USRE46661E1 - Anchor for center irrigation pivot - Google Patents

Anchor for center irrigation pivot Download PDF

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Publication number
USRE46661E1
USRE46661E1 US15/176,378 US201615176378A USRE46661E US RE46661 E1 USRE46661 E1 US RE46661E1 US 201615176378 A US201615176378 A US 201615176378A US RE46661 E USRE46661 E US RE46661E
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shaft
longitudinal axis
support base
irrigation system
anchoring
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US15/176,378
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Michael J. Sorensen
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    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G25/00Watering gardens, fields, sports grounds or the like
    • A01G25/09Watering arrangements making use of movable installations on wheels or the like
    • A01G25/092Watering arrangements making use of movable installations on wheels or the like movable around a pivot centre
    • AHUMAN NECESSITIES
    • A45HAND OR TRAVELLING ARTICLES
    • A45DHAIRDRESSING OR SHAVING EQUIPMENT; EQUIPMENT FOR COSMETICS OR COSMETIC TREATMENTS, e.g. FOR MANICURING OR PEDICURING
    • A45D2/00Hair-curling or hair-waving appliances ; Appliances for hair dressing treatment not otherwise provided for
    • AHUMAN NECESSITIES
    • A45HAND OR TRAVELLING ARTICLES
    • A45DHAIRDRESSING OR SHAVING EQUIPMENT; EQUIPMENT FOR COSMETICS OR COSMETIC TREATMENTS, e.g. FOR MANICURING OR PEDICURING
    • A45D1/00Curling-tongs, i.e. tongs for use when hot; Curling-irons, i.e. irons for use when hot; Accessories therefor
    • A45D1/02Curling-tongs, i.e. tongs for use when hot; Curling-irons, i.e. irons for use when hot; Accessories therefor with means for internal heating, e.g. by liquid fuel
    • A45D1/04Curling-tongs, i.e. tongs for use when hot; Curling-irons, i.e. irons for use when hot; Accessories therefor with means for internal heating, e.g. by liquid fuel by electricity
    • AHUMAN NECESSITIES
    • A45HAND OR TRAVELLING ARTICLES
    • A45DHAIRDRESSING OR SHAVING EQUIPMENT; EQUIPMENT FOR COSMETICS OR COSMETIC TREATMENTS, e.g. FOR MANICURING OR PEDICURING
    • A45D2/00Hair-curling or hair-waving appliances ; Appliances for hair dressing treatment not otherwise provided for
    • A45D2/001Hair straightening appliances
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60RVEHICLES, VEHICLE FITTINGS, OR VEHICLE PARTS, NOT OTHERWISE PROVIDED FOR
    • B60R19/00Wheel guards; Radiator guards, e.g. grilles; Obstruction removers; Fittings damping bouncing force in collisions
    • B60R19/02Bumpers, i.e. impact receiving or absorbing members for protecting vehicles or fending off blows from other vehicles or objects
    • B60R19/24Arrangements for mounting bumpers on vehicles
    • B60R19/26Arrangements for mounting bumpers on vehicles comprising yieldable mounting means
    • B60R19/34Arrangements for mounting bumpers on vehicles comprising yieldable mounting means destroyed upon impact, e.g. one-shot type
    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01FADDITIONAL WORK, SUCH AS EQUIPPING ROADS OR THE CONSTRUCTION OF PLATFORMS, HELICOPTER LANDING STAGES, SIGNS, SNOW FENCES, OR THE LIKE
    • E01F15/00Safety arrangements for slowing, redirecting or stopping errant vehicles, e.g. guard posts or bollards; Arrangements for reducing damage to roadside structures due to vehicular impact
    • E01F15/14Safety arrangements for slowing, redirecting or stopping errant vehicles, e.g. guard posts or bollards; Arrangements for reducing damage to roadside structures due to vehicular impact specially adapted for local protection, e.g. for bridge piers, for traffic islands
    • E01F15/145Means for vehicle stopping using impact energy absorbers
    • E01F15/146Means for vehicle stopping using impact energy absorbers fixed arrangements
    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01FADDITIONAL WORK, SUCH AS EQUIPPING ROADS OR THE CONSTRUCTION OF PLATFORMS, HELICOPTER LANDING STAGES, SIGNS, SNOW FENCES, OR THE LIKE
