Heavy machinery implements or attachments allow for application versatility by utilizing the hydraulic and mechanical forces generated by the heavy machine to which they are attached. Some machines, such as a skid steer, tractor or excavator, are designed to utilize a variety interchangeable implements through standardized attachment features, e.g. a three point hookup or a universal attachment system mounted to a hydraulically actuated system, e.g. a front loader. Frequently implements are designed to fulfill specific requirements and particular duties. Implements can constitute a significant investment on the part of the owner, but this cost is acceptable due to the enhanced productivity that the implement provides. Implements include, for example, tree shears and jaws for grasping objects such as rocks.
Generally, the present disclosure relates to jaw-type devices designed to be utilized by heavy equipment, such as tractors, front-loader machines, skid steers, mini track loaders, forklifts, etc., to grasp, cut, move, lift or otherwise manipulate a variety of objects, such as trees, rocks, hay bales, paper bales, potted plants, etc.
The jaw-type devices described herein are configured to be removably attached to a piece of heavy equipment, e.g. through a standard mount such as a three-point hookup, a front-loader mount or a universal quick attachment plate such as are typically provided on heavy equipment, such as a skid steer, and to receive a variety of interchangeable attachments.
The term “heavy equipment,” as used herein, refers to heavy duty vehicles that include a power train and hydraulic machinery, and includes, but is not limited to, bulldozers, excavators, track loaders, skidders, telehandlers, tractors, skid steers, graders, harvesters, and the like.
In one aspect, the invention features a device that includes (a) a mount configured to be removably attached to a piece of heavy equipment, (b) a jaw comprising a pair of jaw elements, at least one of which is pivotally attached to the mount, and (c) a force applying element. Each jaw element includes a plate element disposed in the horizontal plane, each of these plate elements having a plurality of attachment points configured to allow an attachment to be removably attached to the plate element. The force applying element is configured to, when actuated, pivot at least one of the jaw elements so as to bring opposing surfaces of the plate elements closer together.
Some implementations include one or more of the following features.
The attachments to be removably attached to the plate elements may be, for example, selected from the group consisting of shearing blades, carriers, crushers, wood splitters, snow plows, sod-unrollers, grapplers, digging tools, ditching tools, and grading tools. In general, the attachments may be, for example, landscape tools, construction tools, excavation tools, or industrial tools. In some cases, the plurality of attachment points may be in the form of multiple holes extending through the plate element in the horizontal plane along at least a portion of the length of the plate element.
The plate elements preferably include a plurality of teeth, which may be disposed along part of or the entire length of an inner edge of each plate element. In some cases, at least some of the teeth are radiused. The teeth may be configured to allow a portion of the plate elements to completely fit together when the jaw is closed. In some cases, the teeth are configured to allow a second portion of the plate elements to remain spaced from each other when the jaw is closed, defining an open area between the plate elements. This may be accomplished, for example, by having relatively larger teeth where the plate elements close together and smaller teeth where they remain spaced apart.
In some implementations, each jaw element comprises a support element on which one of the plate elements is mounted. The support elements may each include a vertical member having a plurality of holes configured to serve as vertical attachment points for the attachment, e.g., if the attachment is heavy or will cantilever out beyond the front of the jaw and thus require further support.
A universal attachment device can in some cases be attached to the plate element, e.g., to allow for quick mounting and removal of the attachment. The universal attachment device may be, for example, a splined collar. The universal attachment device is preferably fixedly mounted to the plate element by welding. Attachment points, e.g., in the form of holes, can be used to add, e.g., by bolting, further device enhancements.
The jaw elements may be configured to allow for an open area between the jaw elements near the jaw pivot point(s) when the jaw elements are closed. This may be accomplished, for example, by shaping the plate elements to provide this open area.
The jaw may be configured so that no aspect of the jaw extends below a lower surface of the plate elements.
In another aspect, the invention features a plate element, for use in a jaw, the plate element including any one or more of the features described above, in any combination.
In a further aspect, the invention features a device that includes (a) a mount configured to be removably attached to a piece of heavy equipment, (b) a jaw comprising a pair of jaw elements, at least one of which is pivotally attached to the mount, each jaw element including a plate element disposed in the horizontal plane, and (c) a force applying element, configured to, when actuated, pivot at least one of the jaw elements so as to bring opposing surfaces of the plate elements closer together. In this aspect, the plate elements are configured so that when the plate elements close together the plate elements define an open area adjacent to the mount.
Some implementations of this aspect include one or more of the following features. Implementations may also include any of the features discussed above.
The open area may be generally oval. The plate elements may include teeth that extend into the open area. The plate elements may include generally triangular protrusions that extend horizontally into the open area to define an end of the open area proximal to the mount. The triangular protrusions are dimensioned to eject, i.e., clear material from the open area of the jaw as the jaw members open.
