How to set control parameters for the ship's steering system.
The ship handling system facilitates simultaneous input and real-time adjustment of forward and reverse thrust parameters using separate input devices, addressing the inefficiencies in traditional sequential setups to enhance setup efficiency and reduce time.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-08-29
- Publication Date
- 2026-04-07
AI Technical Summary
The initial setup of control parameters for ship handling systems using a joystick is cumbersome and time-consuming, requiring sequential adjustment of multiple parameters while monitoring the ship's behavior, leading to increased workload and prolonged setup times.
A ship handling system that allows simultaneous input of forward and reverse thrust parameters through separate input devices, such as an electronic gauge and a joystick, with real-time reflection of these parameters in the propulsion system, enabling parallel adjustment of thrust settings while monitoring the ship's behavior.
This approach reduces the workload and shortens the time required for setting initial control parameters by allowing simultaneous adjustment of thrust parameters, thereby improving efficiency and reducing the time needed for setup.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a ship control system and a method for setting control parameters.
Background Art
[0002] In recent years, a ship control system using a joystick has been developed in the marine industry (for example, see Patent Document 1). In the ship control system described in Patent Document 1, the propulsion directions and propulsion forces of the left and right propulsion units are adjusted by a joystick. For example, when the joystick is turned, the ship turns, and when the joystick is tilted left and right, the ship moves sideways. In order to move the ship as expected by operating the joystick, the control parameters of the left and right propulsion units must be appropriately set at the time of initial setting. The initial setting of the control parameters is performed using an electronic device such as a digital gauge for each setting item.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the initial setting using an electronic device, the control parameters are set one by one while switching the setting items when setting a plurality of control parameters. Since the behavior of the ship changes after setting the first control parameter, it is necessary to confirm the behavior of the ship after setting the first control parameter when setting the second control parameter. Depending on the behavior of the ship, the control parameters may need to be reset.
[0005] This invention has been made in view of the above, and aims to provide a ship handling system and a method for setting control parameters that can reduce the workload and shorten the time required for setting initial control parameters. [Means for solving the problem]
[0006] One aspect of the present invention is a ship handling system for a ship equipped with left and right thrusters, comprising: a first input device that accepts input of either the forward thrust parameter or the reverse thrust parameter of the thruster; a second input device that accepts input of either the forward thrust parameter or the reverse thrust parameter of the thruster; and a controller that reflects the forward thrust parameter and the reverse thrust parameter to the thruster in real time, thereby solving the above problem by having the first input device and the second input device accept input in parallel when setting a ship handling pattern. [Effects of the Invention]
[0007] According to one embodiment of the present invention, when setting a ship handling pattern, forward thrust parameters and reverse thrust parameters are input in parallel by first and second input devices, and the forward thrust parameters and reverse thrust parameters are reflected in the propulsion system in real time. The forward thrust parameters and reverse thrust parameters can be set simultaneously while checking the behavior of the ship. Therefore, the workload for setting the forward thrust parameters and reverse thrust parameters can be reduced and the working time can be shortened. [Brief explanation of the drawing]
[0008] [Figure 1] This is a diagram illustrating the configuration of the ship handling system in this embodiment. [Figure 2] This is a table showing the assignment of device operations for each maneuvering pattern in this embodiment. [Figure 3] This is an explanatory diagram of the initial setup procedure for turning and maneuvering in this embodiment. [Figure 4] This is an explanatory diagram of the initial setup procedure for lateral maneuvering in this embodiment. [Figure 5] This is an explanatory diagram of the initial setup procedure for lateral maneuvering in this embodiment. [Figure 6] This is a thrust setting table for each maneuvering pattern. [Figure 7] This is a flowchart showing the setting operation for turning and maneuvering in a comparative example. [Figure 8] This is a flowchart showing the setting operation for turning and maneuvering in this embodiment. [Figure 9] This flowchart shows the setting operation for lateral movement maneuvering in a comparative example. [Figure 10] This flowchart shows the setting operation for lateral movement maneuvering in this embodiment. [Modes for carrying out the invention]
[0009] A ship handling system according to one aspect of the present invention is employed in a vessel equipped with left and right propulsion engines. In the ship handling system, when setting a ship handling pattern, a first input device receives input for either the forward thrust parameter or the reverse thrust parameter of the propulsion engine, and a second input device receives input for the other. The forward thrust parameter and the reverse thrust parameter are input in parallel by the first and second input devices, and the forward thrust parameter and the reverse thrust parameter are reflected in the propulsion engine in real time by the controller. The forward thrust parameter and the reverse thrust parameter can be set simultaneously while checking the behavior of the vessel. Therefore, the workload of setting the forward thrust parameter and the reverse thrust parameter can be reduced and the working time can be shortened. [Examples]
[0010] In joystick-based ship handling systems, initial setup of the thrust parameters for the left and right propellers is crucial for controlling the vessel as intended. Specifically, the thrust parameters must be appropriately set according to the size of the vessel, the position of the center of gravity, the shape of the hull, the output characteristics of the propellers, the propeller shape, etc. In this case, the ship handling system is equipped with electronic gauges, which are used to set the forward and reverse thrust of the left and right propellers. With a single electronic gauge, it was not possible to access the reverse thrust setting while the forward thrust setting was being accessed, making the setting process cumbersome.