    • E01F15/00Safety arrangements for slowing, redirecting or stopping errant vehicles, e.g. guard posts or bollards; Arrangements for reducing damage to roadside structures due to vehicular impact
    • E01F15/14Safety arrangements for slowing, redirecting or stopping errant vehicles, e.g. guard posts or bollards; Arrangements for reducing damage to roadside structures due to vehicular impact specially adapted for local protection, e.g. for bridge piers, for traffic islands
    • E01F15/145Means for vehicle stopping using impact energy absorbers
    • E01F15/148Means for vehicle stopping using impact energy absorbers mobile arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F7/00Vibration-dampers; Shock-absorbers
    • F16F7/12Vibration-dampers; Shock-absorbers using plastic deformation of members
    • F16F7/123Deformation involving a bending action, e.g. strap moving through multiple rollers, folding of members
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16FSPRINGS; SHOCK-ABSORBERS; MEANS FOR DAMPING VIBRATION
    • F16F7/00Vibration-dampers; Shock-absorbers
    • F16F7/12Vibration-dampers; Shock-absorbers using plastic deformation of members
    • F16F7/125Units with a telescopic-like action as one member moves into, or out of a second member
    • F16F7/126Units with a telescopic-like action as one member moves into, or out of a second member against the action of shear pins; one member having protuberances, e.g. dimples, ball bearings which cause the other member to deform
    • AHUMAN NECESSITIES
    • A45HAND OR TRAVELLING ARTICLES
    • A45DHAIRDRESSING OR SHAVING EQUIPMENT; EQUIPMENT FOR COSMETICS OR COSMETIC TREATMENTS, e.g. FOR MANICURING OR PEDICURING
    • A45D1/00Curling-tongs, i.e. tongs for use when hot; Curling-irons, i.e. irons for use when hot; Accessories therefor
    • A45D2001/008Curling-tongs, i.e. tongs for use when hot; Curling-irons, i.e. irons for use when hot; Accessories therefor with vapor generation, e.g. steam
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60RVEHICLES, VEHICLE FITTINGS, OR VEHICLE PARTS, NOT OTHERWISE PROVIDED FOR
    • B60R19/00Wheel guards; Radiator guards, e.g. grilles; Obstruction removers; Fittings damping bouncing force in collisions
    • B60R2019/005Crash attenuators, i.e. means added to highway service vehicles for softening high speed impacts

Definitions

  • the present disclosure generally relates to the field of irrigation, and more particularly to an anchor for a center irrigation pivot.
  • Center pivot irrigation systems are a very common way to keep crops irrigated and maintained. These systems have allowed for farming and food production in areas that would not be possible if not for these irrigation systems.
  • a center pivot irrigation system the system includes several sections of irrigation pipe joined together and braced by trusses. These are mounted on wheeled towers with sprinklers situated along its length. The machine then rotates in a circular motion and disperses water on the plants as it moves.
  • These systems are very costly and are a substantial investment for the farmers who use them.
  • One issue with these systems is the damage they can face as a result of high winds and severe weather. Because the systems are linked together, many times the entire system may be blown over and damaged in a wind storm.
  • a stabilization system is needed to secure and protect the system against wind and severe weather.
  • the present disclosure is directed to an anchoring unit designed for center pivot irrigation systems, holding the system in place and protecting it from being blown over in high winds.
  • FIG. 1 is an isometric view depicting a center pivot irrigation system utilizing anchoring units
  • FIG. 2 is a side elevation view depicting an anchoring unit positioned on a pivot axle
  • FIG. 3 is a partial cross-sectional view depicting the threaded sleeve and shaft housing of the anchoring unit of FIG. 2 ;
  • FIG. 4 is an exploded view depicting the anchoring unit of FIG. 2 ;
  • FIG. 5 is an illustration depicting the auger utilized by the anchoring unit.
  • FIG. 6 is a side elevation view depicting an alternative anchoring unit positioned on a pivot axle.