In another aspect, the invention features a device comprising: a mount configured to be removably attached to a piece of heavy equipment, a jaw comprising a pair of jaw elements, at least one of which is pivotally attached to the mount. Each jaw element includes a truss structure comprising of an upper support member and a lower support member connected by multiple truss webs, and a force applying element, configured to, when actuated, pivot at least one of the jaw elements so as to bring opposing surfaces of the jaw elements closer together.
The invention also features methods of using the devices described herein. For example, in one aspect the invention features a method that includes (a) shearing the trunk of a first tree using a jaw that is mounted on a piece of heavy equipment, the jaw having opposed shearing blades that are mounted on jaw elements, the jaw elements and shearing blades being configured so that when the shearing blades close together an open area is defined at the end of the jaw proximal to the piece of heavy equipment; (b) allowing the trunk of the first sheared tree to move into the opening; and (c) shearing a trunk of a second tree while the first sheared tree remains in the opening.
These steps may be repeated to “accumulate” several trees within the open area of the jaw, to improve productivity when a number of trees are being harvested at once. Thus, for example, the method can further include allowing the trunk of the second sheared tree to move into the open area adjacent the trunk of the first sheared tree, and in some cases shearing the trunk of a third tree while the first and second sheared trees remain in the opening. The method may further include using the jaw to move the first and second sheared trees, and the third sheared tree if present, to a desired location. In addition, similar actions can be used for shearing and manipulating shrubs, bushes, woody debris and other plant types.
Preferred jaw devices include a frame constructed to allow the device to be mounted on a piece of heavy equipment, and a jaw that includes two jaw elements, each of which is strengthened by a truss support structure. The jaw elements are pivotally attached to the frame, and include two plate elements having attachment points (e.g., holes) for mounting either individual attachments or a universal attachment device configured to receive the attachments. Two force applying elements, e.g., hydraulic cylinders, are mounted on the frame and attached to the distal ends of the jaws, so as to apply a force to open and close the jaws.
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Force applying elements 22, e.g., hydraulic cylinders, are attached to a pair of frame cylinder mounts 16 and to each of the jaw elements 21, and are configured to apply a force generally in the horizontal plane to pivot the jaw elements about pivot pins 19, moving the jaw elements between an open position (
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As mentioned above, the device may include universal attachment device 46, shown as a receiver, that has a splined inner diameter 100 (
The universal attachment device 46 (
In some cases, the jaw may be used to grasp materials, with or without an attachment in place. This grasping is assisted by the structure of the plate elements, which includes a plurality of radiused teeth 34 that are sequentially positioned in the horizontal plane along the medial edge of the plate element 30. The radiused shape of these teeth allows them to grasp even relatively delicate objects (e.g., pumpkins) without damage, and prevents build-up of debris between the teeth.
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The plate elements 30 are also configured to allow material in the open area 50 to be easily cleared when the jaws are opened. Ejector/accumulator triangle members 54 are located at the proximal end of the jaw element, nearest the frame 8, and are shaped to push material forward as the jaw opens.
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As mentioned previously, the splined shaft-receiver interface allows the attachments to be positioned in a plurality of orientations increasing the versatility of the attachment.
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Preferably, the dimensions of the device would be proportional to the size, horsepower and weight of the heavy machinery utilizing it. This would allow the device components to be appropriately scaled to fully accommodate the abilities of the heavy machinery while not being over burdened which could lead to premature device failure. For example, a device scaled to work with a small skid steer weighing 1200 lbs. would feature smaller components than a device scaled to work with a large front loader weighing 50,000 lbs. As an example, devices of various sizes would in some embodiments have the following dimensions (measured as discussed above):
A number of embodiments have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure.
For example, alternative embodiments of the device feature only one articulating jaw element while the opposing jaw element is fixed in a predetermined position. This configuration would be more economical while still maintaining much of the functionality of the preferred configuration.
In addition, the open throat feature could be eliminated so that the radiused triangular protrusions extend from the distal to proximal aspect of the jaw elements without dimensional changes.
In some embodiments, a guard is provided on the top member of the frame. The guard extends vertically to protect the heavy machine and the operator of the machine to which the device is attached from accidental debris impact during use. The guard would be designed to resist deformation or destruction upon impact. Such guards are well known in the heavy equipment art.
An alternative embodiment could feature a rotation option that would allow the jaw to rotate, as a unit, 360° about the long axis of the jaw via an interface between the machine mount and the jaw. This feature could be hydraulically or manually actuated.
In some embodiments the splined, locking receivers may be disposed on the attachments and the complementary splined shafts may be disposed on the jaw elements.
Some embodiments may feature a splined receiver configured with multiple locking devices. The locking devices could be automatically, hydraulically or manually engaged.
In some embodiments, the attachment receiver could be designed to be bolted on to the device utilizing the attachment holes mentioned previously.
In an alternative embodiment, the jaw could be configured to directly attach to the heavy machinery, e.g. by pinning. This method of attachment would not allow for the rapid implement interchanging that is possible with a universal quick attachment typically used on a skid steer, but would be acceptable in some applications.
Accordingly, other embodiments are within the scope of the following claims.