IP Library Granted Patent US 10,557,736
Granted Patent B2
US 10,557,736 · App. 15/581,875 · Granted Feb 11, 2020

Predictive diagnostics systems and methods using vacuum pressure control valves

Inventors: David Brian Chamberlain (Hooksett, NH); Vladislav Davidkovich (Reading, MA); Scott Benedict (Nashua, NH); Gordon Hill (Arlington, MA)
Assignee: MKS Instruments, Inc.
G01F9/001G01N17/008
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Quick Facts
Patent No.
US 10,557,736
App. No.
15/581,875
Granted
Feb 11, 2020
Kind
B2
Abstract

Calibration of a valve in a vacuum system and providing a diagnostic indication in the vacuum system using the calibration includes measuring conductance of the valve as a function of angular valve position and generating a conductance calibration map or function for use during operation of the valve. An actual angular valve position is set based on the received set point angular valve position and a difference between the measured valve conductance and a predefined metric of conductance versus angular valve position. An actual system conductance and a difference between the actual system conductance and a reference system conductance for the system are determined. The diagnostic indication of a fault in the system is generated based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system.

Claims (67)

1. A method for calibrating a valve in a vacuum system, comprising:

measuring conductance of the valve as a function of angular valve position;

determining a conductance map or function for the valve by comparing the measured valve conductance to a predefined metric of conductance versus angular valve position;

storing the conductance calibration map or function for use during operation of the valve, wherein a difference between the measured valve conductance and the predefined metric of conductance versus angular valve position is used in determining the conductance map or function;

during operation, receiving a set point angular valve position based on a desired conductance of the valve, and setting actual angular valve position of the valve based on the received set point angular valve position and the difference between the measured valve conductance and the predefined metric of conductance versus angular valve position;

determining an actual system conductance and determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein

if the actual angular valve position is relatively low and the actual system conductance is greater than the reference system conductance, in a low-conductance valve, the diagnostic indication is that a flapper seal of the low-conductance valve is worn.

2. The method of claim 1 , wherein the relatively low angular valve position is below 20 degrees.

3. A method for providing a diagnostic indication in a vacuum system using a valve, the method comprising:

receiving a set point angular valve position based on a desired conductance of the valve;

setting actual angular valve position of the valve based on the received set point angular valve position and a difference between the measured valve conductance and a predefined metric of conductance versus angular valve position;

determining an actual system conductance;

determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein,

if the actual angular valve position is relatively low and the actual system conductance is greater than the reference system conductance, in a low-conductance valve, the diagnostic indication is that a flapper seal of the low-conductance valve is worn.

4. The method of claim 3 , wherein the relatively low angular valve position is below 20 degrees.

5. A method for calibrating a valve in a vacuum system, comprising:

measuring conductance of the valve as a function of angular valve position;

determining a conductance map or function for the valve by comparing the measured valve conductance to a predefined metric of conductance versus angular valve position; and

storing the conductance calibration map or function for use during operation of the valve wherein a difference between the measured valve conductance and the predefined metric of conductance versus angular valve position is used in determining the conductance map or function;

during operation, receiving a set point angular valve position based on a desired conductance of the valve; and setting actual angular valve position of the valve based on the received set point angular valve position and the difference between the measured valve conductance and the predefined metric of conductance versus angular valve position;

determining an actual system conductance and determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein

if the actual angular valve position is relatively low and the actual system conductance is less than the reference system conductance, in a non-sealing valve, the diagnostic indication is that deposition by-products have accumulated on at least one of a valve wall and a flapper of the valve.

6. The method of claim 5 , wherein the relatively low angular valve position is below 20 degrees.

7. A method for calibrating a valve in a vacuum system, comprising:

measuring conductance of the valve as a function of angular valve position;

determining a conductance map or function for the valve by comparing the measured valve conductance to a predefined metric of conductance versus angular valve position; and

storing the conductance calibration map or function for use during operation of the valve wherein a difference between the measured valve conductance and the predefined metric of conductance versus angular valve position is used in determining the conductance map or function;

during operation, receiving a set point angular valve position based on a desired conductance of the valve; and setting actual angular valve position of the valve based on the received set point angular valve position and the difference between the measured valve conductance and the predefined metric of conductance versus angular valve position;

determining an actual system conductance and determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein

if the actual angular valve position is relatively high and the actual system conductance is less than the reference system conductance, in a low-conductance valve, the diagnostic indication is at least one of an at least partial blockage in a conduit of the system and degradation of a pump in the system.

8. The method of claim 7 , wherein the relatively high angular valve position is greater than 50 degrees.

9. A method for calibrating a valve in a vacuum system, comprising:

measuring conductance of the valve as a function of angular valve position;

determining a conductance map or function for the valve by comparing the measured valve conductance to a predefined metric of conductance versus angular valve position; and

storing the conductance calibration map or function for use during operation of the valve wherein a difference between the measured valve conductance and the predefined metric of conductance versus angular valve position is used in determining the conductance map or function;

during operation, receiving a set point angular valve position based on a desired conductance of the valve; and setting actual angular valve position of the valve based on the received set point angular valve position and the difference between the measured valve conductance and the predefined metric of conductance versus angular valve position;

determining an actual system conductance and determining a difference between the actual system conductance and a reference system conductance for the system; and generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein,

if the actual angular valve position is relatively high and the actual system conductance is less than the reference system conductance, in a non-sealing valve, the diagnostic indication is at least one of an at least partial blockage in a conduit of the system and degradation of a pump in the system.