  • the anchoring unit 102 of the present disclosure may include a support base 104 that secures the anchoring unit 102 to a pivot axle 106 of the irrigation system.
  • a support base 104 may be configured as a clamp, a sleeve or the like.
  • the support base 104 forms a sleeve bolted around the axle 106 wherein the sleeve is approximately 36 inches ( ⁇ 0.9 meters) long in the direction along the axle 106 .
  • the anchoring unit 102 also includes an anchor motor 108 , such as a 480 volt motor, secured (e.g., bolted or welded) to the support base 104 .
  • the anchor motor 108 drives a gear box 110 that turns a shaft 112 .
  • the gear box 110 includes a gear mounted directly on the drive shaft of the motor 108 and engages a second gear having internal threads in order to turn the shaft 112 . It is understood, however, that such a gear box is merely exemplary, and a transmission device that uses one or more gears, chains, belts or the like to transmit rotation from the anchor motor 108 to the shaft 112 may be utilized without departing from the spirit and scope of the present disclosure.
  • the shaft 112 has a threaded portion that is partially enclosed within a threaded sleeve 114 and an anchor portion 116 for anchoring into the ground.
  • the threaded sleeve 114 is secured to the support base 104 and is utilized to hold the shaft 112 against rocking and high winds. This is done so not to put pressure directly on the gear box 110 .
  • the threaded portion of the shaft 112 is at least approximately 6 feet ( ⁇ 1.8 meters) long and approximately 1 inch ( ⁇ 0.025 meters) around.
  • the anchor portion 116 of the shaft includes an auger long enough to drill at least 3 feet ( ⁇ 0.9 meters) into the ground.
  • the diameter of the auger utilized may range between 10 inches ( ⁇ 0.2 meters) and 15 inches ( ⁇ 0.4 meters) to provide enough holding power. It is contemplated, however, that the lengths and sizes of the threaded portion of the shaft and the anchor portion of the shaft may vary base on various factors such as expected wind intensity and soil composition in the region, material cost, space availabilities or the like. It is also contemplated that the length of the threaded sleeve 114 may be configured based on such factors without departing from the spirit and scope of the present disclosure.
  • the anchoring unit 102 may further include a shaft housing 118 to at least partially enclose a section of the threaded portion of the shaft 112 .
  • the shaft housing 118 may be threaded on each end and may secure the shaft 112 in order to provide additional support to the shaft 112 and relieve some pressure on the gear box 110 . It is contemplated that the shaft housing 118 may be configured to be long enough to enclose the entire threaded portion of the shaft 112 even when the anchor portion 116 is not drilled into the ground. However, it is contemplated that the length of the shaft housing 118 may vary without departing from the spirit and scope of the present disclosure.
  • the anchoring unit 102 may further include a micro switch electronically coupled to the anchor motor 108 .
  • the micro switch may be configured to stop the shaft 112 from running all the way down or all the way up.
  • two tabs may be positioned on the shaft 112 to indicate two ends of the movable range supported by the shaft 112 . When either tabs come into contact with the switch, the tab will trip the micro switch to stop the anchor motor 108 to ensure that the shaft 112 will not be turned beyond the movable range (e.g., being twisted out of the sleeve).
  • an anchoring unit 102 is disposed at each tower 122 of the irrigation system.
  • the shaft, the anchor motor, and the housing of the anchoring unit 102 are all enclosed to be water tight.
  • Grease zerks are also in place in the gear box and the sleeves.
  • the anchoring unit 102 is positioned to avoid interfering with the operation of the axle motor (the motor located on each tower that is used to drive the irrigation system).
  • the power for the anchor motor 108 may be supplied from various sources.
  • the electric power delivered to the axle motor mounted at each tower can be shared with the anchor motor 108 located on that tower.
  • 480 volt anchor motors are used since typical center pivot irrigation systems are powered by 480 volt electricity. It is contemplated, however, that motors powered by different voltage levels may also be utilized. Additionally/alternatively, the anchor motors may be powered by batteries, solar power and/or other power sources without departing from the spirit and scope of the present disclosure.
