Cargo handling assistance device and control method for cargo handling assistance device
The cargo handling assistance device with integrated balance and speed control mechanisms addresses the challenge of smooth and safe handling of heavy loads by dynamically adjusting to weight and position changes, improving operational efficiency and safety.
Patent Information
- Application Number
- JP2021147381
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-17
- Filing Date
- 2021-09-10
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2041-09-10
AI Technical Summary
Existing cargo handling systems lack in ensuring smooth and safe operation, particularly when sudden stops or sudden stops a heavy load is being moved, and there is a need for improved operability in balanced states, particularly when handling heavy loads.
A cargo handling assistance device equipped with a locking member, lifting operation unit, motor unit, weight detection unit, position detection unit, operation command unit, and control unit, which includes balance and speed control mechanisms to manage load weight and position, switching between these controls based on detected weight and position changes.
Enhances operability by maintaining balanced states and safe handling of heavy loads, allowing for smooth and controlled lifting and lowering operations.
Smart Images

Figure 0007791566000001 
Figure 0007791566000002 
Figure 0007791566000003
Abstract
Description
[Technical Field]
[0001] This application claims domestic priority based on an application filed on September 17, 2020. The present invention relates to a loading assistance device used in manufacturing, assembly, transportation, and the like in the manufacturing field, and relates to a loading assistance device that moves objects up and down with minimal operating force, assisted by a motor, when lifting or lowering them, and a method for controlling the loading assistance device. [Background technology]
[0002] Factories that assemble industrial products have traditionally used loading and unloading devices to lift and move heavy loads such as tools, work equipment, finished products, and semi-finished products. Some of these loading and unloading devices generate an assisting force to allow users to lift and lower heavy loads to any height with a light operating force. Such assisting devices use a motor to provide assistance, applying a small operating force (external force) to the load to move it smoothly. Therefore, unlike devices that simply use an electric motor for vertical movement, they are configured to detect the load of the load and the operating force applied to it using, for example, a load detector, and control the load based on the change in weight due to the application of an external force using an AC servo motor or the like connected to a rotation angle detector. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-52007 Summary of the Invention [Problem to be solved by the invention]
[0004] Patent Document 1 discloses a technology in which the control unit maintains balance based on commands from the operating unit, but there is room for improvement in operability when, for example, a worker suddenly stops a relatively heavy load while it is being moved.
[0005] In view of the above problems, an object of the present invention is to provide a cargo handling assistance device and a control method for the cargo handling assistance device that are designed to improve operability in cargo handling operations in a balanced state. [Means for solving the problem]
[0006] In order to achieve the above object, a cargo handling assistance device according to one aspect of the present invention comprises: A cargo handling assistance device that assists in lifting and lowering a cargo, the device having a locking member, a lifting operation unit, a motor unit, a weight detection unit, a position detection unit, an operation command unit, and a control unit, The locking member is Engage the cargo to be lifted and lowered; The lifting operation unit is The locking member is raised and lowered by reeling out a link chain or a rope, The motor unit includes: Drive the lifting operation unit, The weight detection unit Detecting a weight applied to the lifting operation unit and transmitting the weight value to the control unit; The position detection unit Detecting the extension position of the locking member and transmitting the position value to the control unit; The operation command unit Sending a command to the control unit regarding the raising and lowering of the locking member, The control unit a weight registration means for receiving the weight value from the weight detection unit and storing it as a registered weight when a balance control command is received from the operation command unit; a balance control means for calculating a control value that makes the weight value received from the weight detection unit equal to the registered weight and issuing a command to the motor unit; a speed control means for controlling the speed at which the cargo is raised and lowered; a switching means for switching between the balance control means and the speed control means; It has.
[0007] In order to achieve the above object, a cargo handling assistance device according to one aspect of the present invention comprises: When the control unit detects that the load is being raised or lowered at a predetermined speed or more by the balance control means based on the position value from the position detection unit, and further detects that the weight value received from the weight detection unit is greater than the registered weight when the load is being raised and is smaller than the registered weight when the load is being lowered, the switching unit switches from the balance control means to the speed control means which sets the target speed to zero, When the control unit detects that the cargo has been stopped by the speed control unit based on the position value from the position detection unit, the switching unit is configured to switch from the speed control unit to the balance control unit.