[0011] For example, in a clockwise turning maneuver, the rudder angles of the left and right outboard motors are neutral, the left propeller outputs forward thrust, and the right propeller outputs reverse thrust. The thrust parameters are set so that the forward and reverse thrusts are balanced relative to the center of the ship's turn. Generally, propellers are designed to produce high thrust in the forward direction, so the balance between forward and reverse thrust cannot be determined by engine speed alone. Unless the forward thrust of the left propeller is set using an electronic gauge and the ship's behavior is confirmed, it is not possible to accurately set the reverse thrust of the right propeller using an electronic gauge.
[0012] Furthermore, when setting up lateral maneuvering on the right side, in addition to setting the thrust of the left and right propellers, it is also necessary to set the rudder angles of the left and right propellers. The rudder angles of the left and right outboard motors are spread out to the left and right in an inverted V shape, with the left propeller outputting forward thrust and the right propeller outputting reverse thrust. The intersection of the centerlines of the left and right propellers, which are tilted in an inverted V shape, is at the center of gravity of the hull, and the thrust parameters are set so that the forward and reverse thrusts are balanced with respect to the center of gravity of the hull. In this case as well, the rudder angles of the left and right propellers, the forward thrust of the left propeller, and the reverse thrust of the right propeller must be set individually while checking the behavior of the hull.
[0013] By changing the rudder angles of the left and right propulsion units, the forward and backward thrusts with respect to the center of gravity of the hull change. If the left-right thrust balance of the propulsion units is disrupted, the thrust balance must be readjusted. Until the desired lateral movement maneuvering is finally achieved, the rudder angles of the left and right propulsion units, the forward thrust of the left propulsion unit, and the backward thrust of the right propulsion unit are repeatedly set, and a huge amount of time may be spent on the initial setting of the thrust parameters for the left and right propulsion units. Therefore, in the maneuvering system of this embodiment, in order to reduce the workload of the setting operation and shorten the operation time, it is possible to simultaneously set the forward and backward thrusts of the left and right propulsion units while checking the behavior of the hull.
[0014] Hereinafter, the maneuvering system of this embodiment will be described with reference to the accompanying drawings. FIG. 1 is a configuration diagram of the maneuvering system of this embodiment. FIG. 2 is an allocation table of device operations for each maneuvering pattern of this embodiment. FIG. 3 is an explanatory diagram of the initial setting operation of the turning maneuvering of this embodiment. FIGS. 4 and 5 are explanatory diagrams of the initial setting operation of the lateral movement maneuvering of this embodiment. FIG. 6 is a setting table of thrusts for each maneuvering pattern.
[0015] As shown in FIG. 1, the maneuvering system 1 is communicably connected via CAN (Controller Area Network) with an electronic gauge 11, a joystick 15, a steering ECU 16, a remote control ECU 17, and engine ECUs 25L and 25R. On the rear part of the hull, left and right propulsion units 2L and 2R are attached, and propellers 22L and 22R are rotated by the engines of the propulsion units 2L and 2R to apply thrust to the hull. The propulsion units 2L and 2R are steered left and right by steering actuators 23L and 23R, and the rudder angles of the propulsion units 2L and 2R are detected by rudder angle sensors 24L and 24R.