  • the anchor motors 108 may be controlled utilizing a control panel in communication with the anchor motors.
  • This control panel may be located at the hub 120 of the center pivot irrigation system 100 , or it may be remotely located and may communicate with the anchor motors via various wired or wireless communication means. It is contemplated that the control panel may control the anchor motors 108 simultaneously, sequentially or individually. For instance, the control panel may activate all anchor motors 108 simultaneously to drill or reverse. Alternatively, the control panel may activate the anchor motors 108 sequentially one after another. In addition, the control panel may activate a particular anchor motor on a particular tower individually if needed.
  • the anchor motor 108 may rotate the shaft in one of two directions depending on the control signal it receives. For instance, upon receiving an anchoring command, the anchor motor 108 should rotate the shaft 112 in a first direction about the longitudinal axis of the shaft 112 and move the shaft 112 along its longitudinal axis towards an anchoring position, wherein at least a part of the anchor portion (auger) 116 of the shaft 112 is drilled into the ground.
  • the anchor motor 108 upon receiving a disengaging command, should rotate the shaft 112 in a second direction about the longitudinal axis of the shaft and move the shaft 112 along its longitudinal axis towards a disengaging position, wherein the anchor portion (auger) 116 of the shaft 112 is lifted off of the ground.
  • the shaft 112 of a particular anchoring unit 102 may be offset at an angle relative to the axle 106 which the anchoring unit 102 is mounted on.
  • the shaft is placed at a 45° angle relative to the axle.
  • the shaft is placed at a 135° angle relative to the axle.
  • the angle alternates between 45° and 135° for shafts mounted on adjacent axles, as shown in FIG. 1 .
  • the offset angles described above are exemplary and may vary without departing from the spirit and scope of the present disclosure.
  • the offset angles may range between 30-60° and 120-150°.
  • an anchoring unit 102 having a shaft 112 that is generally perpendicular to the axle 106 may also be utilized.
  • the anchoring unit 102 may include an optional sensor configured for measuring resistance encountered when drilling into the ground. The measured resistance may be utilized to help determining whether the auger has reached sufficient depth. For instance, as illustrated in FIG. 5 , suppose the ground underneath the irrigation system includes a mud or sand layer 124 on top of a solid soil layer 126 , the auger 116 may encounter more resistance as it drills into the solid soil layer 126 . By detecting the changes in resistance, the anchoring unit 102 may determine whether ideal depth has been reached and/or whether to continue drilling. Ideally, drilling at least 5 feet of the auger into the solid soil layer 126 is preferable.
  • an operator may override the decisions made by the anchoring unit 102 .
  • the operator may control one or more anchoring units 102 manually utilizing the control panel as previously described.
  • the anchoring unit 102 may also be configured to drill until either the shaft 112 is turned all the way down or the anchor motor 108 can no longer turn the shaft 112 (e.g., auger stopped by a rock). It is understood that the different modes of operation and drilling depth requirements described above are exemplary, and they may vary without departing from the spirit and scope of the present disclosure.
  • the anchoring unit 102 is not required to be permanently secured to the axle 106 .
  • the support base 104 may be configured as a clamp, a sleeve or the like to allow the anchoring unit 102 to be removable.
  • the support base 104 may include a lockable, quick-release device that can be used to secured and lock the anchoring unit 102 to the axle 106 to prevent theft, and also allow the anchoring unit 102 to be released and removed from the axle 106 if the operator so desires.
  • the anchoring unit 102 may be configured as a built-in component of the support frame for a tower.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Architecture (AREA)
  • Civil Engineering (AREA)
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Abstract

An anchoring apparatus for an irrigation system is disclosed. The anchoring apparatus includes a support base for securing to an axle of a support tower of the irrigation system. A threaded sleeve is secured to the support base and holds a shaft. The shaft has a threaded portion and an anchor portion. A motor secured to the support base is configured to rotate the shaft in a first direction about a longitudinal axis of the shaft to move the shaft along the longitudinal axis towards an anchoring position to secure and protect the system against wind and severe weather. The motor is also configured to rotate the shaft in a second direction about the longitudinal axis of the shaft to move the shaft along the longitudinal axis towards a disengaging position to lift the anchor portion of the shaft off of the ground.