[0008] In order to achieve the above object, a control method for a cargo handling assistance device according to one aspect of the present invention includes: A control method for a cargo handling assistance device that has a locking member, a lifting / lowering operating unit, a motor unit, a weight detection unit, a position detection unit, an operation command unit, and a control unit and assists in lifting / lowering a cargo, comprising: The locking member locks the cargo to be lifted and lowered, The lifting / lowering operation unit raises and lowers the locking member by reeling out the locking member with a link chain or a rope, The motor unit drives the lifting operation unit, The weight detection unit detects the weight applied to the lifting operation unit and transmits the weight value to the control unit; The weight detection unit detects the position of the locking member and transmits the position value to the control unit; The operation command unit transmits a command to the control unit regarding the raising and lowering of the locking member, When the control unit receives a balance control command from the operation command unit, a weight registration step of receiving a weight value from the weight detection unit and storing the weight value as a registered weight; a balance control step of calculating a control value that makes the weight value received from the weight detection unit equal to the registered weight and issuing the control value to the motor unit; a speed control step for controlling the speed of lifting and lowering of the cargo; a switching step of switching between balance control and speed control; The device is configured to include:
[0009] In order to achieve the above object, a control method for a cargo handling assistance device according to one aspect of the present invention includes: The switching step is a first switching step in which the control unit detects, based on the position value from the position detection unit, that the cargo is being lifted or lowered at a predetermined speed or faster in the balance control step, and further detects, based on the weight value from the weight detection unit, that the weight value when the cargo is being lifted or lowered at a predetermined speed or faster is greater than the registered weight when the cargo is being lifted and is smaller than the registered weight when the cargo is being lowered; and Next, the control unit is configured to have a second switching step in which, when it detects based on the position value from the position detection unit that the cargo has stopped due to the speed control step, it switches from the speed control step to the balance control step. [Effects of the Invention]
[0010] According to the cargo handling assistance device of the present invention, it is possible to provide a cargo handling assistance device that has good operability even when handling cargo of relatively large weight. [Brief explanation of the drawings]
[0011] [Figure 1] 1 is a perspective view of a cargo handling assistance device and a cargo to be handled according to an embodiment of the present invention; [Figure 2] 1 is a perspective view of a main body of a cargo handling assistance device according to an embodiment of the present invention, with a portion thereof omitted, and an enlarged perspective view of a wireless remote control device; [Figure 3] 1 is a block diagram of an electronic circuit of a cargo handling assistance device according to an embodiment of the present invention. [Figure 4] 1 is a schematic diagram showing a first operation using the cargo handling assistance device according to an embodiment of the present invention. FIG. [Figure 5] 1 is a schematic diagram showing a first operation using the cargo handling assistance device according to an embodiment of the present invention. FIG. [Figure 6] 1 is a schematic diagram showing a first operation using the cargo handling assistance device according to an embodiment of the present invention. FIG. [Figure 7] 1 is a schematic diagram showing a first operation using the cargo handling assistance device according to an embodiment of the present invention. FIG. [Figure 8] 1 is a schematic diagram showing a first operation using the cargo handling assistance device according to an embodiment of the present invention. FIG. [Figure 9] FIG. 10 is a schematic diagram showing a second operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 10] FIG. 10 is a schematic diagram showing a second operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 11] FIG. 10 is a schematic diagram showing a second operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 12] FIG. 10 is a schematic diagram showing a second operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 13] FIG. 10 is a schematic diagram showing a second operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 14]FIG. 10 is a schematic diagram showing a second operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 15] 3 is a flowchart executed by a control unit of the cargo handling assistance device according to the embodiment of the present invention. [Figure 16] 4 is a time chart of a first operation using the cargo handling assistance device according to the embodiment of the present invention. [Figure 17] 6 is a time chart of a second operation using the cargo handling assistance device according to the embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0012]
[0023] Hereinafter, a cargo handling assistance device according to an embodiment of the present invention will be described in detail with reference to the drawings. Fig. 1 is a perspective view of a cargo handling assistance device 1 and a cargo 7 according to an embodiment of the present invention.
[0013] The cargo handling assistance device 1 is composed of a main device 2, a locking member 6, and an operation command unit 9. The main device 2 raises and lowers the locking member 6 and the cargo 7 locked to the locking member 6. The locking member 6 is provided below a link chain 4 extending vertically downward from the main device 2. The operation command unit 9 can remotely control the main device 2. A hanging hook 3 is provided on the top surface of the main device 2. Therefore, the main device 2 can be used by hanging it from a beam of a building or a moving block 18 that can move horizontally along a horizontal movement rail 8 shown in Figure 4 and subsequent figures.
[0014] The locking member 6 is a member for locking the cargo 7, and includes a hanging hook for the cargo provided at one end of the link chain 4. In this embodiment, the cargo 7 is, for example, a rectangular parallelepiped article with an eyebolt provided on the top.
[0015] FIG. 2 is a perspective view of the main body 2 of the cargo handling assistance device 1 according to the embodiment of the present invention, with a portion thereof omitted, and an enlarged perspective view of the operation command unit 9. FIG.
[0016] The main body device 2 has a cover, and inside it, a control unit 10, a motor unit 11, a lifting operation unit 16, a weight detection unit 12, and the like are housed.
[0017] The control unit 10 of the main unit 2 includes a CPU (Central Processing Unit), ROM (Read Only Memory), RAM (Random Access Memory), other storage devices, and input / output devices, and controls the vertical movement of the locking member 6 via the link chain 4. The control unit 10 also includes a circuit that supplies power to the electrical and electronic components that make up the main unit 2.
[0018] The motor unit 11 is a drive source for vertically moving the locking member 6. A reducer is attached to the load side of the motor of the motor unit 11. This motor is, for example, an AC servo motor.
