System and method for a powered vertical axis hose reel
10974927 · 2021-04-13
Inventors
Cpc classification
B65H75/4478
PERFORMING OPERATIONS; TRANSPORTING
Y10T137/6932
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B65H2701/33
PERFORMING OPERATIONS; TRANSPORTING
Y10T137/6954
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
In accordance with the present invention, a system and method for a powered vertical axis hose reel is shown. In accordance with one aspect of the present invention, a powered hose reel is disclosed having a spool around which a hose may be coiled, in which the spool is on a vertical axis relative to the ground. In various embodiments, the powered hose reel includes a programmable controller for implementing a rewind protocol adapted to encourage the hose to fill from the bottom of the spool cup to the top.
Claims
1. A motorized reel for spooling linear material around a vertical axis, the motorized reel comprising: a base having a fluid inlet; a spool having an upper end, a lower end, and an arbor therebetween, the lower end being rotatably mounted to the base and having an axis of rotation generally perpendicular to the base, the spool configured to wind a linear material around the arbor as the spool rotates in a first direction and to unwind the linear material from around the arbor as the spool rotates in a second direction; a rotary union having a rotating portion coupled to the spool and a stationary portion secured to the based and in fluid communication with the fluid inlet; a cover rotatably mounted to the upper end of the spool, the cover substantially surrounding the spool and having an eyelet therein to allow the linear material to pass therethrough; a motor configured to interact with the spool to selectively rotate the spool in the first direction or in the second direction; one or more sensors configured to detect rotation of the cover; and control circuitry in communication with the motor, the control circuitry configured to receive at least one signal from a remote control device and output a first control signal to cause the motor to rotate the spool.
2. The motorized reel of claim 1, wherein, to wind the linear material, the control circuitry alternates between outputting the first control signal to cause the motor to rotate the spool in the first direction and outputting a second control signal to cause the motor to rotate the spool in the second direction.
3. The motorized reel of claim 1, wherein the control circuitry is configured to send at least one signal to the remote control device.
4. The motorized reel of claim 1 wherein the one or more sensors are configured to detect rotation of the cover relative to the spool.
5. The motorized reel of claim 1 wherein the one or more sensors are configured to detect rotation of the cover relative to the base.
6. The motorized reel of claim 1 and further comprising: at least one magnet coupled to the cover; and wherein the at least one of the one or more sensors is a Hall Effect sensor configured to detect rotation of the cover relative to the base.
7. An automated reel for spooling linear material around a vertical axis, the automated reel comprising: a base; a spool having a spool surface and being rotatably mounted to the base, the spool having an axis of rotation generally perpendicular to the base, the spool configured to wind a linear material around the spool surface as the spool rotates in a first direction and to unwind the linear material from around the spool surface as the spool rotates in a second direction; a motor configured to interact with the spool to selectively rotate the spool in the first direction or in the second direction; control circuitry in communication with the motor, the control circuitry configured to receive at least one signal from a remote control device and output one or more control signals to cause the motor to rotate the spool in the first direction or cause the motor to rotate the spool in the second direction; and wherein, in response to a first input to wind the linear material, the control circuitry alternates between causing the motor to rotate the spool in the first direction and causing the motor to rotate the spool in the second direction.
8. The automated reel of claim 7, wherein the control circuitry is configured to receive the first input from a user to begin winding the linear material.
9. The automated reel of claim 7, wherein the control circuitry is configured to detect a physical strike from a user as the first input.
10. The automated reel of claim 7, wherein the control circuitry is configured to output at least one signal to the remote control device.
11. The automated reel of claim 7, wherein the control circuitry is configured to detect when substantially all the linear material is wound around the spool.
12. The automated reel of claim 7, wherein the linear material is a woven jacket hose.
13. The automated reel of claim 7, wherein the spool is further configured to provide power assisted unwinding of the linear material.
14. The automated reel of claim 7 and further comprising a cover substantially surrounding the spool and having an eyelet therein to allow the linear material to pass therethrough.
15. The automated reel of claim 14 and further comprising one or more sensors configured to detect rotation of the cover relative to the base.
16. The automated reel of claim 14 and further comprising one or more sensors configured to detect rotation of the cover relative to the spool.
17. The automated reel of claim 16, wherein the control circuitry is configured to cause the motor to cease winding the linear material in response to a detection that the cover is not rotating relative to the spool.
18. The automated reel of claim 7, wherein the control circuitry is configured to obtain a motor signal indicative of a torque that is exerted upon the spool and not produced by the motor.
19. The automated reel of claim 7, wherein the control circuitry is configured to detect movement of the base and send a signal to cause the motor to rotate in the second direction to provide power assisted unwinding of the linear material.
