Patent · US10697847B2 · B2 · US
Overpressure encapsulation system for explosion protection, and corresponding operating method
- (11) Publication number
- US10697847B2
- (21) Application number
- 15/774,131
- (22) Filing date
- 2016-11-04
- (30) Priority date
- 2015-11-20
- (43) Publication date
- 2020-06-30
- (45) Date of grant
- 2020-06-30
- (51) IPC
- B25J 11/00; B25J 19/00; G01M 3/26; G01M 3/28
- (52) CPC
- (73) Assignee
- DUERR SYSTEMS AG
- (72) Inventors
- HÄCKER JENS; CARLS ALEXANDER
- (54) Title
- Overpressure encapsulation system for explosion protection, and corresponding operating method
- (57) Abstract
The disclosure relates to an overpressure encapsulation system for explosion protection, comprising the following: a device (1), in particular a painting robot (1), an overpressure-encapsulated device housing (2) comprising a housing outlet (6) for discharging gas out of the device housing (2), a compressed air system (3, 4) for operating the device (1), said compressed air system (3, 4) being arranged within the device housing (2), a sensor assembly (7, 8, 9) for measuring at least one fluid variable (Q, PI, PA), and an analysis unit (11) which analyzes the fluid variable (Q, PI, PA) measured by the sensor assembly (7, 8, 9), in particular in order to detect a leakage of the device housing (2). The disclosure proposes that, when a leakage of the device housing (2) starts, the analysis unit (11) ascertains a remaining run time until a required maintenance operation or until a system failure on the basis of the measured fluid variable (Q, PI, PA) and/or detects a fault (14, 16) of the compressed air system (3, 4) on the basis of the measured fluid variable (Q, PI, PA). The disclosure further relates to a corresponding operating method.
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Claims (16)
- An overpressure encapsulation system for explosion protection, comprising: a) a device, b) an overpressure-encapsulated device housing for explosion protection for the device, c) a housing outlet in the device housing for discharging gas out of the device housing through the housing outlet into a surrounding atmosphere, d) a compressed air system for operating the device by means of compressed air, said compressed air system being arranged at least partially inside the overpressure-encapsulated device housing, e) a sensor assembly for measuring at least one fluid variable in the device housing, at the housing outlet and/or in the surrounding atmosphere, and f) an analysis unit, which is connected to the sensor assembly on an inlet side and analyzes the fluid variable measured by the sensor assembly, wherein g) when a leakage of the device housing starts, the analysis unit ascertains a remaining runtime until a required maintenance operation or until a system failure on the basis of the measured fluid variable.
- An overpressure encapsulation system according to claim 1, wherein the device is a painting robot.
- An overpressure encapsulation system according to claim 2, wherein the analysis unit considers the flow volume of the gas through the housing outlet as the fluid variable to be analyzed for ascertaining the remaining runtime.
- An overpressure encapsulation system according to claim 3, wherein the sensor assembly comprises: a) an internal pressure sensor, which measures the internal pressure inside the device housing, and b) an ambient pressure sensor, which measures the ambient pressure outside the device housing, c) wherein the analysis unit calculates the flow volume of the gas through the housing outlet from the measured internal pressure and the measured ambient pressure.
- An overpressure encapsulation system according to claim 2, wherein the sensor assembly comprises a flow volume sensor, which measures the flow volume of the gas through the housing outlet.
- An overpressure encapsulation system according to claim 2, wherein the sensor assembly emits a quantitative sensor signal of the at least one measured fluid variable.
- An overpressure encapsulation system according to claim 2, wherein a valve is arranged in the housing outlet.
- An overpressure encapsulation system according to claim 2, wherein a) in a leakage, the fluid variable follows a predetermined temporal course, which is stored in the analysis unit, b) the analysis unit measures the temporal course of the measured fluid variable, c) from the stored temporal course and the measured temporal course, the analysis unit calculates the remaining runtime until a required maintenance operation or until a system failure.
- An overpressure encapsulation system according to claim 2, wherein a) the analysis unit calculates a statistical trend of the measured fluid variable, b) the analysis unit calculates an intersect point between the statistical trend of the measured fluid variable and a predetermined threshold value for the fluid variable, and c) the analysis unit calculates the remaining runtime before the intersect point is reached.
- An overpressure encapsulation system according to claim 2, wherein the compressed air system of the device contains at least one of the following components: a) a pneumatically controlled coating agent valve for controlling a coating agent flow, b) a control valve for controlling a compressed air flow, c) a compressed air line for conducting a compressed air flow.
- An overpressure encapsulation system for explosion protection, comprising: a) a device, b) an overpressure-encapsulated device housing for explosion protection for the device, c) a housing outlet in the device housing for discharging gas out of the device housing through the housing outlet into a surrounding atmosphere, d) a compressed air system for operating the device by means of compressed air, said compressed air system being arranged at least partially inside the overpressure-encapsulated device housing, e) a sensor assembly for measuring at least one fluid variable in the device housing, at the housing outlet and/or in the surrounding atmosphere, and f) an analysis unit, which is connected to the sensor assembly on an inlet side and analyzes the fluid variable measured by the sensor assembly, g) wherein the analysis unit detects a fault of the compressed air system on the basis of the measured fluid variable.