[0016] In addition to functioning as a display device, the electronic gauge 11 also functions as an input device (first input device) for forward thrust adjustment. An operation button 13 is provided below the display 12 of the electronic gauge 11, and the operation button 13 of the electronic gauge 11 accepts screen switching and mode changes of the display 12. In the normal mode, the electronic gauge 11 is used to check information necessary for ship operation such as engine speed, and in the setting mode, the electronic gauge 11 is used to perform initial settings of forward thrust parameters for the propulsion units 2L and 2R and to check setting information. In the setting mode, initial settings for turning maneuvers and initial settings for lateral movement maneuvers are performed.
[0017] When the electronic gauge 11 switches from the normal mode to the setting mode, a request signal for the setting mode is transmitted from the electronic gauge 11 to the joystick 15 via CAN, and the joystick 15 also shifts to the setting mode. At this time, the operation button 13 of the electronic gauge 11 accepts input of forward thrust parameters for the propulsion units 2L and 2R. The forward thrust parameters are transmitted from the electronic gauge 11 to the joystick 15 via CAN. Note that the display 12 of the electronic gauge 11 may be configured as a touch panel, and the touch display may accept input of forward thrust parameters.
[0018] In addition to functioning as a ship control device, the joystick 15 also functions as an input device (second input device) for reverse thrust adjustment and rudder angle adjustment. In the normal mode, the joystick 15 is used for ship movement, and in the setting mode, the joystick 15 is used for initial settings of reverse thrust parameters and rudder angle parameters for the propulsion units 2L and 2R. A joystick controller (not shown) is provided on the joystick 15, and a rudder angle control signal and a throttle control signal are calculated by the joystick controller according to the operation position of the joystick 15.
[0019] In normal mode, steering angle control signals and throttle control signals are determined by the direction and amount of operation of the joystick 15. The steering angle control signal is transmitted from the joystick 15 to the steering ECU 16 via CAN, and based on the steering angle control signal, power is supplied from the steering ECU 16 to the steering actuators 23L and 23R to control the steering angle of the thrusters 2L and 2R. The throttle control signal is transmitted from the joystick 15 to the engine ECUs 25L and 25R via the remote control ECU 17 through CAN, and based on the throttle control signal, the thrust force of the thrusters 2L and 2R is controlled by the engine ECUs 25L and 25R.
[0020] In setting mode, the joystick 15 accepts basic steering patterns. For example, in the case of turning, it accepts twisting operations of the joystick 15, and in the case of lateral movement, it accepts left and right tilt operations of the joystick 15. During the basic steering pattern operations, the joystick 15 also accepts input for the reverse thrust parameters and rudder angle parameters of the propulsion engines 2L and 2R. This allows the reverse thrust parameters and rudder angle parameters to be set while steering without taking your hands off the joystick 15. The method for setting each control parameter will be described later.
[0021] As described above, the joystick 15 receives forward thrust parameters from the electronic gauge 11 via CAN. Throttle control signals are obtained from the forward and reverse thrust parameters and transmitted to the engine ECUs 25L and 25R via the remote control ECU 17, and rudder angle control signals are obtained from the rudder angle parameters and transmitted to the steering ECU 16. The thrust and rudder angle of the propellers 2L and 2R are controlled according to the steering pattern. Each control parameter of the joystick 15 is also notified to the electronic gauge 11 via CAN, and each control parameter can be checked in real time by viewing the display 12 of the electronic gauge 11.
[0022] The steering ECU 16 and remote control ECU 17 function as controllers that reflect rudder angle parameters, forward thrust parameters, and reverse thrust parameters to the propulsion engines 2L and 2R in real time. Since each part of the ship handling system 1 communicates via CAN, real-time setting changes are possible. Thus, when setting the ship handling pattern in setting mode, the electronic gauge 11 and joystick 15 accept input in parallel. By simultaneously setting the forward thrust parameters and reverse thrust parameters while monitoring the ship's behavior, the workload and time required for setting the ship handling pattern are reduced.
