The present invention relates to materials handling vehicles, and more particularly, to chain slack detection in materials handling vehicles.
Many types of materials handling vehicles, such as forklift trucks, have been developed wherein material handling devices, typically forks, are elevated to extreme heights to store and retrieve materials at upper levels within a warehouse. Such high lift vehicles commonly use a variety of mast arrangements wherein the forks, and oftentimes also the operator of the vehicle, are elevated high above the floor of the warehouse to perform picking and/or storage operations. In a typical multi-stage mast construction, a movable carriage comprising forks is supported for vertical movement relative to at least one mast section by a chain, where a first end of the chain is attached to the movable carriage and a second end of the chain is anchored to a relatively stationary location. An actuating member includes a vertically movable element, such as the ram of a cylinder assembly, acting on a midsection of the chain, between the first and second ends, to tension the chain and cause the movable carriage to move upward, wherein a controlled tension is maintained on the chain during a downward actuation of the actuating member to lower the movable carriage.
During a typical materials handling vehicle operation, the vehicle is operated to position the movable carriage via horizontal as well as vertical movement. As a result of horizontal movement of the movable carriage toward shelving or a rack for storing products, the forks may be positioned in an overlapping relationship over a shelf or rack. If the movable carriage is then actuated vertically in downward movement, the forks may engage and become caught on the shelf or rack, causing the chain to become slack between the first and second chain ends as the actuating member continues the downward movement. Subsequently, horizontal movement of the movable carriage, moving the forks out of engagement with the shelf or rack could result in the movable carriage dropping or free-falling until chain tension is re-established.
In a known system for detecting chain slack, a compression spring is located at a chain anchor/tensioner for biasing the end of a lift chain relative to a switch. When a chain slack event occurs during a lowering operation, the compression spring pushes the chain anchor/tensioner, and the switch can detect this movement and send a signal to stop the lowering operation. This type of chain slack detection system and similar systems typically require additional hardware with associated expense for implementation.
In accordance with an aspect of the invention, a materials handling vehicle is provided having chain slack detection. The materials handling vehicle comprises a mast assembly, a load handling structure supported on the mast assembly, one or more operator controls, and a lifting structure having a chain structure for performing a lifting and lowering of the load handling structure relative to the mast assembly. The materials handling vehicle further comprises a height sensor for generating a height signal corresponding to vertical movement of the load handling structure relative to the mast assembly, and a vehicle control module for processing the height signal received from the height sensor and an operator control signal received from the one or more operator controls. The vehicle control module evaluates the height signal and the operator control signal and disables one or more vehicle functions if the height signal does not correspond to the operator control signal.
The one or more vehicle functions may include at least one of lowering movement of the load handling structure or vehicle travel movement.
The vehicle control module may disable the one or more vehicle functions if the operator control signal comprises a load handling structure lower signal, and the height signal comprises one of a lifting state signal, corresponding to a height of the load handling structure increasing relative to an adjacent mast section, or a static state signal, corresponding to the height of the load handling structure not changing relative to the adjacent mast section.
The operator control signal may comprise one of a load handling structure lower signal, or a load handling structure lift signal.
The height signal may comprise one of a lowering state signal, corresponding to a height of the load handling structure decreasing relative to an adjacent mast section, a lifting state signal, corresponding to the height of the load handling structure increasing relative to the adjacent mast section, or a static state signal, corresponding to the height of the load handling structure not changing relative to the adjacent mast section. The lifting state and static state signals may comprise signals that do not correspond to the load handling structure lower signal for disabling the one or more vehicle functions.
The materials handling vehicle may further comprise a hydraulic system for actuating the chain structure, and a pressure sensor in the hydraulic system. The vehicle control module may process and evaluate a pressure signal from the pressure sensor indicative of a pressure present in the hydraulic system, and may disable the one or more vehicle functions if the pressure signal indicates the pressure in the hydraulic system is less than a predetermined pressure value.
The one or more vehicle functions may include at least one of lowering movement of the load handling structure or vehicle travel movement.
The height sensor may comprise a height encoder to sense a position of the load handling structure relative to an adjacent mast section.
The materials handling vehicle may further comprise an operator's compartment.
In accordance with another aspect of the invention, a materials handling vehicle is provided having chain slack detection. The materials handling vehicle comprises a mast assembly, a load handling structure supported on the mast assembly, one or more operator controls, a lifting structure having a chain structure for performing a lifting and lowering of the load handling structure relative to the mast assembly, a first sensor for sensing a first operating condition of the lifting structure, a second sensor for sensing a second operating condition of the lifting structure, and a vehicle control module for processing a first signal received from the first sensor and a second signal received from the second sensor. The vehicle control module disables one or more vehicle functions if at least one of: the first signal has a value that corresponds to a chain slack condition in the lifting structure, or the second signal has a value that corresponds to a chain slack condition in the lifting structure.