[0019] This reducer reduces the rotational speed of the motor to a predetermined speed. The reducer is, for example, a strain wave gear reducer. The strain wave gear reducer comprises a wave generator with an elliptical outer periphery, an elastically deformable flexspline with numerous external teeth formed on its outer periphery and fitted around the wave generator so that its position of circumferential deflection changes with the rotation of the wave generator, and a circular spline on the outer periphery of the flexspline with internal teeth that engage with the external teeth of the flexspline. Power is then extracted and transmitted to an output shaft 15 connected to the flexspline as a rotational output. Using a reducer with minimal backlash, such as a strain wave gear reducer, for this device can eliminate uncontrollable regions during frequent forward and reverse rotation switching of the motor for vertical movement, achieving a smooth operational feel. Note that the reducer is not limited to a strain wave gear reducer.
[0020] The output shaft 15 is a rotating shaft that reduces the rotational speed using a reducer and outputs increased torque. It is connected to the lifting / lowering operating unit 16 and rotates the lifting / lowering operating unit 16 continuously in both forward and reverse directions.
[0021] The link chain 4 is a sling, and is made up of oval rings, each consisting of a semicircular arc section and a straight section connected to it, which are intersecting and connected alternately. One end of the link chain 4 is connected to the locking member 6, and the other end (the unloaded side) is stored in the chain storage section 17.
[0022] The lifting / lowering unit 16 includes a rotating member that rotates when power is transmitted from the motor unit 11, which is the drive source. In this embodiment, the rotating member of the lifting / lowering unit 16 is a hollow cylinder connected to the output shaft 15 at the hollow portion. The link chain 4 is wound around the outer cylindrical surface, winding and unwinding the link chain 4. The link chain 4 is wound approximately vertically below the hanging hook 3 and close to the center of gravity of the main device 2. The link chain 4 is fitted into a pocket groove on the outer cylindrical surface of the lifting / lowering unit 16 and wound approximately 180 degrees. In this embodiment, a link chain 4 is used as the link chain connected to the locking member 6 and wound around the lifting / lowering unit 16. However, this is not limiting and a wire rope may also be used. When a wire rope is used, the lifting / lowering unit 16 is drum-shaped, and one end of the wire rope is fixed and wound around the rotating member.
[0023] The position detection unit 13 is connected to the anti-load side of the motor unit 11. The position detection unit 13 detects the rotational angle position of the motor. The position detection unit 13 is a so-called absolute encoder, and optically detects the rotational angle position of the motor and transmits the position value to the control unit 10. Therefore, the position detection unit 13 can detect the extension position of the locking member 6, i.e., the lifting position of the locking member 6.
[0024] The weight detection unit 12 is equipped with a strain element and a strain gauge attached to the strain element. The strain element has a shape that allows it to elastically deform so that it can detect the force transmitted from the link chain 4 wound around the lifting operation unit 16. The strain gauge is incorporated into a Wheatstone bridge circuit that converts the strain generated in the strain element according to the weight into an electrical signal, and the weight detection unit 12 detects the weight applied to the lifting operation unit 16 and sends the weight value to the control unit 10.
[0025] The control unit 10 of the main unit 2 is disposed near the lifting operation unit 16 inside the main unit 2. The control unit 10 of the main unit 2 receives position values from the position detection unit 13 and weight values from the weight detection unit 12, performs calculations based on these values, and controls the motor unit 11. The electrical components associated with the control unit 10 of the main unit 2 are disposed inside a cover so that the main unit 2 can be used in places where it is exposed to powder or water droplets.
[0026] In this embodiment, the position detector 13 is disposed on the anti-load side of the motor unit 11, but this is not limitative and the position detector 13 may be disposed on the output shaft 15, which is the output of the reducer, or on the lifting operation unit 16, or may be disposed on both. Furthermore, the position detector 13 is not limited to an optical type, and may be a magnetic type, a capacitance type, or the like.
[0027] Furthermore, the weight detection unit 12 only needs to be able to detect the weight applied to the lifting operation unit 16, and may be of a rotary type structure that detects torque from the twist of a rotating shaft provided between the reducer and the lifting operation unit 16, or of a flange or drum type structure that detects the reaction force received by the motor unit 11. Furthermore, the weight detection unit 12 is not limited to a strain gauge type, and may be of a magnetostrictive type, a capacitance type, or the like.
[0028] The main unit transmitting / receiving unit 14 is disposed next to the circuit board of the control unit 10 of the main unit 2. The main unit transmitting / receiving unit 14 has an electronic circuit for communicating with the operation command unit 9 wirelessly.
[0029] The operation command unit 9 is used to remotely operate the main unit 2, and in this embodiment, communicates via radio waves. The operation command unit 9 is battery-powered. The operation command unit 9 has, as operation means, for example, a balance button 21, a hold button 22, an up button 23, and a down button 24.
[0030] 3 is a block diagram of an electronic circuit of the cargo handling assistance device 1 according to the embodiment of the present invention. The cargo handling assistance device 1 includes a main body device 2 and an operation command unit 9.
[0031] The control unit 10 of the main unit 2 controls the entire main unit 2. The control unit 10 of the main unit 2 includes a drive circuit that drives the motor unit 11. The control unit 10 of the main unit 2 receives the weight value applied to the lifting operation unit 16 from the weight detection unit 12, receives the position value of the rotation angle of the motor unit 11 from the position detection unit 13, and transmits and receives signals to and from the main unit transceiver unit 14. The main unit transceiver unit 14 and the control unit 10 of the main unit 2 are connected by wire, and transmit and receive signals at high speeds at extremely short time intervals. The weight registration means 10a, balance control means 10b, speed control means 10c, and switching means 10d within the control unit 10 will be described in detail below.
