IP Library › Granted Patent US 12,607,272
Granted Patent B2
US 12,607,272 · App. 18/820,967 · Granted Apr 21, 2026

Valve

Inventor: Dario Molinelli (Carnate, IT)
Assignee: MICROTECNICA S.R.L.
F16K17/04B01D35/1475B01D2201/167
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Quick Facts
Patent No.
US 12,607,272
App. No.
18/820,967
Granted
Apr 21, 2026
Kind
B2
Abstract

An assembly for a pressure relief valve includes a valve seat member, a piston and a fluid outlet. The valve seat member includes a fluid inlet, a seat sealing surface and an axial bore. The axial bore includes a first cavity and a second cavity. The seat sealing surface is disposed axially between the first cavity and the second cavity and the fluid inlet is disposed axially between the seat sealing surface and the second cavity. The piston is movable within the axial bore. The piston includes a piston sealing surface, a first cylindrical portion and a second cylindrical portion. The first cylindrical portion configured to be retained by and slidably engage with the first cavity and the second cylindrical portion configured to be retained by and slidably engage with the second cavity. The piston sealing surface is disposed axially between the first cylindrical portion and the second cylindrical portion.

Claims (40)

1 . An assembly for a pressure relief valve, comprising:

a valve seat member including:

a fluid inlet;

a seat sealing surface; and

an axial bore, the axial bore including a first cavity and a second cavity, wherein the seat sealing surface is disposed axially between the first cavity and the second cavity and the fluid inlet is disposed axially between the seat sealing surface and the second cavity;

a fluid outlet; and

a piston movable within the axial bore, the piston including:

a piston sealing surface;

a first cylindrical portion; and

a second cylindrical portion, the first cylindrical portion configured to be retained by and slidably engage with the first cavity and the second cylindrical portion configured to be retained by and slidably engage with the second cavity, wherein the piston sealing surface is disposed axially between the first cylindrical portion and the second cylindrical portion;

wherein the piston has a first position in which the piston sealing surface is engaged with the seat sealing surface such that a fluid path between the fluid inlet and the fluid outlet is closed, and a second position in which the fluid path between the fluid inlet and the fluid outlet is open; and

wherein the first cylindrical portion has a first radius, the second cylindrical portion has a second radius and the second radius is less than the first radius;

wherein a closed end of the axial bore includes a dampening cavity having a damping volume,

wherein the second cylindrical portion is disposed between the fluid inlet and the dampening cavity, and

wherein a second radial clearance between the second cavity and the second cylindrical portion is configured to restrict flow of fluid into and out of the damping volume.

2 . The assembly according to claim 1 , wherein the piston comprises a piston bore that passes axially through the first cylindrical portion and the fluid outlet is formed by the piston bore.

3 . The assembly according to claim 1 , wherein the fluid outlet is formed by one or more grooves in a radially outer surface of the first cylindrical portion.

4 . The assembly according to claim 1 , wherein a first radial clearance between the first cavity and the first cylindrical portion is less than 25 micrometres.

5 . The assembly according to claim 4 , wherein the first radial clearance is between 15 and 25 micrometres.

6 . The assembly according to claim 1 , wherein the second radial clearance is less than 35 micrometres.

7 . The assembly according to claim 1 , wherein the damping volume is configured to dampen oscillations of the piston.

8 . The assembly according to claim 1 , wherein the piston includes a third cylindrical portion disposed axially between the first cylindrical portion and the second cylindrical portion, the third cylindrical portion having a third radius and comprising the piston sealing surface, the third radius being larger than second radius and less than first radius.

9 . The assembly according to claim 8 , wherein the axial bore includes a third cavity surrounding the third cylindrical portion, the third cavity comprising a compensating volume surrounding the third cylindrical portion.

10 . The assembly according to claim 1 , wherein the valve seat member and the piston are formed from stainless steel.

11 . A valve comprising:

a body;

an inlet;

an outlet;

an assembly as recited in claim 1 , wherein the fluid inlet is in communication with the inlet of the valve and the fluid outlet is in communication with the outlet of the valve; and

a resilient member configured to bias the piston against the valve seat member.

12 . The valve according to claim 11 , wherein the body is integral with the valve seat member.

13 . The valve according to claim 11 , further comprising:

a spring guide that comprises a conical, frustoconical or spherical surface configured to engage with a guide surface of the piston.

14 . The valve according to claim 13 , wherein, the guide surface is conical or frustoconical.

15 . A filtration system for filtering hydraulic fluid comprising:

a pressurised fluid source;

a fluid reservoir;

a controllable valve arranged to selectively communicate the pressurised fluid source with a fluid supply line and the fluid reservoir; and

a valve according to claim 11 ;

wherein the valve is arranged to communicate the pressurised fluid source with fluid reservoir when a differential pressure between the pressurised fluid source and the fluid reservoir exceeds a predetermined pressure threshold.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 6, 2024
From: MOLINELLI, DARIO
To: MICROTECNICA S.R.L.
Reel/Frame 068504/0328 →
Priority Claims (1)
EP 23198370 · Sep 19, 2023 · regional
Continuity (1)
Related Publication 20250092956A1 · Mar 20, 2025
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