F24H7/02

ENERGY STORAGE ARRANGEMENT AND INSTALLATIONS
20240102696 · 2024-03-28 · ·

There is provided a hot water supply system including: a controllable hot water supply outlet having when fully opened a given flowrate; a thermal energy store, containing an energy storage medium comprising a phase change material to store energy as latent heat, that is configured to receive energy from a source of renewable energy; a renewable energy source; the hot water supply system being operable, under the control of the processor, to heat water that is to be supplied to the hot water outlet to a target system supply temperature using a selection of one or more of the renewable energy source, energy from the thermal energy store, and optionally an auxiliary water heater intermediate the thermal energy store and the hot water supply outlet; wherein the thermal energy store has an energy storage capacity, when fully charged, that is sufficient to provide hot water to the hot water outlet, at the given flowrate, and at the target system supply temperature for a period of at least 8 minutes, and preferably at least 10 minutes; wherein the renewable energy source is also configured to provide building heating under control of the processor; the processor being configured to: monitor actual demand for hot water from the hot water supply system; predict future demand for hot water from the hot water supply system based on the monitored actual demand; pre-charge the thermal energy store so that sufficient energy will be stored in the thermal energy store to satisfy the predicted demand; and to temporarily divert heat from the renewable energy source to charge the phase change material rather than to provide building heating. A corresponding method is also provided.

ENERGY STORAGE ARRANGEMENT AND INSTALLATIONS
20240102696 · 2024-03-28 · ·

There is provided a hot water supply system including: a controllable hot water supply outlet having when fully opened a given flowrate; a thermal energy store, containing an energy storage medium comprising a phase change material to store energy as latent heat, that is configured to receive energy from a source of renewable energy; a renewable energy source; the hot water supply system being operable, under the control of the processor, to heat water that is to be supplied to the hot water outlet to a target system supply temperature using a selection of one or more of the renewable energy source, energy from the thermal energy store, and optionally an auxiliary water heater intermediate the thermal energy store and the hot water supply outlet; wherein the thermal energy store has an energy storage capacity, when fully charged, that is sufficient to provide hot water to the hot water outlet, at the given flowrate, and at the target system supply temperature for a period of at least 8 minutes, and preferably at least 10 minutes; wherein the renewable energy source is also configured to provide building heating under control of the processor; the processor being configured to: monitor actual demand for hot water from the hot water supply system; predict future demand for hot water from the hot water supply system based on the monitored actual demand; pre-charge the thermal energy store so that sufficient energy will be stored in the thermal energy store to satisfy the predicted demand; and to temporarily divert heat from the renewable energy source to charge the phase change material rather than to provide building heating. A corresponding method is also provided.

HEAT EXCHANGER AND METHOD
20190376726 · 2019-12-12 ·

A novel heat exchanger and method of heat exchange with a tank for housing a heat transfer fluid, a heater for heating the heat transfer fluid, and a coil around the heater for receiving and delivering a process fluid to be heated are provided.

HEAT EXCHANGER AND METHOD
20190376726 · 2019-12-12 ·

A novel heat exchanger and method of heat exchange with a tank for housing a heat transfer fluid, a heater for heating the heat transfer fluid, and a coil around the heater for receiving and delivering a process fluid to be heated are provided.

HEATING DEVICE OF IONIZED WATER ARRANGEMENT STRUCTURE SURROUNDING FLUID AND HEAT EXCHANGE REGION
20240117995 · 2024-04-11 ·

The present disclosure relates to a heating device of an ionized water arrangement structure surrounding a fluid and a heat exchange region. To this end, one aspect of the present disclosure may include a pipe part formed to allow a fluid to be disposed therein, a body part formed to allow an electrolyzed water to be disposed therein to overlap the fluid, and formed to surround at least one region of the pipe part, and at least one electrode for heating the electrolyzed water inside the body part.

STORAGE TYPE ELECTRIC WATER HEATER WITH HOT AIR GENERATING FUNCTION
20190309990 · 2019-10-10 ·

The present invention relates to a storage type electric water heater with a hot air generating function. The present invention has the effects of enabling instantaneous tapping of a large amount of hot water by a hot water generating means and generating hot air by a hot air generating means.

STORAGE TYPE ELECTRIC WATER HEATER WITH HOT AIR GENERATING FUNCTION
20190309990 · 2019-10-10 ·

The present invention relates to a storage type electric water heater with a hot air generating function. The present invention has the effects of enabling instantaneous tapping of a large amount of hot water by a hot water generating means and generating hot air by a hot air generating means.

THERMAL ENERGY STORAGE
20240167726 · 2024-05-23 ·

The present invention provides an energy storage apparatus. The energy storage apparatus comprises a storage tank (100, 220) for receiving thermal energy storage fluid (103, 203) therein, a first energy transfer component (107, 205) and a second energy transfer component (106, 206). The storage tank has a first portion and a second portion, each portion having a first end vertically spaced from a second end. The first portion is in fluid communication with the second portion at the respective first ends and at the respective second ends. The first energy transfer component is configured to transfer thermal energy into thermal energy storage fluid in the first portion of the storage tank. The second energy transfer component is configured to transfer thermal energy from thermal energy storage fluid in the second portion of the storage tank. The energy storage apparatus is configured such that operation of at least one of the first energy transfer component and the second energy transfer component causes convective fluid flow of the thermal energy storage fluid from the first energy transfer component towards the second energy transfer component and from the second energy transfer component towards the first energy transfer component.

MODULAR HVAC-SHW SYSTEM AND A METHOD OF INTEGRATING THEREOF
20240167701 · 2024-05-23 ·

A modular HVAC-SHW/DHW system that provides comfort conditioning, sanitary hot water, and ventilation in the buildings is disclosed. The system includes HVAC units, SHW/DHW units, and one or more air-to-water heat pump (AWHP) units fluidically connected to the HVAC units and the SHW/DHW units through at least one water-to-water heat pump (WWHPs). The AWHP units are configured to enable the exchange of heat between the environment and the WWHPs, and the WWHP is configured to enable the exchange of rejected heat between any of the AWHP units, the HVAC units, and the SHW/DHW units. The system is designed in a packaged form factor or modular design, where the components/units of the system are configured within a housing that is easily installable at the desired locations in the building.

DUAL INPUT WATER HEATER
20190242620 · 2019-08-08 ·

A water heater system includes a tank for storing water; a flue assembly positioned within the tank, the flue assembly adapted to transfer heat from flue gases within the flue assembly to water in the tank; a burner in fluid communication with an inlet end of the flue assembly and operable in at least a high input mode and a low input mode to deliver the flue gases to the flue assembly, the exhaust assembly having a threshold temperature above which the exhaust assembly is not suitable; and an exhaust assembly including a fan, wherein at least in the low input mode, the flue gases condense in the flue assembly, and wherein operation of the fan reduces a temperature of the flue gases in the exhaust assembly to below the threshold temperature at least in the high input mode.