[0032] The main device transmitter / receiver 14 communicates wirelessly with an operation command transmitter / receiver 25 of the operation command unit 9. The main device transmitter / receiver 14 and the operation command transmitter / receiver 25 are composed of electronic circuits that perform wireless communication, and may have a transmitter and receiver that use radio waves, as well as a CPU (Central Processing Unit), ROM (Read Only Memory), RAM (Random Access Memory), etc.
[0033] The operation command control unit 20 controls the entire operation command unit 9. The operation command control unit 20 receives operation commands from each operation means (operation button) and transmits an operation command signal to the operation command transmission / reception unit 25. The operation command transmission / reception unit 25 then wirelessly transmits the operation command received from the operation command control unit 20 to the main unit transmission / reception unit 14. The signal containing this command is assigned with identification information of the operation command unit 9 that pairs the operation command unit 9 with the main unit 2.
[0034] Next, the role of each operation button, which is an operation means provided on the operation command unit 9, will be described. Each operation button is, for example, a push switch. When the operator presses the balance button 21, a balance command is sent from the operation command unit 9, which is received by the control unit 10 of the main unit 2 and transitions to balance control. That is, the control unit 10 of the main unit 2 stores the weight value detected by the weight detection unit 12 and output as a registered weight using the weight registration means 10a. The balance control means 10b calculates a control value that zeros the difference between the registered weight and the weight applied to the lifting / lowering actuator 16, and controls the motor unit 11 accordingly. This control is referred to as balance control in the present invention, and the state of the locking member 6 and the cargo 7 during this balance control is referred to as a balanced state. In other words, balance control is the process in which the control unit 10 of the main unit 2 calculates a control value and controls the motor unit 11 so that the tension in the link chain 4 generated by the registered weight is equal to the tension in the link chain 4 generated by the weight detected by the lifting / lowering actuator 16. If the worker applies a vertically downward external force to the locking member 6 and the load 7 during this balance control, the weight applied to the lifting actuator 16 increases, and the control unit 10 of the main unit 2 calculates a control value to bring this weight closer to the registered weight and controls the motor unit 11 in the direction of unwinding the link chain 4, causing the locking member 6 and the load 7 to descend. On the other hand, if the worker applies a vertically upward external force to the locking member 6 and the load 7 during this balance control, the weight applied to the lifting actuator 16 decreases, and the control unit 10 of the main unit 2 calculates a control value to bring this weight closer to the registered weight and controls the motor unit 11 in the direction of winding up the link chain 4, causing the locking member 6 and the load 7 to ascend. When the worker stops applying the external force, the weight detected by the weight detection unit 12 becomes equal to the registered weight, and the locking member 6 and the load 7 come to a standstill. Note that this control value may include, for example, acceleration.
[0035] On the other hand, when the worker presses the hold button 22, the control unit 10 of the main device 2 performs calculations in response to this and controls the motor unit 11 to hold the lifting operating unit 16 at its current position, i.e., to keep the lifting positions of the locking member 6 and the cargo 7 constant, which is referred to as hold control in the present invention.
[0036] When the worker presses the up button 23 or the down button 24, the control unit 10 of the main unit 2 controls the motor unit 11 to raise or lower the locking member 6. By repeatedly pressing the up button 23 or the down button 24, the worker can continuously raise or lower the locking member 6 and the cargo 7 using the motor unit 11. Whether the main unit 2 is performing holding control or balance control, pressing the up button 23 or the down button 24 will cause the locking member 6 and the cargo 7 to rise or fall, and releasing the pressed up button 23 or the down button 24 will return the main unit 2 to either the holding control or the balance control that was in effect immediately before. Therefore, when the worker presses the up button 23 or the down button 24 to forcibly move the locking member 6 and the cargo 7, the control unit 10 of the main unit 2 is in forced movement control.
[0037] 4 to 8 are schematic diagrams showing a first series of work states in which a worker uses the cargo handling assistance device 1 according to an embodiment of the present invention to handle a cargo object 7. FIGS. 9 to 14 are schematic diagrams showing a second series of work states in which a worker uses the cargo handling assistance device 1 according to an embodiment of the present invention to handle a cargo object 7. FIG. 15 is a flowchart executed by the control unit 10 of the main body device 2 of the cargo handling assistance device 1 according to an embodiment of the present invention. The movements of the locking member 6 and the cargo object 7 and the steps of the control method executed by the control unit 10 of the main body device 2 at that time will be described with reference to FIGS. 4 to 15.
[0038] In Figure 4, rail 8 is a track rail installed horizontally on the ceiling or the like of the work premises. Movable block 18 is a member that can move approximately horizontally along rail 8, and is connected to hanging hook 3 to suspend main unit 2. Therefore, movable block 18 allows main unit 2 to move freely in the horizontal direction. Shelf 33 is fixedly installed on floor 31. Furthermore, shelf 34 is fixedly installed on floor 32, which is stepped vertically from floor 31.
