The present inventive concept relates to the field of vertical closures and condition monitoring of the same. More particularly, it is disclosed an apparatus for vertically closing an opening, and related methods, systems, and devices.
Arrangements for vertical closures are used in industrial facilities, commercial and public buildings, residential houses, and the like, typically to cover doorways and windows for the purpose of protecting against vandalism, burglary, fire, and climatic variations.
A typical vertical closure comprises a mounting frame placed above the opening to be closed and a door leaf able to be wound on and unwound from a roller attached to the mounting frame. The movement of the door leaf is often controlled by a simple circuit switch. Some closures include guiding rails parallel to the opening for guiding the door leaf between its wound and unwound state.
The components belonging to a vertical closure wear and might also fail over the course of time. The closure may also originally have been mounted or adjusted in a wrong way. A failure of a critical component such as the mounting frame imposes a severe risk of injuring people should the closure fall down. Further, any failure preventing the closure from opening and closing as intended requires extensive troubleshooting to establish the cause of failure, during which the closure does not serve its intended purpose.
It is an object of the present inventive concept to mitigate, alleviate, or eliminate one or more of the above-identified deficiencies in the art and disadvantages singly or in combination.
According to a first aspect of the inventive concept, these and other objects are achieved in full, or at least in part, by an apparatus for vertically closing an opening, the apparatus comprising a fixed element attached to a surface and placed above an opening such as a window, doorway, or the like. The apparatus further comprising a roller connected to the fixed element; a shielding element attached to the roller, the shielding element being adapted to be wound on and unwound from the roller, the shielding element being configured to be in a first state when the opening is covered by the shielding element and thereby closed, and a second state when the opening is open. The apparatus further comprising a motor configured to drive the roller such that the shielding element can be moved between the first and second state; a number of sensor arrangements; a condition monitoring device configured to receive data from at least one of the number of sensor arrangements and to directly or indirectly compare the data with reference data such that a service need and/or a safety issue can be identified.
At least one of the number of sensor arrangements may be capable of detecting a vertical position of the shielding element.
At least one of the number of sensor arrangements may be capable of detecting an inclination of the fixed element about at least one axis.
At least one of the number of sensor arrangements may be capable of detecting a position of the roller relative the fixed element.
The apparatus may comprise a first and a second guiding element, and at least one of the number of sensor arrangements may be capable of detecting a position of the shielding element along at least one horizontal axis relative to at least one of the first and the second guiding element.
The apparatus may comprise a switch for controlling the motor, and at least one of the number of sensor arrangements may be capable of detecting a signal failure between the switch and the motor.
At least one of the number of sensor arrangements may be capable of detecting a number of starts and/or stops and/or time of operating of the motor.
The apparatus may comprise a thermal circuit breaker, and at least one of the number of sensor arrangements may be capable of detecting the state of the thermal circuit breaker.
The service need and/or the safety issue may be identified by comparing data from one of the number of sensor arrangements to the reference data.
The service need and/or the safety issue may be identified by comparing data from a combination of the number of sensor arrangements to the reference data.
The condition monitoring device may be further configured to fine tune the motor.
The condition monitoring device may be configured to transmit the received data to and receive the reference data from an on-site located data node.
At least one of the number of sensor arrangements may be an electric current sensor configured to determine an electric current fed to the motor.
At least one of the number of sensor arrangements may be a temperature sensor configured to determine a temperature in the motor.
At least one of the number of sensor arrangements may be a vibration sensor configured to determine a vibration of the apparatus.
The number of sensor arrangements may be configured to determine a state of at least one of a circuit switch, a remote controller, a radar controller, a safety edge, a photocell, a limit switch, and a kill switch According to a second aspect of the inventive concept, these and other objects are achieved in full, or at least in part, by a system comprising at least one apparatus according to the above; at least one on-site located data node; and a database. The at least one data node is configured to communicate with the condition monitoring device of the at least one apparatus, and to communicate with the database.
The database may be a remotely placed cloud service.
The system may comprise at least two apparatuses according to the above, wherein the at least two apparatuses are configured to exchange information with each other.
