F24D3/10

IMPROVED CONTROL SYSTEM FOR HYDRONIC HEATER AND METHOD OF OPERATING SAME

A control system for a burner assembly used in vehicles and boats particularly for a coolant storage type heater and a method of operating the control system. Sensors for producing a resistance change as a function of temperature are utilised to send a continuous signal to the control system from both the coolant and the potable water by being in contact with coolant and potable water throughout control system operation. The sensors and the control system allow flexible heater operation and may further dependent upon the user where commands can be entered to a touch screen connected to the control board of the control system.

IMPROVED CONTROL SYSTEM FOR HYDRONIC HEATER AND METHOD OF OPERATING SAME

A control system for a burner assembly used in vehicles and boats particularly for a coolant storage type heater and a method of operating the control system. Sensors for producing a resistance change as a function of temperature are utilised to send a continuous signal to the control system from both the coolant and the potable water by being in contact with coolant and potable water throughout control system operation. The sensors and the control system allow flexible heater operation and may further dependent upon the user where commands can be entered to a touch screen connected to the control board of the control system.

Distributor pipe for a distributor pipeline
11802394 · 2023-10-31 ·

A distributor pipe (1, 12, 12) for a distributor pipeline to distribute water to various places in a building structure. The distributor pipe has a through bore (15, 23) and two or more connections (3, 4, 24, 25) for connection of metal or plastic lubes or a valve (28), on the upper and/or the lower side of the 5 distributor pipe. The distributor pipe (1, 12, 22) connections (3, 4, 24, 25) are arranged in fluid communication with the through bore (15, 23) of the distributor pipe (1, 12, 22) on both sides of the distributor pipe through bore (15, 23) so that the centre axis of the bore of the connections (21) is situated outside of the through bore (15, 23). The connections (3, 4, 24, 25) on both sides of the 10 through bore are displaced in the longitudinal direction relative to each other.

CONDUIT MODULE COUPLED WITH HEATING OR COOLING MODULE

A heating and cooling system for use with hot, cold and source fluid circuits. A conduit module couples a heating/cooling module with the fluid circuits. The conduit module includes four three-way valves to communicated fluid from and to the fluid circuits to first and second heat exchangers in the heating/cooling module. The first heat exchanger is used to heat a fluid flow and the second one chills a second fluid flow. The conduit module simultaneously supplies a hot fluid flow to a hot fluid circuit and a cold fluid to a cold fluid circuit. The source fluid is routed by the conduit module. A method of circulating fluid is also disclosed.

HEAT STORAGE WATER DISPENSER SYSTEM

The invention discloses a heat storage water dispenser system, it comprises a heat storage tank, an overflow tank and a two-way valve device, the overflow tank is installed on the top of the heat storage tank, the overflow tank is provided with an exhaust port connected with the atmosphere, and the two-way valve device is installed between the heat storage tank and the overflow tank, an exhaust channel is formed between the two-way valve device and the overflow tank; the heat storage tank is provided with an expansion water channel and a hot water outlet channel, one end of the expansion water channel is connected with the heat storage tank, and the other end is connected with the overflow tank. Due to the existence of the expansion water channel and the design of consistent internal and external pressure of the heat storage tank of the present invention, the heat storage water dispenser system does not need to bear pressure in the heat storage tank, the water temperature range can be controlled in the range of 30-95 degrees, and can effectively solve the defects that the water outlet flows out without reason during heating and the water outlet delays when taking water.

HYDRAULIC SEPARATOR WITH REDUCED HEAT DISPERSION AND CONTROL METHOD THEREFOR
20220243929 · 2022-08-04 · ·

A hydraulic separator for hydronic systems for heating and/or cooling, including a hollow body with a casing, internally defining a chamber; at least two first through openings for the delivery of a fluid, and at least two second through openings for the return of the fluid, said first openings and said second openings being made on said casing of the body and being suitable to put in fluid communication said chamber to external circuits by hydraulic connecting means, further includes at least a mobile element suitable for separating said chamber of the body in a first portion and a second portion, in such a way to reduce the opening section of passage and of fluid contact between said first portion and said second portion. The invention further includes a control method for the hydraulic separator and hydronic systems for heating and/or coding.

HVAC Hydronic System with Split Buffer Tank for Zero-Mixing System Operation
20220252277 · 2022-08-11 ·

The present invention relates to HVAC-systems operating under new ZERO-MIXING (ZM) water flow condition as innovative way to promote consistent highly energy efficient performance on SOURCE-heating/cooling thermal production and BUILDING's system distribution (FIG. 1). ZM technology is applicable; but not limited, to large-residential, commercial, institutional, and industrial facilities. Current state on HVAC technology, for system hydronics loop-flow, do not provide flows temperature segregation mechanisms between heating/chiller-plants hot/cold water supply and warmer water system returns. The result, a system that continuously operates at WATER MIXING conditions that impair equipment efficiency and output, and therefore, overall system energy performance.

HVAC Hydronic System with Split Buffer Tank for Zero-Mixing System Operation
20220252277 · 2022-08-11 ·

The present invention relates to HVAC-systems operating under new ZERO-MIXING (ZM) water flow condition as innovative way to promote consistent highly energy efficient performance on SOURCE-heating/cooling thermal production and BUILDING's system distribution (FIG. 1). ZM technology is applicable; but not limited, to large-residential, commercial, institutional, and industrial facilities. Current state on HVAC technology, for system hydronics loop-flow, do not provide flows temperature segregation mechanisms between heating/chiller-plants hot/cold water supply and warmer water system returns. The result, a system that continuously operates at WATER MIXING conditions that impair equipment efficiency and output, and therefore, overall system energy performance.

Manifold, a buffer tank comprising the manifold, and a method for operating a heat exchange system
11300301 · 2022-04-12 ·

A manifold (15) comprising a flow chamber (35) for receiving flow heat exchange water from respective heat sources (3, 5, 7) through first inlet ports (47, 48) and from which the flow heat exchange water is delivered to heat exchange circuits (8, 9) through flow ports (57, 58). A return chamber (36) in the manifold (15) for receiving return heat exchange water from the heat exchange circuits (8, 9) through return ports (57, 58), and from which the return heat exchange water is returned to some of the heat sources (3, 5, 7) through first outlet ports (53, 54). A bypass chamber (37) located in the manifold (15) between the flow chamber (35) and the return chamber (36) receives flow water from the flow chamber (35), which has not been drawn off by the heat exchange circuits (8, 9), through a communicating passageway (40). Heat exchange water from the bypass chamber (37) is returned through second outlet ports (55, 56) to others of the heat sources (3, 5, 7).

Device and methodology for early detection of fluid loss and notification and system shutdown for a closed loop fluid heat transfer system
11293170 · 2022-04-05 ·

A hydronic system and method of use that will maintain normal system operating pressure while also reliably detecting even very small fluid losses in any closed loop fluid heat transfer system is described. The system includes a controller having clock or timing functionality in communication with one or more pressure sensors and a fluid supply valve that provides one or more notifications when the pressure drops below predetermined levels during predetermined periods of time. Depending on the nature of the pressure loss, the system has the capability of opening a fluid supply valve to provide make up fluid and increase system pressure.