IP Library › Granted Patent US 12,492,566
Granted Patent B2
US 12,492,566 · App. 19/044,850 · Granted Dec 9, 2025

Chamber assembly for generating waves

Inventors: Clement Ginestet (Saint-Quen, FR); Alexander Wynne-Edwards (Victoria, CA); Nicholas Dortmans (Vancouver, CA); Axel Terradillos (Vancouver, CA)
Assignee: WHITEWATER WEST INDUSTRIES LTD
E04H4/0006
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Quick Facts
Patent No.
US 12,492,566
App. No.
19/044,850
Granted
Dec 9, 2025
Kind
B2
Abstract

A chamber assembly for generating waves includes a chamber for releasing water to generate a wave, the chamber comprising a sensor and an ingress valve; and a control system connected to the sensor and the ingress valve, wherein the control system receives input from the sensor to enable the control system to selectively control the position of the ingress valve to thereby permit air into the chamber to effect the release of water from the chamber.

Claims (30)

1 . A chamber assembly for generating waves, the chamber assembly comprising:

a chamber for releasing water to generate a wave, the chamber comprising a sensor and an ingress valve; and

a control system connected to the sensor and the ingress valve, wherein the control system receives input from the sensor to enable the control system to selectively control the position of the ingress valve to thereby permit air into the chamber to effect the release of water from the chamber.

2 . The chamber assembly of claim 1 , wherein the control system sends a signal to the ingress valve to open the ingress valve to a first preset valve angle when the water in the chamber reaches a first water level, and to thereafter open the ingress valve to a second preset valve angle when the water in the chamber reaches a second water level and thereby push water out of the chamber.

3 . The chamber assembly of claim 2 , wherein the first water level is different than the second water level.

4 . The chamber assembly of claim 1 , wherein the sensor comprises one of a pressure sensor, a water height sensor, or a temperature sensor.

5 . The chamber assembly of claim 4 , wherein the sensor comprises the water height sensor to determine the height of the water in the chamber.

6 . The chamber assembly of claim 5 , wherein the control system comprises a controller to set an ingress valve opening percentage, wherein the ingress valve opening percentage is related to a difference between the height of the water measured by the water height sensor and a set height point.

7 . The chamber assembly of claim 1 , wherein the control system comprises a user interface for receiving desired water height profile characteristics for the chamber from a user.

8 . The chamber assembly of claim 7 , wherein the control system selectively controls the position of the ingress valve between to create the desired water height profile characteristics received from the user.

9 . The chamber assembly of claim 1 , wherein the ingress valve introduces pressurized air into the chamber.

10 . The chamber assembly of claim 9 , wherein:

the chamber further comprises a vent valve;

the vent valve releases the pressurized air from the chamber; and

the control system is further configured to selectively control the vent valve.

11 . The chamber assembly of claim 10 , wherein:

in a first state, the vent valve is fully closed and the ingress valve is at least partially open to pressurize the chamber and reduce a water level in the chamber; and

in a second state, the ingress valve is fully closed and the vent valve is at least partially open closed to evacuate the air from the chamber and increase the water level in the chamber.

12 . The chamber assembly of claim 10 , wherein, in a third state, the vent valve is at least partially open and the ingress valve is at least partially closed.

13 . The chamber assembly of claim 1 , wherein:

the chamber is a first chamber of a plurality of chambers;

each of the chambers comprises a one of the sensors and a one of the ingress valves; and

the control system is connected to each of the sensors and each of the ingress valves.

14 . The chamber assembly of claim 13 , wherein the control system sends a signal to each ingress valve to open the ingress valve to a first preset valve angle when the water in the corresponding chamber reaches a first water level, and to thereafter open the ingress valve to a second preset valve angle when the water in the corresponding chamber reaches a second water level and thereby push water out of the corresponding chamber.

15 . The chamber assembly of claim 14 , wherein at least one of the plurality of chambers reaches the second water level at a different time than each other chamber of the plurality of chambers.

16 . The chamber assembly of claim 1 , wherein the ingress valve is positioned to reduce oscillation of a water level in the chamber during or after the water is evacuated from the chamber.

17 . The chamber assembly of claim 1 , further comprising a plenum, and exhaust valve, and a second sensor, wherein the second sensor is a temperature sensor configured to measure a temperature in the plenum, and wherein the control system is further configured to receive input from temperature sensor related to the measured temperature in the plenum.

18 . The chamber assembly of claim 17 , further comprising one or more fans blowing air into the plenum.

19 . The chamber assembly of claim 18 , further comprising a third sensor configured to measure an actual power consumption of the one or more fans.

20 . The chamber assembly of claim 19 , wherein the control system is transmit a signal to the exhaust valve, based on the measured power consumption, to adjust an exhaust valve angle to a desired exhaust valve angle.

Continuity (4)
Continuation 18540722 · Dec 14, 2023
Continuation 17652680 · Feb 25, 2022
Provisional Application 63153923 · Feb 25, 2021
Related Publication 20250179823A1 · Jun 5, 2025
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