- An overpressure encapsulation system according to claim 11, wherein the device is a painting robot.
- An overpressure encapsulation system according to claim 12, wherein the sensor assembly comprises the following: a) an internal pressure sensor, which measures the internal pressure inside the device housing, and b) an ambient pressure sensor, which measures the ambient pressure outside the device housing, c) wherein the analysis unit calculates the flow volume of the gas through the housing outlet from the measured internal pressure and the measured ambient pressure.
- An overpressure encapsulation system according to claim 12, wherein the sensor assembly comprises a flow volume sensor, which measures the flow volume of the gas through the housing outlet.
- An overpressure encapsulation system according to claim 12, wherein the sensor assembly emits a quantitative sensor signal of the at least one measured fluid variable.
- An overpressure encapsulation system according to claim 12, wherein a valve is arranged in the housing outlet.
Description
FIG. 1 a schematic illustration of an overpressure encapsulation system according to the disclosure for a painting robot, FIG. 2 a diagram to illustrate the slow drop in internal pressure of the overpressure-encapsulated device housing when a leakage of the device housing starts, FIG. 3 a flow diagram to illustrate the calculation of remaining runtime when a leakage of the device housing starts, FIG. 4 a diagram to illustrate the flow volume from the housing outlet of the device housing in different operating conditions and fault cases, and FIG. 5 a flow diagram to illustrate recognition and differentiation of different operating conditions of the compressed air system on the basis of the measured fluid variable.
The examples described herein improve the above-described overpressure encapsulation system. The disclosure provides a correspondingly improved operating method for such an overpressure encapsulation system. The overpressure encapsulation system for explosion protection according to the disclosure first of all includes a device, for example a painting robot or an electro-pneumatic switchgear combination. However, in terms of the type of device to be protected, the disclosure is not restricted to painting robots or electro-pneumatic switchgear combinations, but it can also be realized with other types of device. In this respect it should be mentioned that the device includes a device housing with an overpressure encapsulation, in order to provide explosion protection for the device, in particular in accordance with technical standard DIN EN 60079-2.
Citations (11)
- CN101351311A
- CN102177002A
- CN102563362A
- CN2819200Y
- DE102014109731A1
- JP2013111697A
- JPH05115111A
- US2006261192A1
- US2008287050A1
- US3766844A
- WO2007074416A2
Record as JSON
{
"publication_number": "US10697847B2",
"country": "US",
"kind": "B2",
"title": "Overpressure encapsulation system for explosion protection, and corresponding operating method",
"abstract": "The disclosure relates to an overpressure encapsulation system for explosion protection, comprising the following: a device (1), in particular a painting robot (1), an overpressure-encapsulated device housing (2) comprising a housing outlet (6) for discharging gas out of the device housing (2), a compressed air system (3, 4) for operating the device (1), said compressed air system (3, 4) being arranged within the device housing (2), a sensor assembly (7, 8, 9) for measuring at least one fluid variable (Q, PI, PA), and an analysis unit (11) which analyzes the fluid variable (Q, PI, PA) measured by the sensor assembly (7, 8, 9), in particular in order to detect a leakage of the device housing (2). The disclosure proposes that, when a leakage of the device housing (2) starts, the analysis unit (11) ascertains a remaining run time until a required maintenance operation or until a system failure on the basis of the measured fluid variable (Q, PI, PA) and/or detects a fault (14, 16) of the compressed air system (3, 4) on the basis of the measured fluid variable (Q, PI, PA). The disclosure further relates to a corresponding operating method.",
"claims": [
"1. An overpressure encapsulation system for explosion protection, comprising: a) a device, b) an overpressure-encapsulated device housing for explosion protection for the device, c) a housing outlet in the device housing for discharging gas out of the device housing through the housing outlet into a surrounding atmosphere, d) a compressed air system for operating the device by means of compressed air, said compressed air system being arranged at least partially inside the overpressure-encapsulated device housing, e) a sensor assembly for measuring at least one fluid variable in the device housing, at the housing outlet and/or in the surrounding atmosphere, and f) an analysis unit, which is connected to the sensor assembly on an inlet side and analyzes the fluid variable measured by the sensor assembly, wherein g) when a leakage of the device housing starts, the analysis unit ascertains a remaining runtime until a required maintenance operation or until a system failure on the basis of the measured fluid variable.",
"2. An overpressure encapsulation system according to claim 1, wherein the device is a painting robot.",
"3. An overpressure encapsulation system according to claim 2, wherein the analysis unit considers the flow volume of the gas through the housing outlet as the fluid variable to be analyzed for ascertaining the remaining runtime.",
"4. An overpressure encapsulation system according to claim 3, wherein the sensor assembly comprises: a) an internal pressure sensor, which measures the internal pressure inside the device housing, and b) an ambient pressure sensor, which measures the ambient pressure outside the device housing, c) wherein the analysis unit calculates the flow volume of the gas through the housing outlet from the measured internal pressure and the measured ambient pressure.",