10. The method of claim 9 , wherein the relatively high angular valve position is greater than 50 degrees.

11. A method for providing a diagnostic indication in a vacuum system using a valve, the method comprising:

receiving a set point angular valve position based on a desired conductance of the valve;

setting actual angular valve position of the valve based on the received set point angular valve position and a difference between the measured valve conductance and a predefined metric of conductance versus angular valve position;

determining an actual system conductance;

determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein,

if the actual angular valve position is relatively low and the actual system conductance is less than the reference system conductance, in a non-sealing valve, the diagnostic indication is that deposition by-products have accumulated on at least one of a valve wall and a flapper of the valve.

12. The method of claim 11 , wherein the relatively low angular valve position is below 20 degrees.

13. A method for providing a diagnostic indication in a vacuum system using a valve, the method comprising:

receiving a set point angular valve position based on a desired conductance of the valve;

setting actual angular valve position of the valve based on the received set point angular valve position and a difference between the measured valve conductance and a predefined metric of conductance versus angular valve position;

determining an actual system conductance;

determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein,

if the actual angular valve position is relatively high and the actual system conductance is less than the reference system conductance, in a low-conductance valve, the diagnostic indication is at least one of an at least partial blockage in a conduit of the system and degradation of a pump in the system.

14. The method of claim 13 , wherein the relatively high angular valve position is greater than 50 degrees.

15. A method for providing a diagnostic indication in a vacuum system using a valve, the method comprising:

receiving a set point angular valve position based on a desired conductance of the valve;

setting actual angular valve position of the valve based on the received set point angular valve position and a difference between the measured valve conductance and a predefined metric of conductance versus angular valve position;

determining an actual system conductance;

determining a difference between the actual system conductance and a reference system conductance for the system; and

generating a diagnostic indication of a fault in the system, the diagnostic indication being based on the actual angular valve position of the valve and the difference between the actual system conductance and the reference system conductance for the system; wherein,

if the actual angular valve position is relatively high and the actual system conductance is less than the reference system conductance, in a non-sealing valve, the diagnostic indication is at least one of an at least partial blockage in a conduit of the system and degradation of a pump in the system.

16. The method of claim 15 , wherein the relatively high angular valve position is greater than 50 degrees.

Assignments (9)
RELEASE OF SECURITY INTEREST Recorded Aug 24, 2022
From: BARCLAYS BANK PLC
To: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION; ELECTRO SCIENTIFIC INDUSTRIES, INC.
Reel/Frame 063009/0001 →
RELEASE OF SECURITY INTEREST Recorded Aug 24, 2022
From: BARCLAYS BANK PLC
To: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION; ELECTRO SCIENTIFIC INDUSTRIES, INC.
Reel/Frame 062739/0001 →
SECURITY INTEREST Recorded Aug 19, 2022
From: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION; ELECTRO SCIENTIFIC INDUSTRIES, INC.
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 061572/0069 →
CORRECTIVE ASSIGNMENT TO CORRECT THE REMOVE U.S. PATENT NO.7,919,646 PREVIOUSLY RECORDED ON REEL 048211 FRAME 0312. ASSIGNOR(S) HEREBY CONFIRMS THE PATENT SECURITY AGREEMENT (ABL). Recorded Jan 14, 2021
From: ELECTRO SCIENTIFIC INDUSTRIES, INC.; MKS INSTRUMENTS, INC.; NEWPORT CORPORATION
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 055668/0687 →
PATENT SECURITY AGREEMENT (ABL) Recorded Feb 1, 2019
From: ELECTRO SCIENTIFIC INDUSTRIES, INC.; MKS INSTRUMENTS, INC.; NEWPORT CORPORATION
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 048211/0312 →
RELEASE OF SECURITY INTEREST Recorded Feb 1, 2019
From: DEUTSCHE BANK AG NEW YORK BRANCH
To: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION
Reel/Frame 048224/0939 →
ABL SECURITY AGREEMENT Recorded Nov 15, 2017
From: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 044455/0506 →
TERM LOAN SECURITY AGREEMENT Recorded Nov 15, 2017
From: MKS INSTRUMENTS, INC.; NEWPORT CORPORATION
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 044455/0355 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 8, 2017
From: CHAMBERLAIN, DAVID BRIAN; DAVIDKOVICH, VLADISLAV; BENEDICT, SCOTT; HILL, GORDON
To: MKS INSTRUMENTS, INC.
Reel/Frame 042645/0211 →
Continuity (2)
Provisional Application 62333989 · May 10, 2016
Related Publication 20170328756A1 · Nov 16, 2017