According to a third aspect of the inventive concept, these and other objects are achieved in full, or at least in part, by a method for identifying a service need and/or a safety issue for an apparatus for vertically closing an opening. The apparatus comprises a fixed element attached to a surface and placed above an opening such as a window, doorway, or the like. The apparatus further comprises a roller connected to the fixed element; a shielding element attached to the roller, the shielding element being adapted to be wound an unwound on and from the roller, the shielding element being configured to be in a first state when the opening is covered by the shielding element and thereby closed, and a second state when the opening is open; a motor configured to drive the roller such that the shielding element can be moved between the first and second state; a number of sensor arrangements; a condition monitoring device configured to receive data from at least one of the number of sensor arrangements. The method comprises collecting data from the number of sensor arrangements; comparing the data with reference data in order to identify a service need and/or a safety issue; and generate a condition notification and/or safety issue notification.
The step of comparing the data with reference data may be performed at least by the condition monitoring device and/or an on-site located data node and/or a database and/or a computing device connected to the database.
The method may further comprise the step of updating the reference data using the data.
According to a fourth aspect of the inventive concept, these and other objects are achieved in full, or at least in part, by a condition monitoring device configured to receive data from a sensor arrangement for monitoring an arrangement for vertically closing an opening, the condition monitoring device being further configured to directly or indirectly compare the data with reference data such that a service need and/or a safety issue of the arrangement can be identified.
Other objectives, features and advantages of the present invention will appear from the following detailed disclosure, from the attached claims as well as from the drawings.
Generally, all terms used in the claims are to be interpreted according to their ordinary meaning in the technical field, unless explicitly defined otherwise herein. All references to “a/an/the [element, device, component, means, step, etc]” are to be interpreted openly as referring to at least one instance of said element, device, component, means, step, etc., unless explicitly stated otherwise. The steps of any method disclosed herein do not have to be performed in the exact order disclosed, unless explicitly stated.
The above, as well as additional objects, features and advantages of the present invention/inventive concept, will be better understood through the following illustrative and non-limiting detailed description of different embodiments of the present invention/inventive concept, with reference to the appended drawings, wherein:
The apparatus 100 may comprise a number of sensor arrangements. The apparatus 100 may comprise a condition monitoring device 104 configured to receive data from at least one of the number of sensor arrangements. The condition monitoring device 104 may directly or indirectly compare the data with reference data such that a service need and/or a safety issue can be identified. The phrase “directly compare the data with reference data” should be interpreted to imply that the data is compared with reference data by the condition monitoring device 104. The phrase “indirectly compare the data with reference data” should be interpreted to imply that the data is compared with reference data by another device, such as an on-site located data node, and/or a database, and/or a computer connected to the database. The comparison of data with reference data may be made by the condition monitoring device 104, and/or the on-site located data node, and/or the database, and/or a computer connected to the database.
The apparatus 100 may comprise a sensor arrangement 110 capable of detecting a vertical position of the shielding element 102. The sensor arrangement 110 may comprise a photocell and/or a magnetic contact switch and/or an imaging device. The sensor arrangement 110 may be configured such that it is possible to determine a velocity of the shielding element 102. For example, the sensor arrangement 110 may comprise two sensors positioned apart along a vertical axis on the first guiding element as shown in
The apparatus 100 may comprise a switch 106 for controlling the motor. The switch 106 may be a key-operated switch. The switch 106 may communicate with the motor wirelessly. The apparatus 100 may comprise a switch sensor arrangement capable of detecting a signal failure between the switch 106 and the motor.
The apparatus 100 may comprise a motor sensor arrangement capable of detecting a number of starts and/or stops and/or time of operating of the motor. The motor sensor arrangement may be capable of detecting an electric current fed to the motor. The motor sensor arrangement may be capable of detecting a voltage drop across the motor. The motor sensor arrangement may be capable of detecting an electric current spike fed to the motor. The motor sensor arrangement may be capable of detecting a time of operating of the motor during a pre-determined time window. The motor sensor arrangement may be capable of detecting whether a backup battery is supplying the motor with power. The motor sensor arrangement may be capable of detecting a power level of the backup battery.
The apparatus 100 may comprise a thermal circuit breaker. The apparatus 100 may comprise a thermal circuit breaker sensor arrangement capable of detecting the state of the thermal circuit breaker.
