IP Library Granted Patent US 12674477
Granted Patent B2
US 12674477 · App. 18/024,689 · Granted Jul 7, 2026

Cylinder failure prediction system and method, and cylinder failure inspection system and method

Inventor: Young Sik Won (Daejeon, KR)
Assignee: LG ENERGY SOLUTION, LTD.
F15B19/005F15B15/14F15B2211/87
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Quick Facts
Patent No.
US 12674477
App. No.
18/024,689
Granted
Jul 7, 2026
Kind
B2
Abstract

A cylinder failure prediction system includes a data acquisition part configured to acquire a plurality of pieces of operation time data for each of a plurality of cylinders by repeatedly detecting operation times of the plurality of cylinders over an equipment operation elapsed time, a degradation index value calculation part configured to calculate degradation index values of a plurality of statistical degradation indexes that can represent a failure of the cylinder on the basis of the operation time data, and a determination part configured to rank the degradation index values of the statistical degradation indexes calculated for each cylinder according to a magnitude, and assign a predetermined score to each of the cylinders having an upper value, which is greater than or equal to a predetermined range, in the ranked degradation index values and determine a failure-predicted cylinder on the basis of a sum of the predetermined scores.

Claims (47)

1 . A cylinder failure prediction system comprising:

a data acquisition part configured to acquire a plurality of pieces of operation time data for each cylinder of a plurality of cylinders by repeatedly detecting operation times of the plurality of cylinders over an equipment operation elapsed time;

a degradation index value calculation part configured to calculate degradation index values of a plurality of statistical degradation indexes capable of representing a failure of each cylinder on the basis of the operation time data; and

a determination part configured to:

rank the degradation index values of the statistical degradation indexes calculated for each cylinder according to a magnitude;

assign a predetermined score to cylinders of the plurality of cylinders having an upper value, which is greater than or equal to a predetermined range, in the ranked degradation index values; and

determine a failure-predicted cylinder on the basis of a sum of the predetermined scores.

2 . The cylinder failure prediction system of claim 1 , wherein the data acquisition part is configured to acquire data by taking one or more of a forward movement time, a backward movement time, and a summed time of the forward and backward movement times of a cylinder rod of each cylinder as the operation time of each cylinder.

3 . The cylinder failure prediction system of claim 2 , wherein the data acquisition part is configured to:

consider each of the forward movement time and the backward movement time of the cylinder rod as one piece of separate and independent operation time data; and

acquire two pieces of operation time data corresponding to the forward and backward movement times when the cylinder rod provided in each cylinder performs one reciprocating operation.

4 . The cylinder failure prediction system of claim 1 , wherein the statistical degradation indexes include two or more selected from a group consisting of an average, a variance, a first quartile, a median, a third quartile, a skewness, and a kurtosis of the pieces of operation time data of each cylinder.

5 . The cylinder failure prediction system of claim 1 , wherein one or more selected from a group consisting of an average, a variance, a first quartile, a median, a third quartile, a skewness, and a kurtosis of the pieces of operation time data of each cylinder, and

a change value of one or more statistical degradation indexes selected from the group are taken as the statistical degradation indexes.

6 . The cylinder failure prediction system of claim 1 , wherein the degradation index values of the statistical degradation indexes are calculated on the basis of the pieces of operation time data of each cylinder operated during a specific time section after each cylinder is repeatedly used for a predetermined period of time.

7 . The cylinder failure prediction system of claim 1 , wherein the data acquisition part is configured to:

group the pieces of operation time data of each cylinder for each unit time section of an inspection target period that is composed of a plurality of unit time sections; and

take the grouped pieces of operation time data as an individual operation time data group, and

wherein the degradation index value calculation part is configured to calculate the degradation index values of each cylinder for each operation time data group.

8 . The cylinder failure prediction system of claim 7 , wherein the determination part is configured to:

rank final period degradation index values, which are calculated on the basis of the operation time data group of a specific unit time section after the operation is performed for predetermined unit time sections of the inspection target period, for each cylinder;

assign a predetermined score to cylinders of the plurality of cylinders having an upper value, which is greater than or equal to a predetermined range, in the ranked final period degradation index values; and

determine the failure-predicted cylinder on the basis of a sum of the predetermined scores.

9 . The cylinder failure prediction system of claim 8 , wherein a difference value is obtained by subtracting the final period degradation index value from a start period degradation index value for the operation time data group in the unit time section of a start period of the inspection target period or an average value of the start period degradation index values obtained on the basis of the operation time data groups of the unit time sections of the start period thereof, and

wherein the difference value is provided as an additional statistical degradation index capable of representing the failure of the cylinder.

10 . The cylinder failure prediction system of claim 7 , wherein the determination part is configured to:

rank average final period degradation index values obtained by averaging final period degradation index values, which are calculated on the basis of each of operation time data groups of specific unit time sections after the operation is performed for predetermined unit time sections of the inspection target period, for each cylinder; and

assign a predetermined score to cylinders of plurality of cylinders having an upper value, which is greater than or equal to a predetermined range, in the ranked average final period degradation index values; and

determine the failure-predicted cylinder on the basis of a sum of the predetermined scores.

11 . The cylinder failure prediction system of claim 10 , wherein a difference value is obtained by subtracting the average final period degradation index values from a start period degradation index value for the operation time data group in the unit time section of a start period of the inspection target period or an average value of the start period degradation index values obtained on the basis of the operation time data groups of the unit time sections of the start period thereof, and

wherein the difference value is provided as an additional statistical degradation index capable of representing the failure of the cylinder.

12 . A cylinder failure inspection system comprising:

a data acquisition part configured to acquire a plurality of pieces of operation time data for each cylinder of a plurality of cylinders by repeatedly detecting operation times of the plurality of cylinders over an equipment operation elapsed time;

a degradation index value calculation part configured to calculate degradation index values of a plurality of statistical degradation indexes capable of representing a failure of each cylinder on the basis of the operation time data;

a determination part configured to:

rank the degradation index values of the statistical degradation indexes calculated for each cylinder according to a magnitude;

assign a predetermined score to cylinders of the plurality of cylinders having an upper value, which is greater than or equal to a predetermined range, in the ranked degradation index values; and

determine a failure-predicted cylinder on the basis of a sum of the predetermined scores; and

an inspection part configured to measure an air leak of a cylinder, which is determined as a failure-predicted cylinder by the determination part.

13 . A cylinder failure prediction method comprising:

acquiring, by a data acquisition part, a plurality of pieces of operation time data for each cylinder of a plurality of cylinders by repeatedly detecting operation times of the plurality of cylinders over an equipment operation elapsed time;

selecting, by a degradation index value calculation part, a plurality of statistical degradation indexes capable of representing a failure of each cylinder, and calculating degradation index values of the selected statistical degradation indexes on the basis of the operation time data;

ranking, by a determination part, each of the degradation index values for each cylinder according to a magnitude;

assigning, by the determination part, a predetermined score to cylinders of the plurality of cylinders having an upper value, which is greater than or equal to a predetermined range, in the ranked degradation index values, and determining, by the determination part, a failure-predicted cylinder on the basis of a sum of the predetermined scores;

inspecting a cylinder that is determined as a failure-predicted; and

replacing the cylinder in which a failure is found by the inspection.

14 . The cylinder failure prediction method of claim 13 , wherein a change value of at least one statistical degradation index selected from among the plurality of statistical degradation indexes is provided as an additional statistical degradation index for determining the failure-predicted cylinder.