This invention relates to slew drives and more specifically to a slew drive with integrated sensors and transducers.
Slew drives are mechanical actuators which take input motion from an input gear or worm and rotates, generally at low speeds, an output gear of larger size in order to accomplish an intended continuous or partial radial motion. For example, a slew drive can be used in a single axis solar tracker which is a device that holds PV panels (panels of photovoltaic sensors) and rotates the panels from east to west throughout the day to increase the output of electrical energy from the panels and reduce cosine loss.
Slew drives are often used in conjunction with different types of sensors for various applications. These sensors may include but are not limited to thermocouples, absolute position sensors, limit switches, accelerometers (for position and speed), communication sensors (wifi, zigbee, etc.), and solenoids (for torque/load routing). In general, prior art slew drives were manufactured as purely mechanical systems and any sensors are added after production. The addition of sensors after manufacture requires much precise work which can result in damage and wear or additional cost/complexity, since in many instances the original mechanical system must be disassembled for the sensors to be properly positioned.
It would be highly advantageous, therefore, to remedy this and other deficiencies inherent in the prior art.
Accordingly, it is an object of the present invention to provide a new and improved slew drive with integrated sensors and transducers.
It is another object of the present invention to provide a new and improved slew drive with integrated sensors and transducers that is inexpensive, and easy and efficient to operate.
It is another object of the present invention to provide a new and improved solar tracker slew drive with integrated sensors and transducers that is simpler to incorporate into a solar panel assembly.
It is another object of the present invention to provide a new and improved solar tracker slew drive with integrated sensors and transducers that is able to withstand higher external forces without changing the structure.
Briefly to achieve the desired objects and advantages of the instant invention a single axis slew driving system with integrated sensors and transducers is provided. The system includes a slew drive having a housing with a central portion defining a cavity, a rotor assembly rotatably mounted within the cavity and supporting an output axle, the rotor assembly including a gear plate affixed to the axle and including an arcuate set of gear teeth positioned along a periphery thereof, a driving gear rotatably mounted in the housing so as to mesh with the arcuate set of gear teeth on the gear plate in the cavity in the housing, and a drive motor mounted on the housing and attached to the driving gear for rotation of the driving gear, whereby the rotor assembly including the gear plate and attached output axle are rotated in response to rotation of the drive motor. The system further includes at least one of: a thermocouple embedded in the housing so as to extend within the cavity to provide an indication of the temperature adjacent the driving gear chamber at contact points of the driving gear and the arcuate set of gear teeth on the gear plate and external monitoring apparatus; an absolute position sensing system including a movement tracking device mounted in the housing and extending into the cavity of the housing and into communication with an outer surface of the rotatably positioned rotor assembly; limit switches mounted on the outer periphery of the housing, a first of the limit switches including an activating plunger with an end positioned to be depressed when the driving gear drives the gear plate clockwise to a first rotary limit and a second of the limit switches including an activating plunger with an end positioned to be depressed when the driving gear drives the gear plate counterclockwise to a second rotary limit; an integrated accelerometer and communication assembly including an accelerometer coupled to a communications protocol, the assembly integrated directly onto one of the output axle or the gear plate directly measuring rotary movement and communicating the measurements to an external control system; and an integrated torque routing solenoid mounted on an outer periphery of the housing, the solenoid including an armature having an extended position and a withdrawn position, and in the extended position the armature extending through an opening in the housing and into an opening in the gear plate.
The desired objects and advantages of the instant invention are further achieved in a preferred embodiment of a single axis driving system including a housing with a central portion defining a cavity with a rotor assembly rotatably mounted within the cavity and supporting an output axle, the rotor assembly including a gear plate affixed to the axle and including an arcuate set of gear teeth positioned along a periphery thereof. The system also includes a driving gear rotatably mounted in the housing so as to mesh with the arcuate set of gear teeth on the gear plate in the cavity in the housing and a drive motor mounted on the housing and attached to the driving gear for rotation of the driving gear, whereby the rotor assembly including the gear plate and attached output axle are rotated in response to rotation of the drive motor. The system further includes at least one of: a thermocouple embedded in the housing so as to extend within the cavity to provide an indication of the temperature adjacent the driving gear chamber at contact points of the driving gear and the arcuate set of gear teeth on the gear plate and external monitoring apparatus; an absolute position sensing system including a movement tracking device mounted in the housing and extending into the cavity of the housing and into communication with an outer surface of the rotatably positioned rotor assembly; limit switches mounted on the outer periphery of the housing, a first of the limit switches including an activating plunger with an end positioned to be depressed when the driving gear drives the gear plate clockwise to a first rotary limit and a second of the limit switches including an activating plunger with an end positioned to be depressed when the driving gear drives the gear plate counterclockwise to a second rotary limit; an integrated accelerometer and communication assembly including an accelerometer coupled to a communications protocol, the assembly integrated directly onto one of the output axle or the gear plate directly measuring rotary movement and communicating the measurements to an external control system; and an integrated torque routing solenoid mounted on an outer periphery of the housing, the solenoid including an armature having an extended position and a withdrawn position, and in the extended position the armature extending through an opening in the housing and into an opening in the gear plate.
