The present disclosure relates to an enclosure designed to enclose and protect a robot controller from water in a washdown environment and/or protect a robot controller from dust in a dusty environment while also providing proper cooling for the enclosed robot controller.
As the usage of robots in industrial settings continue to increase, a challenge of creating robots that can operate within washdown and dusty environments is slowly being met by robot manufacturers. Many manufacturers now have robots that can withstand washdown cycles encountered in food plants and that can be protected against dust in dusty environments. However, one remaining part of a manufacturing system that is not presently protected is the robot controller. Industrial robots utilize a separate robot controller to run the robot. The separate robot controller is where electronics for controlling movement of the industrial robot and for sensing and vision of the industrial robot, among other things, occurs.
The present disclosure addresses the above-described problem and provides protection to the robot controller in washdown and dusty environments without requiring alteration to the controller itself.
In one aspect, the present disclosure provides a system configured to enclose one or more robot controllers. In one form, a system comprises a base and an exterior shell configured to couple with the base, the exterior shell defining an interior area sized to enclose a robot controller of an industrial machine.
The system further comprises a first cooling fan and a second cooling fan. The first cooling fan is positioned on the exterior shell, wherein the first cooling fan is configured to draw air into the interior area of the exterior shell and the first cooling fan comprises a baffle positioned on the exterior shell that is configured to prevent water from entering the interior area of the exterior shell at the first cooling fan. The second cooling fan is positioned on the exterior shell, wherein the second cooling fan is configured to expel at least one of air or moisture from the interior area of the exterior shell and the second cooling fan comprises a baffle positioned on the exterior shell that is configured to prevent water from entering the interior area of the exterior shell at the second cooling fan.
In some implementations, at least one of the first cooling fan or the second cooling fan further comprises a filter configured to prevent dust from entering the interior area of the disclosure.
The present disclosure further provides a system configured to enclose a plurality of robot controllers for one or more industrial machines. In one form, the system comprises a plurality of enclosures stacked on top of each other, wherein each enclosure comprises a base and an exterior shell configured to couple with the base, the exterior shell defining an interior area sized to enclose a robot controller.
Each enclosure further comprises a first cooling fan and a second cooling fan. The first cooling fan is positioned on the exterior shell, wherein the first cooling fan is configured to draw air into the interior area of the exterior shell and the first cooling fan comprises a baffle positioned on the exterior shell that is configured to prevent water from entering the interior area of the exterior shell at the first cooling fan. The second cooling fan is positioned on the exterior shell, wherein the second cooling fan is configured to expel at least one of air or moisture from the interior area of the exterior shell and the second cooling fan comprises a baffle positioned on the exterior shell that is configured to prevent water from entering the interior area of the exterior shell at the second cooling fan.
In some implementations, at least one of the first cooling fan or the second cooling fan further comprises a filter configured to prevent dust from entering the interior area of the disclosure. In these implementations, the filter may be removable and cleanable.
The disclosure further provides another system that is configured to enclose one or more robot controllers. In one form, the system comprises a base; an exterior shell configured to couple with the base, the exterior shell defining an interior area sized to enclose a robot controller of an industrial machine; and an air conditioning unit positioned on the exterior shell, wherein the air conditioning unit is configured to create a circular airflow at least partially around the robot controller position in the interior area of the exterior shell.
It is desirable for an enclosure 102, 104 for a robot controller to keep a robot controller within the enclosure dry in a washdown environment or dust-free in a dusty environment. To keep the robot controller dry, first, water should be kept from entering into an interior of the enclosure during the washdown process, and second, any moisture that seeps into the interior of the enclosure or that enters the enclosure via humid air should be eliminated. Similarly, to keep the robot controller dust-free, dust should be kept from entering the interior of the enclosure from the dusty environment.
Referring to
The first cooling fan 106 and the second cooling fan 110 may include one or more baffles 111 that are mounted to the exterior shell 108. The baffles at the first cooling fan 106 and the second cooling fan 110 prevent water from entering the interior area of the enclosure 102 through the first cooling fan 106 and/or the second cooling fan 110.
