IP Library Granted Patent US 12,435,802
Granted Patent B2
US 12,435,802 · App. 18/475,951 · Granted Oct 7, 2025

Pool cleaning control system

Inventors: Steven James Goettl (Phoenix, AZ); Ross Anthony Dijulio (Phoenix, AZ)
Assignee: PUL PRODUCTS, LLC
F16K11/072E04H4/12F16K15/025
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Quick Facts
Patent No.
US 12,435,802
App. No.
18/475,951
Granted
Oct 7, 2025
Kind
B2
Abstract

A pool control system with a controller valve, a distribution valve, and a microcontroller. The controller valve has a primary water outlet and a bypass water outlet. The controller valve is configured to move between an open configuration in which the water passes from a water inlet to the primary water outlet and a closed configuration in which the water passes from the water inlet to the bypass water outlet. The distribution valve has an inlet port fluidly coupled to the primary water outlet and a plurality of outlet ports with an outlet port aperture. The outlet port aperture is configured to align with a new outlet port each time the controller valve moves from the open configuration to the closed configuration. The microcontroller is configured to discharge water from the pool control system by controlling the controller valve to change the configuration between the open and closed configurations.

Claims (44)

1. A pool control system, comprising:

a controller valve having:

a water inlet configured to fluidly couple with a water pump and receive water from a pool into the controller valve;

a primary water outlet and a bypass water outlet each fluidly coupled to the water inlet and configured to pass water out of the controller valve; and

a hydro-valve configured to move between an open position in which the water passes from the water inlet to the primary water outlet and a closed position in which the water passes from the water inlet to the bypass water outlet;

a distribution valve having:

an inlet port fluidly coupled to the primary water outlet of the controller valve;

a plurality of outlet ports with an outlet port aperture configured to sequentially align with each of the plurality of outlet ports; and

a pausing arm configured to move between a disengaged position in which the outlet port aperture is configured to align with a new outlet port of the plurality of outlet ports each time the hydro-valve moves from the open position to the closed position and an engaged position in which the pausing arm maintains a position of the outlet port aperture regardless of the position of the hydro-valve;

a plurality of water zones each configured to fluidly couple with a respective outlet port of the plurality of outlet ports of the distribution valve;

a microcontroller configured to intelligently and selectively discharge water from the pool control system to each of the plurality of water zones by controlling the hydro-valve to move the position of the hydro-valve between the open position and the closed position and controlling the pausing arm to move the position of the pausing arm between the disengaged position and the engaged position; and

an interface configured to receive specific feature input from a user for each of a plurality of specific features including at least one of a customized sequence for discharging water to each of the plurality of water zones, a customized duration of time for discharging water individually at each of the plurality of water zones, and a customized number of water cycles for a particular water zone to receive prior to starting a water cycle in a subsequent water zone, wherein the customized number of water cycles is a different value for each of at least two water zones of the plurality of water zones.

2. The pool control system of claim 1 , wherein the microcontroller is configured to receive the input from the user and to control the hydro-valve and the pausing arm to intelligently and selectively discharge water to each of the plurality of water zones based on the input received through the interface.

3. The pool control system of claim 1 , wherein the pool control system is configured to communicatively couple with and be controllable over the internet.

4. The pool control system of claim 1 , wherein the microcontroller is further configured to receive the specific feature input from the user for each of the plurality of water zones to program the pool control system.

5. A pool control system, comprising:

a controller valve having a primary water outlet and a bypass water outlet, wherein the controller valve is configured to move between an open configuration in which the water passes from a water inlet to the primary water outlet and a closed configuration in which the water passes from the water inlet to the bypass water outlet;

a distribution valve having:

an inlet port fluidly coupled to the primary water outlet of the controller valve; and

a plurality of outlet ports with an outlet port aperture configured to sequentially align with each of the plurality of outlet ports;

wherein the outlet port aperture is configured to align with a new outlet port of the plurality of outlet ports each time the controller valve moves from the open configuration to the closed configuration;

a plurality of water zones each configured to fluidly couple with a respective outlet port of the plurality of outlet ports of the distribution valve; and

a microcontroller configured to intelligently and selectively discharge water from the pool control system to each of the plurality of water zones by controlling the controller valve to change the configuration of the controller valve between the open configuration and the closed configuration; and

an interface configured to receive specific feature input from a user for each of a plurality of specific features of the pool control system including at least one of a customized sequence for discharging water to each of the plurality of water zones, a customized duration of time for each of the respective plurality of water zones for discharging water individually at each of the respective plurality of water zones, and a customized number of water cycles for a particular water zone to receive prior to starting a water cycle in a subsequent water zone, wherein the customized number of water cycles is a different value for each of at least two water zones of the plurality of water zones.