[0039] A method for moving the object 7 placed on the floor 31 to the shelf 34 will now be described. In FIG. 15, first, as a preparation step, an operator turns on the power switch (not shown) of the main unit 2, which starts up the control unit 10 of the main unit 2. The control unit 10 of the main unit 2 executes step S101 and proceeds to step S102. In step S101, the control unit 10 of the main unit 2 holds the lifting / lowering actuator 16 at its current position. In the state of FIG. 4, the operator presses the down button 24 of the operation command unit 9 to lower the locking member 6, and moves the locking member 6 to a position where the locking member 6 can lock the object 7. At this time, tension is applied to the lifting / lowering actuator 16 only by the weight of the link chain 4 and the weight of the locking member 6.
[0040] FIG. 5 shows a state in which the worker has moved the locking member 6 vertically downward from the state shown in FIG. 4, and the locking member 6 has been locked to the cargo 7.
[0041] Next, the operator presses the up button 23 of the operation command unit 9 to raise the locking member 6, as shown in Figure 6. In Figure 15, the control unit 10 of the main unit 2 determines in step S102 that the up button 23 has been pressed and executes step S103. In step S103, the control unit 10 of the main unit 2 activates the lifting operation unit 16 to raise the locking member 6 and the cargo 7, and returns to step S101 to execute control to hold them in that position. If the operator continues to press the up button 23, the control unit 10 of the main unit 2 continues step S103 to raise the locking member 6 and the cargo 7.
[0042] When the locking member 6 is raised by the lifting operation unit 16 winding up the link chain 4, and the cargo 7 is lifted off the floor 31 and suspended in mid-air, the operator stops pressing the lift button 23, and the control unit 10 of the main unit 2 executes the holding control. This state is shown in FIG. 6. Next, when the operator presses the balance button 21, the control unit 10 of the main unit 2 detects in step S104 that the balance button 21 has been pressed (Yes) and proceeds to step S105. If the operator has not pressed the balance button 21, the control unit 10 of the main unit 2 detects in step S104 that the balance button 21 has not been pressed (No) and returns to step S101 to maintain the holding control.
[0043] In step S105 (weight registration step), weight registration means 10a in control unit 10 of main body device 2 registers and stores the weight value detected and output by weight detection unit 12, the weight applied to lifting operation unit 16.
[0044] In step S106 (balance control step), the control unit 10 of the main device 2 executes balance control for the locking member 6 and the cargo 7 based on the registered and stored weight value. In this state, the worker can raise or lower the cargo 7 by applying an external force to the locking member 6 or the cargo 7.
[0045] In step S106 (balance control step), the control unit 10 of the main body device 2 executes balance control while proceeding to step S107. Then, the worker continues to apply a vertically upward external force to the locking member 6 or the object 7, thereby lifting the object 7.
[0046] If the operator presses the hold button 22, the control unit 10 of the main unit 2 determines in step S107 that the hold button 22 has been pressed (Yes), and proceeds to hold control to release the balance control and maintain the position. If the control unit 10 of the main unit 2 determines in step S107 that the hold button 22 has not been pressed (No), the process proceeds to step S108.
[0047] In step S108, the control unit 10 of the main unit 2 determines whether the locking members 6 and the cargo 7 are rising and falling at a predetermined speed or faster. If the control unit 10 of the main unit 2 determines in step S108 that the locking members 6 and the cargo 7 are not rising and falling at a predetermined speed or faster (No), the control unit 10 of the main unit 2 continues to execute balance control. On the other hand, if the control unit 10 of the main unit 2 determines in step S108 that the locking members 6 and the cargo 7 are rising and falling at a predetermined speed or faster (Yes), the control unit 10 proceeds to step S109. Note that this predetermined speed can be variably set depending on the weight of the cargo to be handled and the type of work, and can be set in advance by the equipment manager, etc.
[0048] In step S109, the control unit 10 of the main unit 2 determines whether or not there has been a weight change based on the weight value from the weight detection unit 12. In FIG. 6, the worker is attempting to lift the load 7, so an external force in the vertically upward direction is applied to the load 7. This causes the net weight value applied to the weight detection unit 12 to decrease and become smaller than the registered weight value registered in S105 (weight registration step). The control unit 10 of the main unit 2 uses the balance control means 10b to calculate a control value that eliminates the difference between the registered weight and the weight applied to the lifting / lowering actuator 16, and controls the motor unit 11. Therefore, from a macroscopic perspective, the weight value transmitted by the weight detection unit 12 converges to the registered weight value. However, from a microscopic perspective, the weight detection unit 12 transmits a decreased weight value. Then, as shown in FIG. 7, when the worker applies an external force in the vertically downward direction to stop the load 7, the net weight value applied to the weight detection unit 12 changes to a value larger than the registered weight value registered in S105 (weight registration step). The control unit 10 of the main unit 2 uses the balance control means 10b to calculate a control value that will make the difference between the registered weight and the weight applied to the lifting operation unit 16 zero, and controls the motor unit 11, so that on a macro level the weight value transmitted by the weight detection unit 12 converges to the registered weight value, but on a micro level the weight detection unit 12 transmits an increased weight value. Therefore, in step S109, the control unit 10 of the main unit 2 determines that there is a weight change that crosses the registered weight value (Yes), and proceeds to step S110.
