Patent · US10928284B2 · B2 · US
Impact test method and device in which an impact application member is caused to fall freely onto and collide with a test sample
- (11) Publication number
- US10928284B2
- (21) Application number
- 16/095,672
- (22) Filing date
- 2017-02-22
- (30) Priority date
- 2016-04-22
- (43) Publication date
- 2021-02-23
- (45) Date of grant
- 2021-02-23
- (51) IPC
- B65G 15/32; G01M 7/08; G01N 3/303; G01N 3/40
- (52) CPC
- G01N Investigating or analysing materials by determining their chemical or physical properties: 3/303, 2203/0032, 2203/0033, 2203/0039, 3/30, 3/307, 3/40
- B65G Transport or storage devices, e.g. conveyors for loading or tipping, shop conveyor systems or pneumatic tube conveyors: 15/32
- G01M Testing static or dynamic balance of machines or structures; testing of structures or apparatus, not otherwise provided for: 7/08
- (73) Assignee
- Yokohama Rubber Co Ltd
- (72) Inventors
- Gang Hou
- (54) Title
- Impact test method and device in which an impact application member is caused to fall freely onto and collide with a test sample
- (57) Abstract
An impact test method and an impact test device is provided, wherein an impact application member is caused to fall freely onto a test sample placed on a placement platform. When the impact application member collides with the test sample, an impact force applied to the test sample and an indentation amount of the impact application member with respect to the test sample are measured by a load meter and a displacement meter, respectively. Based on the measured impact force and the measured indentation amount, a calculation unit calculates energy loss absorbed by the test sample when the impact application member and the test sample collide with each other.
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Claims (5)
- An impact test method, in which an impact application member is caused to fall freely onto and collide with a test sample, the impact test method comprising: measuring an impact force applied to the test sample when the impact application member caused to fall freely collides with the test sample and an indentation amount of the impact application member in the test sample; calculating, based on the impact force and the indentation amount that are measured, energy loss absorbed by the test sample when the impact application member and the test sample collide with each other; measuring a surface temperature of the test sample with which the impact application member collides; and calculating, based on the surface temperature and the indentation amount that are measured, thermal energy generated in the test sample when the impact application member and the test sample collide with each other; wherein: the energy loss absorbed by the test sample is calculated by subtracting repulsive energy from indentation energy; the indentation energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in a relationship between the impact force and the indentation amount from a time when the impact application member is brought into contact with the test sample to a time when the impact application member indents the test sample to a deepest degree; and the repulsive energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in the relationship between the impact force and the indentation amount from the time when the impact application member indents the test sample to the deepest degree to a time when the impact application member rebounds away from the test sample.
- The impact test method according to claim 1, wherein the impact test is conducted under different temperature conditions.
- The impact test method according to claim 1, wherein rubber is used as the test sample.
- An impact test device, comprising: a placement platform on which a test sample is placed; an impact application member caused to fall freely onto the test sample placed on the placement platform; a load meter configured to measure an impact force applied to the test sample; a displacement meter configured to measure an indentation amount of the impact application member with respect to the test sample; a calculation unit to which measurement data obtained by the load meter and measurement data obtained by the displacement meter are input; the calculation unit being configured to calculate energy loss absorbed by the test sample when the impact application member and the test sample collide with each other based on an impact force and an indentation amount measured by the load meter and the displacement meter, respectively, when the impact application member caused to fall freely collides with the test sample; and a temperature sensor configured to measure a surface temperature of the test sample; wherein: based on a surface temperature of the test sample with which the impact application member collides measured by the temperature sensor and the indentation amount, the calculation unit is configured to calculate thermal energy generated in the test sample when the impact application member and the test sample collide with each other; the energy loss absorbed by the test sample is calculated by subtracting repulsive energy from indentation energy; the indentation energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in a relationship between the impact force and the indentation amount from a time when the impact application member is brought into contact with the test sample to a time when the impact application member indents the test sample to a deepest degree; and the repulsive energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in the relationship between the impact force and the indentation amount from the time when the impact application member indents the test sample to the deepest degree to a time when the impact application member rebounds away from the test sample.