Description

CROSS REFERENCE TO RELATED APPLICATIONS
The present application claims the benefit under 35 U.S.C. §119 of U.S. Provisional Application No. 61/728,434, filed on Nov. 20, 2012. Said U.S. Provisional Patent Application No. 61/728,434 is hereby incorporated by reference in its entirety.
TECHNICAL FIELD
The present disclosure generally relates to the field of irrigation, and more particularly to an anchor for a center irrigation pivot.
BACKGROUND
Center pivot irrigation systems are a very common way to keep crops irrigated and maintained. These systems have allowed for farming and food production in areas that would not be possible if not for these irrigation systems. In a center pivot irrigation system, the system includes several sections of irrigation pipe joined together and braced by trusses. These are mounted on wheeled towers with sprinklers situated along its length. The machine then rotates in a circular motion and disperses water on the plants as it moves. These systems are very costly and are a substantial investment for the farmers who use them. One issue with these systems is the damage they can face as a result of high winds and severe weather. Because the systems are linked together, many times the entire system may be blown over and damaged in a wind storm.
SUMMARY
In order to prevent damage to expensive center pivot irrigation systems, a stabilization system is needed to secure and protect the system against wind and severe weather. The present disclosure is directed to an anchoring unit designed for center pivot irrigation systems, holding the system in place and protecting it from being blown over in high winds.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not necessarily restrictive of the present disclosure. The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate subject matter of the disclosure. Together, the descriptions and the drawings serve to explain the principles of the disclosure.
BRIEF DESCRIPTION OF THE DRAWINGS
The numerous advantages of the present invention may be better understood by those skilled in the art by reference to the accompanying figures in which:
FIG. 1 is an isometric view depicting a center pivot irrigation system utilizing anchoring units;
FIG. 2 is a side elevation view depicting an anchoring unit positioned on a pivot axle;
FIG. 3 is a partial cross-sectional view depicting the threaded sleeve and shaft housing of the anchoring unit of FIG. 2;
FIG. 4 is an exploded view depicting the anchoring unit of FIG. 2;
FIG. 5 is an illustration depicting the auger utilized by the anchoring unit; and
FIG. 6 is a side elevation view depicting an alternative anchoring unit positioned on a pivot axle.
DETAILED DESCRIPTION
Reference will now be made in detail to the subject matter disclosed, which is illustrated in the accompanying drawings.
Referring to FIGS. 1-6, the present disclosure is directed to securing a central pivot irrigation system 100 in place during events of high wind using one or more anchoring units 102. The anchoring unit 102 of the present disclosure may include a support base 104 that secures the anchoring unit 102 to a pivot axle 106 of the irrigation system. Such a support base 104 may be configured as a clamp, a sleeve or the like. In one embodiment, the support base 104 forms a sleeve bolted around the axle 106 wherein the sleeve is approximately 36 inches (˜0.9 meters) long in the direction along the axle 106.
The anchoring unit 102 also includes an anchor motor 108, such as a 480 volt motor, secured (e.g., bolted or welded) to the support base 104. The anchor motor 108 drives a gear box 110 that turns a shaft 112. In one embodiment, the gear box 110 includes a gear mounted directly on the drive shaft of the motor 108 and engages a second gear having internal threads in order to turn the shaft 112. It is understood, however, that such a gear box is merely exemplary, and a transmission device that uses one or more gears, chains, belts or the like to transmit rotation from the anchor motor 108 to the shaft 112 may be utilized without departing from the spirit and scope of the present disclosure.
As shown in the figures, the shaft 112 has a threaded portion that is partially enclosed within a threaded sleeve 114 and an anchor portion 116 for anchoring into the ground. The threaded sleeve 114 is secured to the support base 104 and is utilized to hold the shaft 112 against rocking and high winds. This is done so not to put pressure directly on the gear box 110.