The desired objects and advantages of the instant invention are further achieved in a specific embodiment of a single axis driving system including a housing with a central portion defining a cavity, a rotor assembly rotatably mounted within the cavity and supporting an output axle, the rotor assembly including a gear plate affixed to the axle and including an arcuate set of gear teeth positioned along a periphery thereof, a worm gear rotatably mounted in a cylindrical cavity portion of the housing so as to mesh with the arcuate set of gear teeth on the gear plate in the cavity in the housing, and a drive motor mounted on the housing and attached to the worm gear for rotation of the worm gear, whereby the rotor assembly including the gear plate and attached output axle are rotated in response to rotation of the drive motor. The system further includes at least one of: a thermocouple embedded in the housing so as to extend within the cavity to provide an indication of the temperature adjacent the worm gear chamber at contact points of the worm gear and the arcuate set of gear teeth on the gear plate and external monitoring apparatus; an absolute position sensing system including a movement tracking device mounted in the housing and extending into the cavity of the housing and into communication with an outer surface of the rotatably positioned rotor assembly; limit switches mounted on the outer periphery of the housing, a first of the limit switches including an activating plunger with an end positioned to be depressed when the driving gear drives the gear plate clockwise to a first rotary limit and a second of the limit switches including an activating plunger with an end positioned to be depressed when the driving gear drives the gear plate counterclockwise to a second rotary limit; an integrated accelerometer and communication assembly including an accelerometer coupled to a communications protocol, the assembly integrated directly onto one of the output axle or the gear plate directly measuring rotary movement and communicating the measurements to an external control system; and an integrated torque routing solenoid mounted on an outer periphery of the housing, the solenoid including an armature having an extended position and a withdrawn position, and in the extended position the armature extending through an opening in the housing and into an opening in the gear plate.
Specific objects and advantages of the invention will become readily apparent to those skilled in the art from the following detailed description of a preferred embodiment thereof, taken in conjunction with the drawings in which:
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In addition to the slew drive described above, the present single axis slew driving system with integrated sensors and transducers includes one or more of a thermocouple, an absolute position sensing system, limit switches, integrated accelerometer and communication assemblies, and an integrated torque routing solenoid. Generally, the integrated sensors and transducers included will depend upon the specific application of the slew drive and the operating conditions. For example in the instance in which the slew drive is used to drive solar panels in a solar tracking system, all of the various additions might be included. Each of the additions is described in more detail below in conjunction with a specific embodiment of a slew drive.
A thermocouple 50 is embedded in worm chamber 48 so as to extend within the chamber and provide an indication of the temperature of grease within worm chamber 48 near the contact points of the worm and the gear teeth. An electrical line 52 extends from thermocouple 50 to an external monitoring station (not shown).
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Thus, the present invention discloses and provides a new and improved slew drive with integrated sensors and transducers. While there are many application for the present slew drive, a specific application of the slew drive is illustrated as a solar tracker slew drive that is inexpensive, and easy and efficient to operate. Thus, the present invention discloses and provides a new and improved solar tracker slew drive with integrated sensors and transducers that is inexpensive, and easy and efficient to operate. The new and improved solar tracker slew drive with integrated sensors and transducers is simpler to incorporate into a solar panel assembly and is able to withstand higher external forces without substantially changing the structure.
Various changes and modifications to the embodiments herein chosen for purposes of illustration will readily occur to those skilled in the art. To the extent that such modifications and variations do not depart from the spirit of the invention, they are intended to be included within the scope thereof which is assessed only by a fair interpretation of the following claims.
This application claims the benefit of U.S. Provisional Patent Application No. 62/518,301, filed 12 Jun. 2017.
Number | Date | Country | |
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62518301 | Jun 2017 | US |