The apparatus 100 may comprise a sensor arrangement 112 capable of detecting an inclination of the fixed element about at least one axis, such as three mutually perpendicular axes. The sensor arrangement 112 may comprise an accelerometer. By detecting an inclination of the fixed element, it may be possible to determine whether the fixed element is coming loose from its attachment to the surface, and/or whether the fixed element has been properly installed. The sensor arrangement 112 may be capable of detecting vibrations in the fixed element. The vibrations may be caused by a winding and/or unwinding of the shielding element 102.
The apparatus 100 may comprise an emergency shutdown switch. The apparatus 100 may comprise an emergency shutdown switch sensor arrangement capable of detecting the state of the emergency shutdown switch.
The apparatus 100 may comprise a vibration sensor arrangement capable of detecting vibrations in the apparatus 100.
The condition monitoring device 104 may be configured to fine tune the motor. For example, a motor voltage and/or motor current may be changed. In yet another example, a torque profile of the motor may be changed such that the torque of the motor is low directly after a start of the motor and subsequently slowly increases. Such a torque profile may increase the life-time of the motor and/or decrease vibrations in the apparatus 100.
The condition monitoring device 104 may be configured to transmit the received data to and receive the reference data from the on-site located data node and/or the database.
The condition monitoring device 104 may be configured to store data. Hereby, for example in the case of a power outage, data from at least one of the number of sensor arrangements may be stored in the condition monitoring device 104 until the power outage is over, after which data can be transmitted to the on-site located data node and/or the database.
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The apparatus may comprise at least two sensor arrangements. Data from the at least two sensor arrangements may be combined in order to increase the certainty of an assumed condition of the apparatus. For example, data from the sensor arrangement 112 may be combined with data from the sensor arrangement 110. Data from the sensor arrangement 110 may indicate that the shielding element 102 is not level, and data from the sensor arrangement 112 may indicate that the fixed element is not inclined. These indications may in combination point away from a problem with the fixed element and towards a problem with the shielding element 102 and/or the roller.
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The condition monitoring device may directly or indirectly compare the data with reference data such that a service need and/or a safety issue can be identified. The comparison of data with reference data may be made by the condition monitoring device, and/or the on-site located data node 418, and/or the database 420, and/or a computer 422 connected to the database.
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The method comprises collecting data at 524 from the number of sensor arrangements, comparing the data with reference data at 526 in order to identify a service need and/or a safety issue, and generate a condition notification and/or safety issue notification at 528. The step of comparing the data with reference data may be performed at least by the condition monitoring device and/or an on-site located data node and/or a database and/or a computing device connected to the database. The method may further comprise updating the reference data with the data at 530. Thus, the reference data may come to reflect a normal operating condition of the apparatus. The certainty of the identified service need and/or safety issue may thus increase over time as more data is received from the at least one sensor arrangement. Further, the reference data may be used to predict a need of maintenance of the apparatus for example before a component of the apparatus fail. The reference data may be used to predict a life-time of a component of the apparatus.
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A temperature sensor in the motor 632 may detect a temperature in the motor 632. Data 640 representing a temperature in the motor 632 may be sent to the condition monitoring device 604. Hereby, it may be possible to determine if the motor 632 is close to reaching a temperature wherein a thermal circuit breaker of the motor 632 will engage. The thermal circuit breaker may herein be defined as a security measure in order to prevent the motor 632 from reaching a temperature where the motor 632 will be damaged and/or perform suboptimal. The temperature sensor may be located within the motor. The temperature sensor may be located within the roller.
The apparatus may comprise a vibration sensor configured to determine a vibration of the apparatus, and/or the fixed element, and/or the shielding element, and/or the motor. Vibrations may be caused by a starting and/or stopping of the motor, and/or by a winding or unwinding of the shielding element on and from the roller respectively. The condition monitoring device may be configured to determine whether a vibration exceeds a pre-determined threshold. A vibration may herein be defined as an amplitude of a vibration. Further, the vibration sensor may be configured to detect vibrations in a specific interval of vibration frequencies.
Data 640 representing the temperature in the motor 632 and/or data representing electric current 634 fed to the motor 632 may be directly or indirectly compared with reference data, for example in a computer 622, such that a service need and/or a safety issue can be identified.
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The invention has mainly been described above with reference to a few embodiments. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the invention, as defined by the appended patent claims.
Number | Date | Country | Kind |
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1650502-6 | Apr 2016 | SE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/058810 | 4/12/2017 | WO | 00 |