[0049] The criteria for determining this weight change are determined by the amount of change and its duration, and can be set variably depending on the weight of the cargo being handled and the nature of the work, and can be set in advance by the equipment manager, etc.
[0050] If the control unit 10 of the main body device 2 determines in step S109 that there is no weight change across the registered weight value (No), the process returns to step S106 and the balance control continues to be executed.
[0051] In step S110 (first switching step), the control unit 10 of the main body device 2 switches from balance control to speed control using the switching means 10d, and then the process proceeds to step S111.
[0052] In step S111 (speed control step), the control unit 10 of the main unit 2 executes control to set the target speed of the movement of the cargo 7 to zero in speed control, and then proceeds to step S112. Note that the control unit 10 of the main unit 2 widens the upper limit of the acceleration command compared to when performing balance control, and controls the cargo 7 to stop as quickly as possible. This upper limit of the acceleration command is variable and can be set in advance by the equipment manager, etc.
[0053] In step S112, the control unit 10 of the main unit 2 determines whether the movement speed of the cargo 7 has reached zero. More specifically, the control unit 10 of the main unit 2 calculates the movement speed of the cargo 7 based on the position value from the position detection unit 13 and determines whether the target zero speed has been reached. If the control unit 10 of the main unit 2 determines in step S112 that the movement speed of the cargo 7 has not reached zero (No), the process returns to step S111 and continues speed control. If the control unit 10 of the main unit 2 determines in step S112 that the movement speed of the cargo 7 has reached zero (Yes), the process proceeds to step S113.
[0054] In step S113 (second switching step), the control unit 10 of the main unit 2 quickly switches from speed control to balance control using the switching means 10d, and proceeds to step S106, where the control unit 10 of the main unit 2 executes balance control. The balance control at this time is performed based on the weight value stored in the previously executed step S105.
[0055] If the worker presses the hold button 22 during balance control, the control unit 10 of the main unit 2 determines in step S107 that the hold button 22 has been turned on, and exits balance control to execute step S101 for position holding. In this embodiment, step S107 is provided immediately after step S106, but is not limited to this and may be performed by interrupt processing at any state during balance control. When balance control is to be resumed from hold control, the worker presses the balance button 21, which executes step S105, registering the weight and bringing the load 7 into a balanced state.
[0056] As shown in Figure 7, after the worker stops the cargo 7, the cargo 7 remains balanced, and the worker can move the cargo 7 horizontally to the right until it is directly above the shelf 34 (Figure 8). The worker then presses the hold button 22 to hold the position of the cargo 7, and continues to press the lowering button 24 to land the cargo 7 on the shelf 34, and continues to press the lowering button 24 until it reaches a position where it can release the locking member 6 from the cargo 7. This loosens the link chain 4, allowing the worker to release the locking member 6 from the cargo 7, completing the first operation.
[0057] Next, a second method for moving the object 7 placed on the floor 32 to the shelf 33 will be described with reference to Figures 9 to 14. The worker activates the control unit 10 of the main unit 2, and if the holding control is not in progress, presses the holding button 22 to put the locking member 6 in the holding state (Figure 9), and then presses the down button 24 as appropriate to move the locking member 6 to a vertical position where the locking member 6 can lock the object 7. The worker then locks the locking member 6 to the object 7 (Figure 10).
[0058] Next, when the worker continues to press the lift button 23, the control unit 10 of the main device 2 continues step S103 and lifts the locking member 6 and the object 7.
[0059] When the locking member 6 is raised by the lifting operation unit 16 winding up the link chain 4, the cargo 7 is lifted off the floor 32, and the worker stops pressing the lift button 23, the control unit 10 of the main unit 2 executes the holding control. This state is shown in Figure 11.
[0060] When the worker presses the balance button 21, the control unit 10 of the main unit 2 determines whether the balance button 21 is turned on, and if it determines that the balance button 21 is pressed (Yes), the process proceeds to step S105.
[0061] Since the steps from step S105 to step S113 executed by the control unit 10 of the main unit 2 are similar, only the different operations and the steps related thereto will be explained.
[0062] The control unit 10 of the main unit 2 executes step S106, and the load 7 is in a balance control state, so the worker can freely raise and lower the load 7. Then, the worker moves the load 7 horizontally to the left, and then continues to apply a vertically downward external force to the locking member 6 or the load 7 (FIG. 12). This causes the load 7 to move vertically downward.
[0063] At this time, in step S109, the control unit 10 of the main unit 2 determines whether or not there has been a weight change based on the weight value from the weight detection unit 12. In FIG. 12, the worker applies a vertically downward external force to the cargo 7 in an attempt to lower the cargo 7, so the weight value detected by the weight detection unit 12 increases and becomes larger than the registered weight value registered in S105 (weight registration step). Then, as shown in FIG. 13, when the worker applies a vertically upward external force in an attempt to stop the cargo 7, the weight value detected by the weight detection unit 12 changes to a value smaller than the registered weight value registered in S105 (weight registration step). Therefore, in step S109, the control unit 10 of the main unit 2 determines that there has been a weight change across the registered weight values (Yes), and proceeds to step S110 (first switching step).
