5° C.): the internal circulation or the external circulation is kept at a non-freezing temperature.
[0048] Activation of heating in anti-freezing mode=the temperature sensor 43 sensing temperature being persistently lower than 5° C. for a period of 10 seconds, and the internal circulation or the external circulation activated to perform heating with a minimum required level of energy.
[0049] Deactivation of heating in anti-freezing mode=anti-freezing temperature (which is set for a default value of 5° C.)+increase of temperature (which is set for a default value of 5° C.).
[0050] (2) Pre-heating mode: the internal circulation or the external circulation maintains at a temperature of hot water sufficient for daily living.
[0051] Activation of heating in pre-heating mode=the temperature sensor 43 sensing temperature being persistently lower than a pre-heating activation setting value for a period of 10 seconds, and the internal circulation or the external circulation activated for operation and performing heating with a minimum required level of energy.
[0052] Deactivation of heating in pre-heating mode=daily living hot water temperature setting value+increase of temperature (which is set for a default value of 0° C.).
[0053] (3) Energy-saving mode: the internal circulation or the external circulation maintains daily living water supply at a normal or room temperature.
[0054] Activation of heating in energy-saving mode=the temperature sensor 43 sensing temperature being persistently lower than an energy-saving activation setting value (which is set for a default value of 25° C.) for a period of 10 seconds, and the internal circulation or the external circulation activated for operation and performing heating with a minimum required level of energy.
[0055] Deactivation of heating in energy-saving mode=energy-saving temperature setting value (which is set for a default value of 30° C.)+increase of temperature (which is set for a default value of 0° C.).
[0056] When there is a demand for hot water for daily living in a condition when the present invention is set in the anti-freezing mode, the pre-heating mode, or the energy-saving mode, the present invention automatically switches to a condition of supply, as priority, hot water for daily living.
[0057] In a preferred operation, the above-described anti-freezing, pre-heating, and energy-saving modes of the present invention is selectively activated by just one among the others.