In one embodiment, the threaded portion of the shaft 112 is at least approximately 6 feet (˜1.8 meters) long and approximately 1 inch (˜0.025 meters) around. The anchor portion 116 of the shaft includes an auger long enough to drill at least 3 feet (˜0.9 meters) into the ground. Furthermore, the diameter of the auger utilized may range between 10 inches (˜0.2 meters) and 15 inches (˜0.4 meters) to provide enough holding power. It is contemplated, however, that the lengths and sizes of the threaded portion of the shaft and the anchor portion of the shaft may vary base on various factors such as expected wind intensity and soil composition in the region, material cost, space availabilities or the like. It is also contemplated that the length of the threaded sleeve 114 may be configured based on such factors without departing from the spirit and scope of the present disclosure.
The anchoring unit 102 may further include a shaft housing 118 to at least partially enclose a section of the threaded portion of the shaft 112. The shaft housing 118 may be threaded on each end and may secure the shaft 112 in order to provide additional support to the shaft 112 and relieve some pressure on the gear box 110. It is contemplated that the shaft housing 118 may be configured to be long enough to enclose the entire threaded portion of the shaft 112 even when the anchor portion 116 is not drilled into the ground. However, it is contemplated that the length of the shaft housing 118 may vary without departing from the spirit and scope of the present disclosure.
It is also contemplated that the anchoring unit 102 may further include a micro switch electronically coupled to the anchor motor 108. The micro switch may be configured to stop the shaft 112 from running all the way down or all the way up. For example, two tabs may be positioned on the shaft 112 to indicate two ends of the movable range supported by the shaft 112. When either tabs come into contact with the switch, the tab will trip the micro switch to stop the anchor motor 108 to ensure that the shaft 112 will not be turned beyond the movable range (e.g., being twisted out of the sleeve).
In one embodiment, an anchoring unit 102 is disposed at each tower 122 of the irrigation system. The shaft, the anchor motor, and the housing of the anchoring unit 102 are all enclosed to be water tight. Grease zerks are also in place in the gear box and the sleeves. In addition, the anchoring unit 102 is positioned to avoid interfering with the operation of the axle motor (the motor located on each tower that is used to drive the irrigation system).
It is contemplated that the power for the anchor motor 108 may be supplied from various sources. For example, the electric power delivered to the axle motor mounted at each tower can be shared with the anchor motor 108 located on that tower. In one embodiment, 480 volt anchor motors are used since typical center pivot irrigation systems are powered by 480 volt electricity. It is contemplated, however, that motors powered by different voltage levels may also be utilized. Additionally/alternatively, the anchor motors may be powered by batteries, solar power and/or other power sources without departing from the spirit and scope of the present disclosure.
Furthermore, the anchor motors 108 may be controlled utilizing a control panel in communication with the anchor motors. This control panel may be located at the hub 120 of the center pivot irrigation system 100, or it may be remotely located and may communicate with the anchor motors via various wired or wireless communication means. It is contemplated that the control panel may control the anchor motors 108 simultaneously, sequentially or individually. For instance, the control panel may activate all anchor motors 108 simultaneously to drill or reverse. Alternatively, the control panel may activate the anchor motors 108 sequentially one after another. In addition, the control panel may activate a particular anchor motor on a particular tower individually if needed.
When an anchor motor 108 is activated, the anchor motor 108 may rotate the shaft in one of two directions depending on the control signal it receives. For instance, upon receiving an anchoring command, the anchor motor 108 should rotate the shaft 112 in a first direction about the longitudinal axis of the shaft 112 and move the shaft 112 along its longitudinal axis towards an anchoring position, wherein at least a part of the anchor portion (auger) 116 of the shaft 112 is drilled into the ground. On the other hand, upon receiving a disengaging command, the anchor motor 108 should rotate the shaft 112 in a second direction about the longitudinal axis of the shaft and move the shaft 112 along its longitudinal axis towards a disengaging position, wherein the anchor portion (auger) 116 of the shaft 112 is lifted off of the ground.