[0064] When the worker applies a vertically upward external force to the cargo 7 at the desired position to stop the cargo 7, the cargo 7 stops via speed control, and the control is quickly switched in step S113 (second switching step), and the cargo 7 is again in a balanced state in step S106. The worker can move the cargo 7 horizontally to the left to move the cargo 7 directly above the shelf 33 (Figure 14). The worker then presses the hold button 22 to hold the position of the cargo 7, and continues to press the lowering button 24 to land the cargo 7 on the shelf 33, continuing to press the lowering button 24 until the cargo 7 is at a position where it can be released from the locking member 6. This releases the link chain 4, allowing the worker to release the locking member 6 from the cargo 7, completing the second operation.
[0065] Fig. 16 is a time chart of a first task using the cargo handling assistance device according to an embodiment of the present invention. From the top, Fig. 16 shows the pressed states of each button (balance button 21, up button 23, down button 24, and hold button 22), the control state of the control unit 10 of the main device 2, the registered and stored weight, the detected weight detected by the weight detection unit 12, and the speed v of the suspended load (upward speed is positive and downward speed is negative). Because the work performed by the worker is not performed on a fixed time axis, this time chart schematically shows the states of each operation button and the device. The states of the cargo handling assistance device 1 will be explained using Fig. 16 in accordance with the first task shown above.
[0066] The control unit 10 of the main unit 2 starts holding control when the power is turned on. In this example, the registered weight is cleared to zero when the power is turned off. The weight detected by the weight detection unit 12 is W1. This weight is the sum of the weights of the link chain 4 and the locking member 6. Furthermore, since holding control is in progress, the speed is zero.
[0067] Next, when the worker presses the down button 24 between time t1 and time t2, the locking member 6 descends at a speed Vn. Then, when the worker locks the locking member 6 to the cargo 7 and presses the up button 23 between time t3 and time t4, the locking member 6 ascends at a speed Vm, and the detected weight gradually increases until it reaches W2.
[0068] Next, when the worker presses the balance button 21, the detected weight W2 is stored as the registered weight, and the control unit 10 of the main unit 2 transitions to balance control (time t5). When the worker applies a vertically upward external force to the locking member 6 or the cargo 7, the detected weight decreases, so the control unit 10 of the main unit 2 controls the motor unit 11 so that the detected weight becomes the registered weight W2. During this balance control, when the worker applies an external force, the control unit 10 controls the detected weight so that it becomes the registered weight W2, so that the detected weight fluctuates microscopically, but is controlled to be kept at a nearly constant W2. However, if the external force applied by the worker limits the movement speed, the detected weight may not be maintained at W2 and may become close to the net weight.
[0069] Next, the control unit 10 of the main unit 2 calculates the speed by differentiating the position value from the position detection unit 13, and when it detects that the cargo 7 is rising at a speed equal to or greater than the predetermined speed Vu and the weight value received from the weight detection unit 12 has increased from the registered weight W2 (time t6), it switches from the balance control unit 10b to the speed control unit 10c, which targets a speed of zero, by the switching unit 10d. After that, when the speed of the cargo 7 becomes zero based on the position value from the position detection unit 13, the control unit 10 of the main unit 2 switches back to the balance control unit 10b (time t7).
[0070] When the worker presses the hold button 22 at time t8, the control unit 10 of the main unit 2 switches to hold control, and when the worker then presses the down button 24 between time t9 and time t10, the locking member 6 descends at a speed Vn. At the same time, the detected weight decreases from W2 to W1. When the detected weight reaches W1, the load 7 can be released from the locking member 6.
[0071] Fig. 17 is a time chart of the second operation using the cargo handling assistance device according to the embodiment of the present invention. Since the operation performed by the worker is not performed on a fixed time axis, this time chart also shows the state of each operation button and device in a schematic manner. The state of the cargo handling assistance device 1 will be explained using Fig. 17 in accordance with the second operation shown above. Note that the period from time t0 to time t5 and from time t8 onwards are almost the same as those in the first operation, so they will be omitted.
[0072] When the worker presses balance button 21, the detected weight W2 is stored as the registered weight, and control unit 10 of main unit 2 transitions to balance control (time t5). When the worker applies a vertically downward external force to locking member 6 or cargo 7, the detected weight increases, so control unit 10 of main unit 2 controls motor unit 11 so that the detected weight becomes registered weight W2. During this balance control, when the worker applies an external force, control unit 10 controls the detected weight so that it becomes registered weight W2, so that the detected weight fluctuates microscopically but is maintained at a nearly constant W2.
[0073] Next, the control unit 10 of the main unit 2 calculates the speed by differentiating the position value from the position detection unit 13, and when it detects that the cargo 7 is descending at a speed equal to or greater than the predetermined speed Vd and that the weight value received from the weight detection unit 12 has increased from the registered weight W2 (time t6), it switches from the balance control unit 10b to the speed control unit 10c, which targets a speed of zero, by the switching unit 10d. After that, when the speed of the cargo 7 becomes zero based on the position value from the position detection unit 13, the control unit 10 of the main unit 2 switches back to the balance control unit 10b (time t7).