One of the first and second sensors may comprise a height sensor providing a height signal corresponding to a movement of the load handling structure relative to an adjacent mast section.
The vehicle control module may process an operator control signal received from the one or more operator controls, and the operator control signal may comprise one of a load handling structure lower signal or a load handling structure lift signal.
The one or more vehicle functions may include at least one of lowering movement of the load handling structure or vehicle travel movement. The vehicle control module may disable the one or more vehicle functions if the operator control outputs the load handling structure lower signal, and the height signal corresponds to at least one of a height of the load handling structure increasing relative to the adjacent mast section or the height of the load handling structure not changing relative to the adjacent mast section.
The height sensor may comprise an encoder mounted to the load handling structure.
One of the first and second sensors may comprise at least one pressure sensor located in a hydraulic system for actuating the chain structure. The vehicle control module may process and evaluate a pressure signal from the pressure sensor indicative of pressure present in the hydraulic system, and may disable the one or more vehicle functions if the pressure signal indicates the pressure in the hydraulic system is less than a predetermined pressure value.
In accordance with a further aspect of the invention, a method of detecting a chain slack condition in a materials handling vehicle is provided, the materials handling vehicle having a mast assembly, a load handling structure supported on the mast assembly, one or more operator controls, a lifting structure for performing lifting and lowering of the load handling structure relative to the mast assembly, and a vehicle control module. The method comprises detecting an operator control signal from the one or more operator controls, detecting a height signal corresponding to vertical movement of the load handling structure relative to the mast assembly, receiving and evaluating the operator control signal and the height signal in the vehicle control module, and disabling one or more vehicle functions if the height signal does not correspond to the operator control signal, indicating a chain slack condition.
The one or more vehicle functions may include at least one of lowering movement of a load handling structure or vehicle travel movement.
The operator control signal may comprise one of a load handling structure lower signal, or a load handling structure lift signal. The height signal may comprise one of a lowering state signal, corresponding to a height of the load handling structure decreasing relative to an adjacent mast section, a lifting state signal, corresponding to the height of the load handling structure increasing relative to the adjacent mast section, or a static state signal, corresponding to the height of the load handling structure not changing relative to the adjacent mast section.
The lifting state and static state signals may comprise signals that do not correspond to the load handling structure lower signal for indicating the chain slack condition.
The method of detecting a chain slack condition may further comprise detecting a pressure signal from a pressure sensor in a hydraulic system, wherein the vehicle control module may process and evaluate the pressure signal and may disable the one or more vehicle functions if the pressure signal indicates a pressure in the hydraulic system is less than a predetermined pressure value.
The method of detecting a chain slack condition may further comprise detecting a mast switch signal from a mast switch, wherein the vehicle control module may process and evaluate the mast switch signal and may deactivate detection of a chain slack condition if the mast switch signal indicates that the load handling structure is in a predetermined lowered position.
In accordance with a further aspect of the invention, a method of detecting a chain slack condition in a materials handling vehicle is provided, the materials handling vehicle having a mast assembly, a load handling structure supported on the mast assembly, one or more operator controls, a lifting structure for performing lifting and lowering of the load handling structure relative to the mast assembly, and a vehicle control module. The method comprises detecting, at a first sensor, a first operating condition of the lifting structure, detecting, at a second sensor, a second operating condition of the lifting structure, receiving and evaluating, in the vehicle control module, a first signal corresponding to the first operating condition and a second signal corresponding to the second operating condition, and disabling one or more vehicle functions if at least one of: the first signal has a value that corresponds to a chain slack condition in the lifting structure, or the second signal has a value that corresponds to a chain slack condition in the lifting structure.
The first signal may comprise a height signal and the second signal may comprise a pressure signal.
The one or more vehicle functions may include at least one of lowering movement of the load handling structure or vehicle travel movement, and the vehicle control module may process an operator control signal from the one or more operator controls. The vehicle control module may disable the one or more vehicle functions if the operator control outputs a load handling structure lower signal, and the height signal corresponds to at least one of a height of the load handling structure increasing relative to an adjacent mast section or the height of the load handling structure not changing relative to the adjacent mast section.