20. A method of providing a motorized reel for spooling linear material, the method comprising: providing a spool having a vertical axis of rotation, the spool configured to rotate in a first direction to wind a linear material around the spool and rotate in a second direction to unwind the linear material from around the spool; providing a motor configured to interact with the spool to control a direction of rotation of the spool; providing a motor controller configured to receive an input from a remote control device to begin winding the linear material and, in response, outputting a first control signal to cause the motor to rotate the spool in the first direction a first distance to wind the linear material followed by a second control signal to cause the motor to rotate the spool in the second direction a second distance to loosen the linear material from around the spool; and wherein the first distance is greater than the second distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete understanding of the method and apparatus of the present invention may be obtained by reference to the following Detailed Description when taken in conjunction with the accompanying Drawings wherein:
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DETAILED DESCRIPTION
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(11) Referring now to
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(16) At step three, the motor reverses direction for a second distance, typically less than the first distance, such as, for example, between approximately 45 degrees to 90 degrees, to allow gravity to pull the coil of hose to the bottom of the cup of the spool. The hose reel 100 may include software having a built-in rewind protocol to build slack into the coils in order to maintain a clearance between the hose and internal surfaces of the hose reel 100 and/or to allow for hose expansion when the hose is pressurized. For example, in embodiments without a tracking eyelet, if the rewind is done at a continuous speed, the hose may tend to bunch up in one place of the spool. Tracking eyelets often course back and forth along the axis of rotation to distribute the hose on the spool evenly. However, tracking eyelet mechanisms are typically expensive and/or unreliable, and thus, may be optionally excluded in some embodiments. In some embodiments, to avoid bunching on rewind, the DC motor rewinds the hose onto the spool some number of turns or fractions of a turn, driven by the hose mechanical properties. In some embodiments, such as when winding a typical woven jacket hose, the spool may be rotated 720 degrees in one direction, and then rotated in a reverse direction for a number of turns or fractions of a turn, such as, for example, 360 degrees, allowing gravity to pull the coils of hose to the bottom of the cup of the vertical axis spool. At step four, the DC motor continues winding the spool in a counterclockwise direction. Steps two and three are repeated until the hose is wound around the spool. This process may be repeated, repeating the wind and unwind protocol, until all the hose is wound onto the spool. Unlike horizontal axis spools, which wind hoses in a side-by-side manner, the vertical axis of the hose reel 100 winds the hose around the spool from the bottom to the top by allowing gravity, not hose tension, to “stack” the coils on the bottom of the spool. In some embodiments, such stacking may provide expansion space on top of the coils for when the hose is pressured and expands. Depending on the stiffness and bend radius of a hose to be re-wound, a different rewind protocol may be utilized. Different spool geometry may also be required to be compatible with hoses with different mechanical properties. As will be readily apparent, the first distance and second distance can be varied to facilitate a speedy and efficient coiling of the hose. In some embodiments, the ratio of the first distance to the second distance may be varied as the hose is being wrapped around the spool arbor 20. In various embodiments, the control circuitry may automatically vary the rewind protocol depending on the type of hose being wound and/or unwound, the ambient temperature, and/or the strain on the motor or other information. In some embodiments, a user may input one or more characteristics of the hose, such as, for example, the brand, type, material, length, stiffness, etc., which the control circuitry may use to select and/or vary the rewind protocol. In other embodiments, the user may manually adjust the rewind protocol. In various embodiments, the onboard telemetries may also sense and respond to hose snags and/or when the rewind of a hose has been completed.
(17) In some embodiments, onboard sensors may monitor and send information, such as temperature and humidity information and/or volumetric flow data, to a remote location, such as to a smartphone via a smartphone app. In some embodiments, the hose reel 100 may be programmable and facilitate on/off control using, for example, the solenoid coupled to the rotary union. In other embodiments, the hose reel 100 may include a flow sensor to monitor and control the volumetric flow of fluid therethrough. In some embodiments, the hose reel 100 may include a freeze warning to alert a user to disconnect the hose or take other steps to prevent freezing and/or damage to the hose reel 100 and/or the hose wound therein. In other embodiments, the hose reel 100 may automatically allow a slow stream of water or other fluid to flow therethrough to prevent freezing and/or damage.
(18) U.S. Pat. Nos. 7,503,338; 7,350,736; 8,695,912; and 8,746,605, which are hereby incorporated by reference in their entirety, disclose various details of powered hose reels that may be incorporated into various embodiments of the present invention, such as, for example, remote controls for controlling hose operation and protocols for varying the rewind speed of the hose being rewound.
(19) Although various embodiments of the method and apparatus of the present invention have been illustrated in the accompanying Drawings and described in the foregoing Detailed Description, it will be understood that the invention is not limited to the embodiments disclosed, but is capable of numerous rearrangements, modifications, and substitutions without departing from the spirit and scope of the invention.