As shown in FIGS. 1-5, the shaft 112 of a particular anchoring unit 102 may be offset at an angle relative to the axle 106 which the anchoring unit 102 is mounted on. In one embodiment, the shaft is placed at a 45° angle relative to the axle. In an alternative embodiment, the shaft is placed at a 135° angle relative to the axle. In still an alternative embodiment, the angle alternates between 45° and 135° for shafts mounted on adjacent axles, as shown in FIG. 1. It is contemplated, however, that the offset angles described above are exemplary and may vary without departing from the spirit and scope of the present disclosure. For example, the offset angles may range between 30-60° and 120-150°. In another example as depicted in FIG. 6, an anchoring unit 102 having a shaft 112 that is generally perpendicular to the axle 106 may also be utilized.
It is further contemplated that the anchoring unit 102 may include an optional sensor configured for measuring resistance encountered when drilling into the ground. The measured resistance may be utilized to help determining whether the auger has reached sufficient depth. For instance, as illustrated in FIG. 5, suppose the ground underneath the irrigation system includes a mud or sand layer 124 on top of a solid soil layer 126, the auger 116 may encounter more resistance as it drills into the solid soil layer 126. By detecting the changes in resistance, the anchoring unit 102 may determine whether ideal depth has been reached and/or whether to continue drilling. Ideally, drilling at least 5 feet of the auger into the solid soil layer 126 is preferable.
It is contemplated that an operator may override the decisions made by the anchoring unit 102. The operator may control one or more anchoring units 102 manually utilizing the control panel as previously described. The anchoring unit 102 may also be configured to drill until either the shaft 112 is turned all the way down or the anchor motor 108 can no longer turn the shaft 112 (e.g., auger stopped by a rock). It is understood that the different modes of operation and drilling depth requirements described above are exemplary, and they may vary without departing from the spirit and scope of the present disclosure.
It is further contemplated that the anchoring unit 102 is not required to be permanently secured to the axle 106. As previously described, the support base 104 may be configured as a clamp, a sleeve or the like to allow the anchoring unit 102 to be removable. For instance, the support base 104 may include a lockable, quick-release device that can be used to secured and lock the anchoring unit 102 to the axle 106 to prevent theft, and also allow the anchoring unit 102 to be released and removed from the axle 106 if the operator so desires. Alternatively, the anchoring unit 102 may be configured as a built-in component of the support frame for a tower.
It is believed that the present disclosure and many of its attendant advantages will be understood by the foregoing description, and it will be apparent that various changes may be made in the form, construction and arrangement of the components without departing from the disclosed subject matter or without sacrificing all of its material advantages. The form described is merely explanatory, and it is the intention of the following claims to encompass and include such changes.

Claims (20)

What is claimed is:
1. An irrigation system, comprising:
a plurality of towers supporting an irrigation pipe, each tower of the plurality of towers including a pair of drive wheels and an axle extending between the pair of drive wheels; and
a plurality ofat least one anchoring units positioned on at least a subset ofunit coupled to at least one tower of the plurality of towers, eachthe at least one anchoring unit comprising:
a support base secured to the axle of a tower;
a threaded sleeve secured to the support base;
a shaft having a threaded portion and an anchor portion, at least a portion of the threaded portion of the shaft being enclosed within the threaded sleeve; and
a motor secured to the support base, the motor configured for rotating the shaft in a first direction about a longitudinal axis of the shaft and moving the shaft along the longitudinal axis towards an anchoring position wherein at least a portion of the anchor portion of the shaft is drilled into a ground surface, the motor further configured for rotating the shaft in a second direction about the longitudinal axis of the shaft and moving the shaft along the longitudinal axis towards a disengaging position wherein the anchor portion of the shaft is lifted off of the ground surface.
2. The irrigation system of claim 1, wherein the support base forms a sleeve around the axle of the tower, the sleeve being at least approximately 36 inches long in a direction along the axle of the tower.
3. The irrigation system of claim 1, wherein the support base is removably secured to the axle of the tower.
4. The irrigation system of claim 1, wherein the threaded portion of the shaft is at least approximately 6 feet long and approximately 1 inch around.
5. The irrigation system of claim 1, wherein the anchor portion of the shaft includes an auger.
6. The irrigation system of claim 5, wherein a diameter of the auger ranges between approximately 10 inches and approximately 15 inches.