In some implementations, the first cooling fan 106 may include a removable filter that prevents dust from entering the interior area of the disclosure at the first cooling fan 106. Similarly, in some implementations, the second cooling fan 110 may also include a removable filter that prevents dust from entering the interior area of the disclosure at the second cooling fan 110. In some implementations, the removable filter of the fans may be cleanable for reuse.
In some implementations, the first cooling fan 106 and the second cooling fan 110 are configured to move between 155 and 500 cubic feet per minute (CFM). Further, in some implementations, the first cooling fan 106 is positioned on the exterior shell 108 adjacent to or near a base 118 of the interior of the enclosure 102 to improve airflow through the interior of the enclosure 102. Further, in some implementations, the second cooling fan 110 may be positioned on the exterior shell 108 adjacent to or near a top of the exterior shell 108 to assist in airflow and expelling at least one of water or moisture from the interior of the enclosure 102.
As illustrated in
Referring to
Humid air and seeping moisture are controlled within the interior area of the enclosure 102 by having a constant airflow within the interior area of the enclosure 102 that is sufficient to expel the humid air and moisture from the interior area, cause the moisture in the interior area to evaporate, and/or prevent humid air from condensing in the interior area. Accordingly, the airflow through the enclosure 102 should be maintained in order to protect the robot controller.
As illustrated in
In some implementations, the airflow within the interior area of the enclosure 102 accommodates one or more cooling fans 120 that are present on the robot controller 116 itself. For example, a direct air path from the first cooling fan 106 positioned as the inlet fan to second cooling fan 110 positioned as the exhaust fan is avoided. If a direct air path were to exist between the first and second cooling fans 106, 110, the hot air generated by the robot controller 116 would not be flushed out of the enclosure 102. As described above, in some implementations the baffles 114 prevent a direct air path between the first and second cooling fans 106, 110 by directing air from the first cooling fan 106 away from the second cooling fan 110. Additionally, in some implementations, the baffles 114 direct the airflow around the interior of the enclosure 102 as shown in
In some alternative implementations, rather than utilizing first and second fans 106, 110, an air conditioning unit is positioned on the enclosure 102. Similar to the cooling fans, the air conditioning unit may include baffles to prevent water from entering the interior area of the enclosure 102 at the air conditioning unit and/or the air conditioning unit may include a filter to prevent dust from entering the interior area of the enclosure 102 at the air conditioning unit.
In implementations utilizing an air conditioning unit, an air inlet of the air condition and an air outlet of the air conditioning unit are positioned on the enclosure 102 to create a circular airflow in the interior area of the enclosure 102 at least partially around a robot controller positioned in the interior area of the enclosure 102, similar to the airflow described above that is generated by the first and second fans 106, 110. In these implementations, baffles 114 within the interior area of the enclosure 102 prevent airflow directly between the air inlet and air outlet of the air conditioning unit and direct the airflow around the robot controller. In some implementations, the air inlet of the air conditioner is positioned near a top of the enclosure 102 and the air outlet of the air conditioning is positioned near a bottom of the enclosure 102 near a base 118 to assist in generating the circular airflow in the interior area of the enclosure 102.
Referring to
As noted above, since floor space is very valuable within a manufacturing area, two or more enclosures 102, 104 can be stacked one on top of the other by using side plates 105. In some implementations, multiple enclosures are utilized when two or more robots operate within the same cell at an industrial facility.
Although certain embodiments and implementations of the disclosure have been specifically described herein, it will be apparent to those skilled in the art to which the disclosure pertains that variations and modifications of the various embodiments shown and described herein may be made without departing from the spirit and scope of the disclosure. Accordingly, it is intended that the disclosure be limited only to the extent required by the appended claims and the applicable rules of law.
The present application claims priority to U.S. Provisional Patent Application No. 63/357,200, filed Jun. 30, 2022, the entirety of which is hereby incorporated by reference.
Number | Date | Country | |
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63357200 | Jun 2022 | US |