IP Library Granted Patent US 12,558,583
Granted Patent B2
US 12,558,583 · App. 18/235,506 · Granted Feb 24, 2026

Fluid control valve assembly for fire protection systems

Inventors: Martin H Workman (Delton, MI); Shawn J. Feenstra (Caledonia, MI)
Assignees: Viking Group, Inc.; Minimax Viking Patent Management GmbH
A62C35/68A62C35/605A62C37/46F16K7/12F16K31/1266
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Quick Facts
Patent No.
US 12,558,583
App. No.
18/235,506
Granted
Feb 24, 2026
Kind
B2
Abstract

Fluid control valve assemblies for use in fire protection sprinkler systems to control the flow of firefighting fluid to the system sprinklers. The assemblies include a pressure-operated fluid control valve having an internal fluid chamber in which fluid contained therein acts on an internal diaphragm to control the flow of fluid from an inlet to an outlet of the valve. An environment-responsive control device in fluid communication with the internal fluid chamber along a first fluid communication line controls the flow of fluid out of the fluid chamber to initiate actuation of the valve. A fluid-flow latch in fluid communication with the outlet of the valve along a second fluid communication line subsequently controls the simultaneous flow of fluid out of the fluid chamber and the actuation of the valve.

Claims (11)

1 . A method of operating a pressure-operated fluid control valve, the pressure-operated fluid control valve having a valve body including a surface defining a passageway with an inlet and outlet disposed along a longitudinal axis and a seat transverse to the longitudinal axis, an elastomeric diaphragm adjacent the valve body, the elastomeric diaphragm including a seal surface and a support surface, the elastomeric diaphragm defining a closed position in which the seal surface contacts the seat to prohibit fluid flow between the inlet and outlet of the passageway and an open position in which the seal surface displaces from the seat to permit fluid flow between the inlet and outlet of the passageway, and a cover disposed on the valve body, the cover including an inner surface confronting the support surface of the elastomeric diaphragm to define a fluid chamber, the method comprising:

establishing, in response to an environmental condition, a primary fluid communication line between the fluid chamber and a first fluid outlet connected to a drain, and

establishing, in response to the fluid flow between the inlet and outlet of the passageway, a secondary fluid communication line between the fluid chamber and a second fluid outlet connected to the drain.

2 . The method of operating a pressure-operated fluid control valve of claim 1 , wherein the establishing the primary fluid communication line between the fluid chamber and the first fluid outlet comprises operating an environment-responsive control device, and wherein the establishing the secondary fluid communication line between the fluid chamber and the second fluid outlet comprises operating a fluid-flow latch.

3 . The method of operating a pressure-operated fluid control valve of claim 2 , wherein the operating the environment-responsive control device comprises providing at least one primary port on the cover in direct fluid communication with the fluid chamber and wherein operating the fluid-flow latch comprises providing at least one secondary port on the cover in direct fluid communication with the fluid chamber.

4 . The method of operating a pressure-operated fluid control valve of claim 3 , wherein providing at least one primary port on the cover in direct fluid communication with the fluid chamber comprises providing a plurality of primary ports on the cover in direct fluid communication with the fluid chamber.

5 . The method of operating a pressure-operated fluid control valve of claim 3 , wherein providing at least one secondary port on the cover in direct fluid communication with the fluid chamber comprises providing a plurality of secondary ports on the cover in direct fluid communication with the fluid chamber.

6 . The method of operating a pressure-operated fluid control valve of claim 3 , wherein the environment-responsive control device comprises an automatic release device, and wherein the automatic release device comprises at least one of: a pneumatic actuator, an electric actuator, or combination of the pneumatic actuator and the electric actuator.

7 . The method of operating a pressure-operated fluid control valve of claim 6 , wherein the fluid-flow latch comprises a pressure-operated release valve.

8 . The method of operating a pressure-operated fluid control valve of claim 3 , wherein a first fluid drain line connects the first fluid outlet to the drain.

9 . The method of operating a pressure-operated fluid control valve of claim 8 , wherein a second fluid drain line connects the second fluid outlet to the drain.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2026
From: FEENSTRA, SHAWN J.
To: MINIMAX VIKING RESEARCH & DEVELOPMENT GMBH
Reel/Frame 073361/0621 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2026
From: WORKMAN, MARTIN H.
To: VIKING GROUP, INC.
Reel/Frame 073361/0815 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 5, 2026
From: MINIMAX VIKING RESEARCH & DEVELOPMENT GMBH
To: MINIMAX VIKING PATENT MANAGEMENT GMBH
Reel/Frame 073362/0083 →
Continuity (3)
Continuation 17782525
Provisional Application 63059669 · Jul 31, 2020
Related Publication 20230405380A1 · Dec 21, 2023
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