IP Library › Granted Patent US 12,741,256
Granted Patent B2
US 12,741,256 · App. 19/020,933 · Granted Sep 22, 2026

Chemical dispenser having a motorized rotary diverter valve and method of using same

Inventor: Christopher J. Dyer (South Warnborough, GB)
Assignee: Delaware Capital Formation, Inc.
B01F35/7547B01F23/49B01F25/31232B01F35/7549D06F39/022F16K11/074A47L15/4418
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Quick Facts
Patent No.
US 12,741,256
App. No.
19/020,933
Granted
Sep 22, 2026
Kind
B2
Abstract

A chemical dispenser for a chemical dispensing system is disclosed. The chemical dispenser includes an input selector valve having an opened position and a closed position and configured to be coupled to a diluent source, a diverter valve coupled to the input selector valve, and a plurality of eductors coupled to the diverter valve. The diverter valve includes a valve head having a diluent port, a valve seat having a plurality of eductor ports, wherein each eductor port is in communication with a respective one of the plurality of eductors, and a drive mechanism coupled to the valve head and configured to move the valve head relative to the valve seat. The valve head may include one or more pressure relief ports for equalizing the diluent pressure across the valve head. A chemical dispensing system including the chemical dispenser and a method of using the chemical dispenser are also disclosed.

Claims (49)

1 . A diverter valve comprising:

a valve head having a diluent port and one or more pressure relief ports configured to equalize diluent pressure across the valve head;

a valve seat having a plurality of ports, each port of the plurality of ports configured to be in fluid communication with a respective one of a plurality of eductors; and

a drive mechanism configured to move the valve head relative to the valve seat so that diluent may flow through each of the plurality of ports when the diluent port of the valve seat is in communication with the port of the plurality of ports.

2 . The diverter valve of claim 1 , wherein the diverter valve is configured as a rotary diverter valve wherein the valve head rotates about an axis relative to the valve seat.

3 . The diverter valve of claim 1 , wherein the valve seat includes an inner interstitial region and one or more outer interstitial regions defined by one or more stiffening ribs.

4 . The diverter valve of claim 3 , wherein the valve head includes one or more inner pressure relief ports arranged to be in fluidic communication with the inner interstitial region and one or more outer pressure relief ports arranged to be in fluidic communication with the one or more outer interstitial region.

5 . The diverter valve of claim 1 , wherein the valve seat includes one or more stiffening tabs and one or more stiffening ribs.

6 . The diverter valve of claim 1 , wherein the drive mechanism includes a drive motor.

7 . The diverter valve of claim 1 , further comprising:

a controller coupled to the drive mechanism and configured to control movement of the valve head relative to the valve seat.

8 . The diverter valve of claim 7 , wherein the controller comprises at least one processor and memory storing instructions that, when executed, cause the at least one processor to perform operations comprising:

moving the valve head relative to the valve seat.

9 . The diverter valve of claim 1 wherein the drive mechanism comprises:

a drive motor for rotating a drive shaft;

a worm gear coupled to the drive shaft; and

a drive gear that meshes with teeth of the worm gear, the drive gear configured to rotate the valve head.

10 . A chemical dispensing system comprising:

the diverter valve of claim 1 ;

a plurality of eductors fluidically coupled to the plurality of ports;

an outlet manifold in fluidic communication with respective outlets of each of the plurality of eductors;

a controller operatively coupled to the drive mechanism;

one or more chemical reservoirs operatively coupled to respective ones of the plurality of eductors; and

a point-of-use device coupled in fluidic communication with the outlet manifold, and

wherein the point-of-use device is in electrical communication with the controller and the controller is configured to operate the drive mechanism responsive to input received from the point-of-use device.

11 . The chemical dispensing system of claim 10 , wherein the plurality of eductors includes at least one chemical eductor that includes a pickup port and the plurality of eductors includes at least one flush eductor that does not have a pickup port.

12 . The chemical dispensing system of claim 11 , further comprising an input selector valve fluidically coupled to the diverter valve comprising a solenoid for moving the input selector valve between an opened position and a closed position.

13 . A chemical dispenser comprising:

a diverter valve comprising:

a valve head comprising a diluent port and at least one pressure relief port configured to equalize diluent pressure across the valve head;

a valve seat having a plurality of ports, each port of the plurality of ports configured to be in communication with a respective one of a plurality of eductors; and

a drive mechanism configured to drive the valve head relative to the valve seat to alternately align the diluent port with one of the plurality of ports.

14 . The chemical dispenser of claim 13 , wherein the valve seat includes an inner interstitial region and one or more outer interstitial regions defined by one or more stiffening ribs.

15 . The chemical dispenser of claim 13 , wherein the valve seat includes one or more stiffening tabs and one or more stiffening ribs.

16 . The chemical dispenser of claim 14 , wherein the valve head includes one or more inner pressure relief ports arranged to be in fluidic communication with the inner interstitial region and one or more outer pressure relief ports arranged to be in fluidic communication with one or more outer interstitial region.

17 . A chemical dispensing system comprising:

the chemical dispenser of claim 13 ;

an inlet comprising an input selector valve in fluidic communication with the diverter valve;

an outlet manifold in fluidic communication with respective outlets of each of the plurality of ports, and

a controller operatively coupled to the drive mechanism;

a diluent source coupled to the inlet of the chemical dispenser; and

a point-of-use device coupled in fluidic communication with the outlet manifold, and wherein the point-of-use device is in electrical communication with the controller and the controller is configured to operate the drive mechanism responsive to input received from the point-of-use device.

18 . A chemical dispenser comprising:

a diverter valve comprising:

a valve head comprising a diluent port and at least one means for equalizing diluent pressure across the valve head;

a valve seat having a plurality of ports, each port of the plurality of ports configured to be in communication with a respective one of a plurality of eductors; and

driving means for moving the valve head relative to the valve seat to alternately align the diluent port with one of the plurality of ports.

19 . The chemical dispenser of claim 18 , further comprising an input selector valve fluidically coupled to the diverter valve, the input selector valve having opened and closed positions and configured to be coupled to a diluent source.

20 . The chemical dispenser of claim 19 , further comprising means for moving the input selector valve between the opened and closed positions.

Assignments (2)
CHANGE OF NAME Recorded Jul 24, 2026
From: DELAWARE CAPITAL FORMATION, INC.
To: DELAWARE CAPITAL FORMATION, LLC
Reel/Frame 076064/0958 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 21, 2025
From: DYER, CHRISTOPHER J.
To: DELAWARE CAPITAL FORMATION, INC.
Reel/Frame 069946/0234 →
Continuity (3)
Continuation 16993332 · Aug 14, 2020
Provisional Application 62888568 · Aug 19, 2019
Related Publication 20250153123A1 · May 15, 2025
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