- The impact test device according to claim 4, further comprising a temperature regulator configured to change a temperature of the test sample.
Description
The present technology relates to an impact test method and an impact test device and more particularly relates to an impact test method and an impact test device, which are capable of determining the shock resistance matching that in actual use conditions of a target object such as a conveyor belt.
Various objects, including mineral resources such as iron ore and limestone, are conveyed by a conveyor belt. When the objects to be conveyed are fed onto an upper cover rubber of the conveyor belt, the upper cover rubber is subject to impact, and when surfaces of the objects to be conveyed are sharp, a surface of the upper cover rubber sometimes sustains cut damage. Shock resistance of the upper cover rubber depends on, for example, rubber characteristics and operating environment.
Hitherto, there have been proposed various methods of evaluating shock resistance of a target object (see, for example Japan Patent Publication No. 2008-224632). Underlying the method described in Japan Patent Publication No. 2008-224632 is that a falling weight is caused to collide with and damage (penetrate) a test piece. Meanwhile, as for the target object such as the conveyor belt during general actual use, the objects to be conveyed being fed do not easily penetrate and damage the target object. That is, the method proposed in Japan Patent Publication No. 2008-224632 does not correspond to actual use conditions of the target object such as the conveyor belt. Thus, shock resistance during the actual use cannot sufficiently be determined.
Citations (20)
- US4313337A
- US4331026A
- US4565089A
- JPH10260123A
- CN1430053A
- US20040040369A1
- US7219531B2
- JP2008224632A
- US20120118071A1
- US20140047898A1
- JP2012189533A
- WO2016042999A1
- US20170292895A1
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- CN104535407A
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- US20190310175A1
Record as JSON
{
"publication_number": "US10928284B2",
"country": "US",
"kind": "B2",
"title": "Impact test method and device in which an impact application member is caused to fall freely onto and collide with a test sample",
"abstract": "An impact test method and an impact test device is provided, wherein an impact application member is caused to fall freely onto a test sample placed on a placement platform. When the impact application member collides with the test sample, an impact force applied to the test sample and an indentation amount of the impact application member with respect to the test sample are measured by a load meter and a displacement meter, respectively. Based on the measured impact force and the measured indentation amount, a calculation unit calculates energy loss absorbed by the test sample when the impact application member and the test sample collide with each other.",
"claims": [
"1. An impact test method, in which an impact application member is caused to fall freely onto and collide with a test sample, the impact test method comprising: measuring an impact force applied to the test sample when the impact application member caused to fall freely collides with the test sample and an indentation amount of the impact application member in the test sample; calculating, based on the impact force and the indentation amount that are measured, energy loss absorbed by the test sample when the impact application member and the test sample collide with each other; measuring a surface temperature of the test sample with which the impact application member collides; and calculating, based on the surface temperature and the indentation amount that are measured, thermal energy generated in the test sample when the impact application member and the test sample collide with each other; wherein: the energy loss absorbed by the test sample is calculated by subtracting repulsive energy from indentation energy; the indentation energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in a relationship between the impact force and the indentation amount from a time when the impact application member is brought into contact with the test sample to a time when the impact application member indents the test sample to a deepest degree; and the repulsive energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in the relationship between the impact force and the indentation amount from the time when the impact application member indents the test sample to the deepest degree to a time when the impact application member rebounds away from the test sample.",
"2. The impact test method according to claim 1, wherein the impact test is conducted under different temperature conditions.",
"3. The impact test method according to claim 1, wherein rubber is used as the test sample.",