"5. An overpressure encapsulation system according to claim 2, wherein the sensor assembly comprises a flow volume sensor, which measures the flow volume of the gas through the housing outlet.",
"6. An overpressure encapsulation system according to claim 2, wherein the sensor assembly emits a quantitative sensor signal of the at least one measured fluid variable.",
"7. An overpressure encapsulation system according to claim 2, wherein a valve is arranged in the housing outlet.",
"8. An overpressure encapsulation system according to claim 2, wherein a) in a leakage, the fluid variable follows a predetermined temporal course, which is stored in the analysis unit, b) the analysis unit measures the temporal course of the measured fluid variable, c) from the stored temporal course and the measured temporal course, the analysis unit calculates the remaining runtime until a required maintenance operation or until a system failure.",
"9. An overpressure encapsulation system according to claim 2, wherein a) the analysis unit calculates a statistical trend of the measured fluid variable, b) the analysis unit calculates an intersect point between the statistical trend of the measured fluid variable and a predetermined threshold value for the fluid variable, and c) the analysis unit calculates the remaining runtime before the intersect point is reached.",
"10. An overpressure encapsulation system according to claim 2, wherein the compressed air system of the device contains at least one of the following components: a) a pneumatically controlled coating agent valve for controlling a coating agent flow, b) a control valve for controlling a compressed air flow, c) a compressed air line for conducting a compressed air flow.",
"11. An overpressure encapsulation system for explosion protection, comprising: a) a device, b) an overpressure-encapsulated device housing for explosion protection for the device, c) a housing outlet in the device housing for discharging gas out of the device housing through the housing outlet into a surrounding atmosphere, d) a compressed air system for operating the device by means of compressed air, said compressed air system being arranged at least partially inside the overpressure-encapsulated device housing, e) a sensor assembly for measuring at least one fluid variable in the device housing, at the housing outlet and/or in the surrounding atmosphere, and f) an analysis unit, which is connected to the sensor assembly on an inlet side and analyzes the fluid variable measured by the sensor assembly, g) wherein the analysis unit detects a fault of the compressed air system on the basis of the measured fluid variable.",
"12. An overpressure encapsulation system according to claim 11, wherein the device is a painting robot.",
"13. An overpressure encapsulation system according to claim 12, wherein the sensor assembly comprises the following: a) an internal pressure sensor, which measures the internal pressure inside the device housing, and b) an ambient pressure sensor, which measures the ambient pressure outside the device housing, c) wherein the analysis unit calculates the flow volume of the gas through the housing outlet from the measured internal pressure and the measured ambient pressure.",
"14. An overpressure encapsulation system according to claim 12, wherein the sensor assembly comprises a flow volume sensor, which measures the flow volume of the gas through the housing outlet.",
"15. An overpressure encapsulation system according to claim 12, wherein the sensor assembly emits a quantitative sensor signal of the at least one measured fluid variable.",
"16. An overpressure encapsulation system according to claim 12, wherein a valve is arranged in the housing outlet."
],
"description_excerpt": "FIG. 1 a schematic illustration of an overpressure encapsulation system according to the disclosure for a painting robot, FIG. 2 a diagram to illustrate the slow drop in internal pressure of the overpressure-encapsulated device housing when a leakage of the device housing starts, FIG. 3 a flow diagram to illustrate the calculation of remaining runtime when a leakage of the device housing starts, FIG. 4 a diagram to illustrate the flow volume from the housing outlet of the device housing in different operating conditions and fault cases, and FIG. 5 a flow diagram to illustrate recognition and differentiation of different operating conditions of the compressed air system on the basis of the measured fluid variable.\n\nThe examples described herein improve the above-described overpressure encapsulation system. The disclosure provides a correspondingly improved operating method for such an overpressure encapsulation system. The overpressure encapsulation system for explosion protection according to the disclosure first of all includes a device, for example a painting robot or an electro-pneumatic switchgear combination. However, in terms of the type of device to be protected, the disclosure is not restricted to painting robots or electro-pneumatic switchgear combinations, but it can also be realized with other types of device. In this respect it should be mentioned that the device includes a device housing with an overpressure encapsulation, in order to provide explosion protection for the device, in particular in accordance with technical standard DIN EN 60079-2.",
"cpc": [
"G01M 3/26",
"B25J 11/0075",
"B25J 19/0079",
"G01M 3/283"
],
"ipc": [
"B25J 11/00",
"B25J 19/00",
"G01M 3/26",
"G01M 3/28"
],
"assignees": [
"DUERR SYSTEMS AG"
],
"inventors": [
"HÄCKER JENS",
"CARLS ALEXANDER"
],
"filing_date": "2016-11-04",
"publication_date": "2020-06-30",
"grant_date": "2020-06-30",
"priority_date": "2015-11-20",
"application_number": "US-201615774131-A",
"family_id": "57249769",
"citations": [
"CN101351311A",
"CN102177002A",
"CN102563362A",
"CN2819200Y",
"DE102014109731A1",
"JP2013111697A",
"JPH05115111A",
"US2006261192A1",
"US2008287050A1",
"US3766844A",
"WO2007074416A2"
]
}
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