6. The pool control system of claim 5 , wherein the controller valve has a water inlet configured to fluidly couple with a water pump and receive water from a pool into the controller valve.

7. The pool control system of claim 5 , the distribution valve further having a pausing arm configured to move between a disengaged position in which the outlet port aperture is configured to align with a new outlet port of the plurality of outlet ports each time the controller valve moves from the open configuration to the close configuration and an engaged position in which the pausing arm maintains a position of the outlet port aperture regardless of the configuration of the controller valve.

8. The pool control system of claim 7 , wherein the microcontroller is configured to control the pausing arm to move the position of the pausing arm between the disengaged position and the engaged position and pause the distribution valve at a selected outlet port of the plurality of outlet ports so long as the pausing arm is in the engaged position.

9. The pool control system of claim 5 , wherein the microcontroller is configured to receive the input from the user and to control the controller valve to intelligently and selectively discharge water to each of the plurality of water zones based on the input received from the interface.

10. The pool control system of claim 5 , wherein the pool control system is configured to communicatively couple with and be controllable over the internet.

11. The pool control system of claim 5 , wherein the microcontroller is further configured to receive the specific feature input from the user for each of the plurality of water zones to program the pool control system.

12. A pool control system, comprising:

a controller valve configured to selectively pass water to a primary water outlet of the controller valve;

a distribution valve fluidly coupled to the primary water outlet of the controller valve and configured to individually select each of a plurality of outlet ports of the distribution valve and select a new outlet port each time the controller valve begins passing water to the primary water outlet;

a plurality of water zones each configured to fluidly couple with a respective outlet port of the plurality of outlet ports of the distribution valve;

a microcontroller configured to intelligently and selectively discharge water to each of the plurality of water zones by controlling the controller valve; and

an interface configured to receive specific feature input from a user for each of a plurality of specific features of the pool control system including at least two of a customized sequence for discharging water to each of the plurality of water zones, a customized duration of time for each of the plurality of water zones for discharging water individually at each of the plurality of water zones, and a customized number of water cycles for a particular water zone to receive water prior to starting a water cycle in a subsequent water zone.

13. The pool control system of claim 12 , wherein the microcontroller is configured to receive the specific feature input from the user for each of the plurality of water zones to program the pool control system.

14. The pool control system of claim 13 , wherein the distribution valve has an outlet port aperture configured to align with a new outlet port of the plurality of outlet ports each time the controller valve moves from the open configuration to the closed configuration.

15. The pool control system of claim 14 , the distribution valve having a pausing arm configured to move between a disengaged position in which the outlet port aperture is configured to align with a new outlet port of the plurality of outlet ports each time the controller valve moves from the open configuration to the close configuration and an engaged position in which the pausing arm maintains a position of the outlet port aperture regardless of the configuration of the controller valve, wherein the microcontroller is configured to control the pausing arm to move the position of the pausing arm between the disengaged position and the engaged position.

16. The pool control system of claim 12 , wherein the microcontroller is configured to receive the input from the user and to control the controller valve to intelligently and selectively discharge water to each of the plurality of water zones based on the input received through the interface.

17. The pool control system of claim 12 , wherein the customized number of water cycles is a different value for each of at least two water zones of the plurality of water zones.

18. The pool control system of claim 12 , wherein the pool control system is configured to communicatively couple with and be controllable over the internet.

19. The pool control system of claim 12 , wherein the controller valve has a water inlet configured to fluidly couple with a water pump and receive water from a pool into the controller valve.

20. The pool control system of claim 12 , wherein the microcontroller is configured to receive the input from the user and to control the distribution valve and a pausing arm to intelligently and selectively discharge water to each of the plurality of water zones based on the input received through the interface.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2024
From: GOETTL, STEVEN JAMES; DIJULIO, ROSS ANTHONY
To: PUL PRODUCTS, LLC
Reel/Frame 068547/0273 →
Continuity (8)
Continuation In Part 18448442 · Aug 11, 2023
Continuation In Part 18141810 · May 1, 2023
Continuation 17219856 · Mar 31, 2021
Continuation In Part 17160985 · Jan 28, 2021
Provisional Application 63410957 · Sep 28, 2022
Provisional Application 63410963 · Sep 28, 2022
Provisional Application 63336574 · Apr 29, 2022
Related Publication 20240019035A1 · Jan 18, 2024
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