"4. An impact test device, comprising: a placement platform on which a test sample is placed; an impact application member caused to fall freely onto the test sample placed on the placement platform; a load meter configured to measure an impact force applied to the test sample; a displacement meter configured to measure an indentation amount of the impact application member with respect to the test sample; a calculation unit to which measurement data obtained by the load meter and measurement data obtained by the displacement meter are input; the calculation unit being configured to calculate energy loss absorbed by the test sample when the impact application member and the test sample collide with each other based on an impact force and an indentation amount measured by the load meter and the displacement meter, respectively, when the impact application member caused to fall freely collides with the test sample; and a temperature sensor configured to measure a surface temperature of the test sample; wherein: based on a surface temperature of the test sample with which the impact application member collides measured by the temperature sensor and the indentation amount, the calculation unit is configured to calculate thermal energy generated in the test sample when the impact application member and the test sample collide with each other; the energy loss absorbed by the test sample is calculated by subtracting repulsive energy from indentation energy; the indentation energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in a relationship between the impact force and the indentation amount from a time when the impact application member is brought into contact with the test sample to a time when the impact application member indents the test sample to a deepest degree; and the repulsive energy is calculated, based on the impact force and the indentation amount that are measured, by integrating over a range in the relationship between the impact force and the indentation amount from the time when the impact application member indents the test sample to the deepest degree to a time when the impact application member rebounds away from the test sample.",
"5. The impact test device according to claim 4, further comprising a temperature regulator configured to change a temperature of the test sample."
],
"description_excerpt": "The present technology relates to an impact test method and an impact test device and more particularly relates to an impact test method and an impact test device, which are capable of determining the shock resistance matching that in actual use conditions of a target object such as a conveyor belt.\n\nVarious objects, including mineral resources such as iron ore and limestone, are conveyed by a conveyor belt. When the objects to be conveyed are fed onto an upper cover rubber of the conveyor belt, the upper cover rubber is subject to impact, and when surfaces of the objects to be conveyed are sharp, a surface of the upper cover rubber sometimes sustains cut damage. Shock resistance of the upper cover rubber depends on, for example, rubber characteristics and operating environment.\n\nHitherto, there have been proposed various methods of evaluating shock resistance of a target object (see, for example Japan Patent Publication No. 2008-224632). Underlying the method described in Japan Patent Publication No. 2008-224632 is that a falling weight is caused to collide with and damage (penetrate) a test piece. Meanwhile, as for the target object such as the conveyor belt during general actual use, the objects to be conveyed being fed do not easily penetrate and damage the target object. That is, the method proposed in Japan Patent Publication No. 2008-224632 does not correspond to actual use conditions of the target object such as the conveyor belt. Thus, shock resistance during the actual use cannot sufficiently be determined.",
"cpc": [
"G01N 3/303",
"B65G 15/32",
"G01M 7/08",
"G01N 2203/0032",
"G01N 2203/0033",
"G01N 2203/0039",
"G01N 3/30",
"G01N 3/307",
"G01N 3/40"
],
"ipc": [
"B65G 15/32",
"G01M 7/08",
"G01N 3/303",
"G01N 3/40"
],
"assignees": [
"Yokohama Rubber Co Ltd"
],
"inventors": [
"Gang Hou"
],
"filing_date": "2017-02-22",
"publication_date": "2021-02-23",
"grant_date": "2021-02-23",
"priority_date": "2016-04-22",
"application_number": "US-201716095672-A",
"family_id": "60115790",
"cited_by_count": 0,
"citations": [
"US4313337A",
"US4331026A",
"US4565089A",
"JPH10260123A",
"CN1430053A",
"US20040040369A1",
"US7219531B2",
"JP2008224632A",
"US20120118071A1",
"US20140047898A1",
"JP2012189533A",
"WO2016042999A1",
"US20170292895A1",
"US10184857B2",
"CN104535407A",
"US20160377518A1",
"US10221019B2",
"US10625942B2",
"US20170370815A1",
"US20190310175A1"
]
}
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