One of the first and second sensors may comprise at least one pressure sensor located in a hydraulic system for actuating a chain structure, and the vehicle control module may process and evaluate the pressure signal indicative of a pressure present in the hydraulic system, and may disable the one or more vehicle functions if the pressure signal indicates the pressure in the hydraulic system is less than a predetermined value.
In the following detailed description of the preferred embodiments, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustration, and not by way of limitation, specific preferred embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized and that changes may be made without departing from the spirit and scope of the present invention.
Referring to
Referring to
As is illustrated in
The operator compartment 18 can include operator controls C, see
Referring to
Referring to
The height sensor 56 may comprise a height encoder mounted to the load handling structure 16, and, as depicted in
In accordance with an aspect of the chain slack detection system, the vehicle control module 50 receives a plurality of sensor signals and command signals from various vehicle components, e.g., operator control signals OS, height signals HS, and pressure signals PS, and can disable one or more vehicle functions based upon an evaluation of one or more of the plurality of signals. For example, the vehicle control module 50 can monitor a mast switch 57, see
In a first, pressure monitoring system, illustrated in
It should be noted that when the load handling structure lower function is disabled, operation of the lift ram/cylinder assembly 34 in the lifting direction, i.e., a load handling structure lift function, can be maintained such that the lift ram/cylinder assembly 34 can be operated to remove any slack and re-establish tension in the chain structure 30. Once the slack in the chain structure 30 is removed, the vehicle control module 50 may reactivate the disabled vehicle functions including, for example, the load handling lower function and the drive function. If the pressure signal PS from the pressure sensor 54 indicates that the hydraulic fluid pressure in the hydraulic system 40 meets the above-described conditions for the static and dynamic pressures PStatic, PDynamic, then the vehicle control module 50 continues to enable the load handling lower function and the vehicle travel function, and further monitors the height signals HS and the operator control signals OS for first and second chain slack conditions, as is further described below, see block 128.
In a second, height monitoring system, see
Referring to
In the above-described first chain slack condition, the relative movement between the load handling structure 16 and the second mast section 26 causes the height sensor 56 to produce a height signal HS corresponding to upward movement of the load handling structure 16. In particular, in response to the load handling structure lower signal, the second mast section 26 moves downward relative to the load handling structure 16, causing the height sensor 56 to provide an apparent indication of upward movement of the load handling structure 16, see block 106 in
Referring to
In the above-described second chain slack condition, in response to the load handling structure lower signal, the second mast section 26 and the load handling structure 16 are maintained at the same relative position as they move downward together. The absence of movement between the load handling structure 16 and the second mast section 26 causes the height sensor 56 to produce a height signal HS corresponding to non-movement of the load handling structure 16, see block 108 in
It should be understood that if the pressure signal PS from the pressure sensor 54 indicates that the hydraulic fluid pressure in the hydraulic system 40 meets the above-described conditions for the static and dynamic pressures and, in the absence of a detected chain slack condition, the vehicle control module 50 continues to enable the load handling lower function and the vehicle travel function, and further monitors the height signals HS and the operator control signals OS for the above-described first and second chain slack conditions. It also may be understood that the vehicle control module 50 continues to monitor the pressure signals PS at the same time as monitoring of the height signals HS and the operator control signals OS to control the vehicle functions with reference to determined chain slack conditions during operation of the vehicle 10.
As an alternative to the embodiments discussed above, an embodiment is contemplated wherein the height monitoring system may be operable as soon as the load handling structure 16 raises above a height of 0 mm, and may be operable from the time when the load handling structure 16 is in the lowered position until the load handling structure 16 reaches 200 mm, i.e., the mast switch 57 is OFF, at which point, as discussed above, the pressure monitoring system becomes operable. In this alternative embodiment, the height monitoring system may continue to operate in conjunction with the pressure monitoring system after the mast switch 57 is OFF. As described above, it can be seen that the present chain slack detection system can be implemented with existing hardware, providing sensing of chain slack conditions using inputs from conventionally installed sensors in combination with software implemented logic in the vehicle control module 50. That is, a conventional load handling structure mounted height sensor 56 can be used in combination with operator control signals, along with a hydraulic fluid supply pressure sensor 54, to provide vehicle control module inputs that are processed in accordance with the logic described above for identifying chain slack conditions caused by different chain slack events, without requiring additional sensors specific to chain slack monitoring.
While particular embodiments of the present invention have been illustrated and described, it would be obvious to those skilled in the art that various other changes and modifications can be made without departing from the spirit and scope of the invention. It is therefore intended to cover in the appended claims all such changes and modifications that are within the scope of this invention.
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