7. The irrigation system of claim 1, wherein each anchoring unit further comprises:
a shaft housing secured to the support base, the shaft housing configured for enclosing at least another portion of the threaded portion of the shaft.
8. The irrigation system of claim 1, wherein each anchoring unit further comprises:
a switch electronically coupled to the motor, the switch configured for preventing the shaft being rotated beyond a movable range.
9. The irrigation system of claim 1, wherein the longitudinal axis of the shaft is offset at an angle, and wherein the offset angle alternates for anchoring units positioned on adjacent towers.
10. The irrigation system of claim 1, wherein the longitudinal axis of the shaft is generally perpendicular to the axle of the tower.
11. An anchoring apparatus for an irrigation system, the anchoring apparatus comprising:
a support base adapted to be removably coupled for securing to an axle of a support tower of the irrigation system;
a threaded sleeve secured to the support base;
a shaft having a threaded portion and an anchor portion, at least a portion of the threaded portion of the shaft being enclosed within the threaded sleeve; and
a motor secured to the support base, the motor configured for rotating the shaft in a first direction about a longitudinal axis of the shaft and moving the shaft along the longitudinal axis towards an anchoring position, the motor further configured for rotating the shaft in a second direction about the longitudinal axis of the shaft and moving the shaft along the longitudinal axis towards a disengaging position, wherein the support base defines a sleeve of at least approximately 36 inches long.
12. The anchoring apparatus of claim 11, wherein the threaded portion of the shaft is at least approximately 6 feet long and approximately 1 inch around.
13. The anchoring apparatus of claim 11, wherein the anchor portion of the shaft includes an auger.
14. The anchoring apparatus of claim 13, wherein a diameter of the auger ranges between approximately 10 inches and approximately 15 inches.
15. The anchoring apparatus of claim 11, wherein further comprising: a shaft housing secured to the support base, the shaft housing configured for enclosing at least another portion of the threaded portion of the shaft.
16. The anchoring apparatus of claim 11, further comprising: a switch electronically coupled to the motor, the switch configured for preventing the shaft being rotated beyond a movable range.
17. The anchoring apparatus of claim 11, wherein the longitudinal axis of the shaft is offset at an angle and is not perpendicular to the axle of the tower.
18. The anchoring apparatus of claim 11, wherein the longitudinal axis of the shaft is generally perpendicular to the axle of the tower.
19. An anchoring apparatus for an irrigation system, the anchoring apparatus comprising:
a support base adapted to be removably coupled for securing to an axle of a tower of the irrigation system, the support base defining a sleeve;
a threaded sleeve secured to the support base;
a shaft having a threaded portion and an anchor portion, at least a portion of the threaded portion of the shaft being enclosed within the threaded sleeve, the anchor portion of the shaft including an auger;
a motor secured to the support base, the motor configured for rotating the shaft in a first direction about a longitudinal axis of the shaft and moving the shaft along the longitudinal axis towards an anchoring position wherein at least a portion of the anchor portion of the shaft is drilled into a ground surface, the motor further configured for rotating the shaft in a second direction about the longitudinal axis of the shaft and moving the shaft along the longitudinal axis towards a disengaging position wherein the anchor portion of the shaft is lifted off of the ground surface; and
a switch electronically coupled to the motor, the switch configured for preventing the shaft being rotated beyond a movable range.
20. The anchoring apparatus of claim 19, wherein the support base further
includes a lockable, quick-release device configured for attachment to the axle of the irrigation system.
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US10021841B2 (en) * 2015-08-28 2018-07-17 Lindsay Corporation Local and integrated remote control system and method for retrofitting existing electric center irrigation pivots
US9974246B2 (en) * 2015-09-01 2018-05-22 Polaris Products LLC Anchoring device for self-propelled irrigation system
US10165742B2 (en) 2016-09-16 2019-01-01 Mark Binder Center pivot irrigation system
US11326867B1 (en) * 2017-11-07 2022-05-10 Orbit Irrigation Products, Llc Systems and methods for identifying misaligned wheeled irrigation towers
MX2022002892A (en) * 2019-09-12 2022-04-06 Valmont Industries System and method for analysis of current and voltage levels within a center pivot irrigation system.
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