[0074] As described above, with the cargo handling assistance device of the present invention, when a relatively heavy cargo is being raised or lowered in a balanced state, the worker can quickly stop the cargo near the desired position and instantly return to balance control, thereby achieving quick and comfortable operability and providing a cargo handling assistance device and control method therefor with improved operability.
[0075] Although the present invention has been described based on the preferred embodiment, the present invention is not limited to the above-described embodiment, and various modifications are possible without departing from the spirit of the present invention. [Industrial Applicability]
[0076] As an example of utilization of the present invention, it can be applied to a cargo handling assistance device that assists in the movement of cargo. [Explanation of symbols]
[0077] 1: Loading assistance device 2: Main unit 3: Hanging hook 4: Link chain 6: Locking member 7: Cargo handling 8: Rail 9:Operation command section 10: Control unit (main unit control unit) 10a: Weight registration means 10b: Balance control means 10c: Speed control means 10d: Switching means 11: Motor section 12: Weight detection unit 13: Position detection unit 14: Main unit transceiver 15: Output shaft 16: Lifting operation part 17: Chain storage compartment 18: Moving block 20: Operation command control section 21: Balance button 22: Retention button 23: Up button 24: Down button 25: Operation command transmitter / receiver 31: Floor 32: Floor 33: Shelf 34: Shelf
Claims
1. A loading and unloading assistance device that assists in the lifting and lowering of a loading object, the device comprising a locking member, a lifting and lowering operating unit, a motor unit, a weight detection unit, a position detection unit, an operation command unit, and a control unit, The locking member is Engage the cargo to be lifted and lowered; The lifting operation unit is The locking member is raised and lowered by reeling out a link chain or a rope, The motor unit includes: Drive the lifting operation unit, The weight detection unit Detecting a weight applied to the lifting operation unit and transmitting the weight value to the control unit; The position detection unit Detecting the extension position of the locking member and transmitting the position value to the control unit; The operation command unit Sending a command to the control unit regarding the raising and lowering of the locking member, The control unit a weight registration means for receiving the weight value from the weight detection unit and storing it as a registered weight when a balance control command is received from the operation command unit; a balance control means for calculating a control value that makes the weight value received from the weight detection unit equal to the registered weight, issuing a command to the motor unit, and controlling the motor unit to lower or raise the cargo based on the control value; a speed control means for controlling the speed of the lifting and lowering of the cargo to set a target speed of the lifting and lowering of the cargo to zero from the lowering or the lifting under the control of the balance control means; a switching means for performing a first switching from the balance control means to the speed control means or a second switching from the speed control means to the balance control means; and The first switching by the switching means includes: When the control unit detects that the cargo is being raised or lowered at a predetermined speed or more by the balance control means based on the position value from the position detection unit, and further detects that the weight value received from the weight detection unit is greater than the registered weight when the cargo is raised and is smaller than the registered weight when the cargo is lowered, The second switching by the switching means is The control unit detects that the cargo has been stopped by the speed control means based on the position value from the position detection unit. A loading and unloading assistance device characterized by the above.
2. A control method for a loading and unloading assistance device that has a locking member, a lifting and lowering operating unit, a motor unit, a weight detection unit, a position detection unit, an operation command unit, and a control unit and assists in the lifting and lowering of a loading and unloading object, The locking member is Engage the cargo to be lifted and lowered; The lifting operation unit is The locking member is raised and lowered by reeling out a link chain or a rope, The motor unit includes: Drive the lifting operation unit, The weight detection unit Detecting a weight applied to the lifting operation unit and transmitting the weight value to the control unit; The weight detection unit Detecting the extension position of the locking member and transmitting the position value to the control unit; The operation command unit Sending a command to the control unit regarding the raising and lowering of the locking member, The control unit When a balance control command is received from the operation command unit, a weight registration step of receiving the weight value from the weight detection unit and storing it as a registered weight; a balance control step of calculating a control value that makes the weight value received from the weight detection unit equal to the registered weight and issuing the control value to the motor unit; a speed control step of controlling the speed of lifting and lowering the cargo; a switching step of switching between the balance control and the speed control; Including, The switching step includes: The control unit a first switching step of detecting, based on the position value from the position detection unit, that the cargo is ascending or descending at a predetermined speed or more in the balance control step, and further detecting, based on the weight value from the weight detection unit, that the weight value when ascending or descending at the predetermined speed or more is greater than the registered weight when the cargo is ascending and is less than the registered weight when the cargo is descending; and Next, the control unit a second switching step of switching from the speed control step to the balance control step when it is detected based on the position value from the position detection unit that the cargo has stopped due to the speed control step; A method for controlling a loading and unloading assistance device having the above structure.
Citation Information
Patent Citations
Safety circuit for balancing cargo handling device
JP1995215688A
Overload hoisting prevention device of manual hoist with electric auxiliary motor, and overload hoisting prevention method
JP2017160031A
Cargo handling assistance device and control method of cargo handling assistance device
JP2019052007A
Electric lifting device and control method thereof
JP2020001919A
Electric lifting device
JP2020070126A