IP Library Granted Patent US 11,639,225
Granted Patent B2
US 11,639,225 · App. 16/783,783 · Granted May 2, 2023

Solid state radio frequency (SSRF) water heater device

Inventors: Arnau Castillo Gonzalez (Maarssen, NL); Hans Huijsing (IJsselstein, NL)
Assignee: Koninklifke Fabriek Inventum B.V.
B64D11/04A47J27/21041A47J27/21058A47J27/21166F24H1/181F24H1/185F24H9/2021H05B6/6402H05B6/642H05B6/6447H05B6/6452H05B6/686H05B6/72H05B6/804F24H2250/12
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Quick Facts
Patent No.
US 11,639,225
App. No.
16/783,783
Granted
May 2, 2023
Kind
B2
Abstract

A solid-state radio frequency (SSRF) water heating apparatus is disclosed. In embodiments, the SSRF water heater includes a water tank, SSRF generator array and RF sensors enclosed within an RF-shielded cage. The SSRF array synthesizes RF signals in the microwave range and transmits the RF energy through the water tank, exciting and heating the water molecules without direct contact. The RF sensors at the opposite end of the tank sense residual RF energy not absorbed by the water. Control processors regulate the generation and transmission of the RF energy based on the sensed residual energy. The heated water and/or generated steam is piped to hot water dispensers, beverage makers, or steam ovens.

Claims (52)

1. A solid-state radio frequency (SSRF) water heating apparatus, comprising:

a radio frequency (RF)-sealed enclosure;

at least one tank disposed within the RF-shielded enclosure, the tank configured to hold a volume of water and comprising:

at least one first RF-transparent surface at a first end of the tank;

and

at least one second RF-transparent surface at a second end of the tank, the second end opposite the first end;

a solid-state RF (SSRF) array disposed within the enclosure at the first end of the tank, the SSRF array operatively coupled to a power supply and configured to:

generate RF energy in the microwave frequency range;

and

heat the volume of water by transmitting the RF energy through the tank between the first RF-transparent surface and the second RF-transparent surface;

and

control processors in communication with the SSRF array, the control processors configured to adjust the transmitted RF energy.

2. The SSRF water heating apparatus of claim 1 , further comprising:

one or more RF sensors disposed within the enclosure at the second end, the RF sensors configured to measure residual RF energy associated with the transmitted RF energy;

the control processors configured to adjust the transmitted RF energy based on the measured residual RF energy.

3. The SSRF water heating apparatus of claim 1 , further comprising:

at least one inlet valve operatively coupled to the tank and to a water supply, the inlet valve in communication with the control processors and configured to allow the volume of water into the tank by opening.

4. The SSRF water heating apparatus of claim 1 , further comprising:

at least one outlet valve operatively coupled to the tank, the outlet valve in communication with the control processors and configured to dispense at least one of air, steam, and heated water from the tank by opening.

5. The SSRF water heating apparatus of claim 1 , further comprising:

at least one overpressure valve operatively coupled to the tank, the overpressure valve in communication with the control processors and configured to vent at least one of air, steam, and heated water from the tank.

6. The SSRF water heating apparatus of claim 1 , further comprising:

at least one temperature sensor disposed within the tank, the temperature sensor in communication with the control processors and configured to sense a water temperature within the tank.

7. The SSRF water heating apparatus of claim 1 , further comprising:

at least one air chiller operatively coupled to an air supply, the air chiller configured to circulate chilled air over at least one of the control processors, the power supply, and the SSRF array.

8. The SSRF water heating apparatus of claim 1 , wherein the tank is fully fashioned of at least one RF-transparent material.

9. The SSRF water heating apparatus of claim 1 , wherein the SSRF array includes at least one of:

an RF signal source configured to generate the RF energy;

and

at least one antenna element configured for transmitting the RF energy through the tank.

10. A solid-state radio frequency (SSRF) steam generation apparatus, comprising:

a radio frequency (RF)-sealed enclosure;

at least one tank disposed within the RF-shielded enclosure, the tank configured to hold a volume of water and comprising:

at least one first RF-transparent surface at a first end of the tank;

and

at least one second RF-transparent surface at a second end of the tank, the second end opposite the first end;

a solid-state RF (SSRF) array disposed within the enclosure at the first end of the tank, the SSRF array operatively coupled to a power supply and configured to:

generate RF energy in the microwave frequency range;

and

generate a volume of steam within the tank by transmitting the RF energy through the tank between the first end and the second end;

one or more RF sensors disposed within the enclosure at the second end, the RF sensors in communication with the control processors and configured to measure residual RF energy associated with the transmitted RF energy;

control processors in communication with the SSRF array and with the one or more RF sensors, the control processors configured to adjust the transmitted RF energy based on the measured residual RF energy;

and

at least one outlet valve operatively coupled to the tank, the outlet valve in communication with the control processors and configured to dispense the volume of steam from within the tank by opening.

11. The SSRF steam generation apparatus of claim 10 , further comprising:

at least one inlet valve operatively coupled to the tank and to a water supply, the inlet valve in communication with the control processors and configured to allow the volume of water into the tank by opening.

12. The SSRF steam generation apparatus of claim 10 , further comprising:

at least one tank sensor disposed within the tank, the tank sensor in communication with the control processors and configured to sense at least one of an interior temperature, a humidity level, and a pressure level within the tank.

13. The SSRF steam generation apparatus of claim 10 , wherein the outlet valve is configured to vent at least a portion of the volume of steam into a galley insert (GAIN) device coupled to the SSRF steam generation apparatus via the outlet valve.

14. The SSRF steam generation apparatus of claim 10 , further comprising:

at least one overpressure valve operatively coupled to the tank, the overpressure valve in communication with the control processors and configured to vent at least one of air, water, and excess steam from the tank.

15. The SSRF steam generation apparatus of claim 10 , wherein the tank is fully fashioned of RF-transparent material.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 5, 2023
From: KONINKLIJKE FABRIEK INVENTUM B.V.
To: B/E AEROSPACE, INC.
Reel/Frame 063554/0267 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 4, 2020
From: GONZALEZ, ARNAU CASTILLO; HUIJSING, HANS
To: KONINKLIFKE FABRIEK INVENTUM B.V.
Reel/Frame 052834/0958 →
Continuity (2)
Continuation In Part 15946636 · Apr 5, 2018
Related Publication 20200172247A1 · Jun 4, 2020