The devices, systems, and methods described herein relate generally to rotation of objects. More particularly, the devices, systems, and methods described herein relate to winching.
In operating a winch, fast extension and fast retraction of rope from the drum is desirable. Gearboxes are utilized to this end, with low gears, designed for pulling heavy loads, resulting in slow line speeds, and high gears, designed for low to no load, resulting in high line speeds. To achieve faster line speeds, further gearboxes could be added, but this solution increases the size of the winch. Devices, systems, and methods for achieving faster line speeds without increasing the size of the winch would be beneficial.
Devices, systems, and methods for varying rotational speeds are disclosed. A battery pack has a plurality of batteries and a switch. The battery pack has an overall voltage. The switch varies the overall voltage in discrete steps by combining the plurality of batteries in series, in parallel, or in a combination thereof. A motor drives a shaft at a rotational speed. The motor is powered by the battery pack. The rotational speed varies proportionally with the overall voltage.
The shaft may drive rotation of planetary gearsets. The planetary gearsets may drive rotation of a drum. The drum may be a spool for a winching line. The drum may rotate at a first rotational speed while the winching line is under a load due to a first overall voltage. The drum may rotate at a second rotational speed while the winching line is under substantially no load due to a second overall voltage. The second rotational speed may be greater than the first rotational speed.
A controller may control the switch. The battery pack may include a voltmeter, an amp meter, or a combination thereof. These may send signals to the controller regarding the voltage and current of the battery pack.
The switch may be a bipolar transistor, a power diode, a MOSFET, an IGBT, an SCR, a TRIAC, a GTO, a relay, or a combination thereof. The plurality of batteries may be rechargeable batteries.
In order that the advantages of the described devices, systems, and methods will be readily understood, a more particular description of the described devices, systems, and methods briefly described above will be rendered by reference to specific embodiments illustrated in the appended drawings. Understanding that these drawings depict only typical embodiments of the described devices, systems, and methods and are not therefore to be considered limiting of its scope, the devices, systems, and methods will be described and explained with additional specificity and detail through use of the accompanying drawings, in which:
It will be readily understood that the components of the described devices, systems, and methods, as generally described and illustrated in the Figures herein, could be arranged and designed in a wide variety of different configurations. Thus, the following more detailed description of the embodiments of the described devices, systems, and methods, as represented in the Figures, is not intended to limit the scope of the described devices, systems, and methods, as claimed, but is merely representative of certain examples of presently contemplated embodiments in accordance with the described devices, systems, and methods.
In operating a winch, fast extension and fast retraction of rope from the drum is desirable. Gearboxes are utilized to this end, with low gears, designed for pulling heavy loads, resulting in slow line speeds, and high gears, designed for low to no load, resulting in high line speeds. To achieve faster line speeds, further gearboxes could be added, but this solution increases the size of the winch. The devices, systems, and methods disclosed herein provide faster line speeds without increasing the size of the winch. The power supply for the motor in the winch is a battery pack. By combining the batteries in series, a higher voltage is obtained than combining the batteries in parallel, or a combination of parallel and series. In the series configuration, the overall voltage is higher and the motor runs faster than in parallel or any combination of parallel and series. So, for fast line speeds, the batteries can be switched to series and run faster, while for heavy loads, the batteries can be used in parallel. The switching can be done electronically, meaning the added equipment to the winch to make this possible is negligible. Therefore, the winch is able to run faster without increasing size.
The term winching line is understood herein to refer to any rope, line, cable, or similar that may be used in a winch or other rotating devices. While winches are used as the primary example in this application, it should be understood that other motor operated systems can benefit from the devices, systems, and methods disclosed herein. Any motor driving a shaft run by batteries can utilize this switching to obtain discrete steps in voltage, leading to faster or slower rotational speeds with negligible equipment needs.
Referring now to the Figures,
In the present example, battery pack 106 may have two arrangements, each the result of a discrete voltage step. These arrangements are shown in
Referring to
Referring to
Referring to
In some embodiments, a controller controls the switch. The battery pack may include a voltmeter, an amp meter, or a combination thereof, which may send signals to the controller regarding the voltage and current of the battery pack.
In some embodiments, the switch may include a bipolar transistor, a power diode, a MOSFET, an IGBT, an SCR, a TRIAC, a GTO, a relay, or a combination thereof.
In some embodiments, the plurality of batteries may be rechargeable batteries.
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Number | Date | Country | |
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20190177135 A1 | Jun 2019 | US |