[0023] The forward thrust parameter is expressed as a percentage of the maximum output (maximum thrust) of the 2L and 2R thrusters. The reverse thrust parameter is expressed as a percentage of the maximum output (maximum thrust) of the 2L and 2R thrusters. The rudder angle parameter is expressed as the angle between the longitudinal direction of the hull and the thrust direction of the 2L and 2R thrusters. The wider the rudder angle, the more the 2L and 2R thrusters open outwards, and the narrower the rudder angle, the more the 2L and 2R thrusters close inwards. As will be explained in more detail later, in setting mode, the maximum output of the 2L and 2R thrusters can be set to two levels: high and low.
[0024] Furthermore, the processing of each part of the ship handling system 1 may be implemented by software using a processor, or by logic circuits (hardware) formed on an integrated circuit or the like. When a processor is used, various processes are carried out by the processor reading and executing a program stored in memory. For example, a CPU (Central Processing Unit) is used as the processor. The memory is composed of one or more storage media such as ROM (Read Only Memory) and RAM (Random Access Memory), depending on the application.
[0025] As shown in Figure 2, when the electronic gauge 11 and joystick 15 are switched to setting mode, control parameter setting operations are assigned according to the maneuvering pattern. When the maneuvering pattern is turning, the twisting operation of the joystick 15 is the basic operation (see Figure 3(A)). While the joystick 15 is being twisted, the input of the forward thrust parameter is assigned to the electronic gauge 11, and the input of the reverse thrust parameter is assigned to the joystick 15. The forward and backward tilting operation of the joystick 15 is ineffective as a maneuvering operation, but is effective as an input operation for the reverse thrust parameter.
[0026] When the joystick 15 is twisted, pressing the up button 13a of the electronic gauge 11 increases the forward thrust parameter by one level, and pressing the down button 13b of the electronic gauge 11 decreases the forward thrust parameter by one level. When the joystick 15 is tilted backward and then returned to its original position while the joystick 15 is twisted, the reverse thrust parameter increases by one level, and when the joystick 15 is tilted forward and then returned to its original position, the reverse thrust parameter decreases by one level. Both the forward and reverse thrust parameters can be set simultaneously while the joystick 15 is twisted.
[0027] Thus, when setting up the turning maneuver, the forward thrust parameter is input by operating the electronic gauge 11 while twisting the joystick 15, and the reverse thrust parameter is input by tilting the joystick 15 forward or backward while twisting it. If the twisting operation of the joystick 15 is released during the setting mode, and the joystick 15 is tilted forward or backward from the neutral position, the thrust of the propellers 2L and 2R is output according to the amount of joystick 15 operation, just as in the normal mode. This allows for quick avoidance of approaching other ships or obstacles even during the setting mode.
[0028] As shown in Figure 3(A), during a turn to the right, the left-side thruster 2L outputs forward thrust, and the right-side thruster 2R outputs reverse thrust. In order to turn the ship without moving the hull forward or backward by twisting the joystick 15 clockwise, it is necessary to set the forward thrust parameter of thruster 2L and the reverse thrust parameter of thruster 2R so that the forward thrust of thruster 2L and the reverse thrust of thruster 2R are balanced. In this case, the behavior during turning will differ depending on the specifications of the hull, so the forward thrust parameter and reverse thrust parameter are set while checking the behavior of the hull.
[0029] As shown in Figure 3(B), when the hull turns to the right while moving forward, it is necessary to reduce the forward thrust of propeller 2L or increase the reverse thrust of propeller 2R. Therefore, with the joystick 15 twisted, the forward thrust parameter is reduced by pressing the down button 13b of the electronic gauge 11, or the reverse thrust parameter is increased by tilting the joystick 15 to the rear. Whether to use the electronic gauge 11 or the joystick 15 is appropriately selected according to the hull's turning speed. For example, if the hull's turning speed is too fast, the forward thrust parameter is reduced using the electronic gauge 11 to adjust the turning speed.
[0030] As shown in Figure 3(C), when the hull turns to the right while moving in reverse, it is necessary to increase the forward thrust of propeller 2L or decrease the reverse thrust of propeller 2R. For this reason, with the joystick 15 twisted, the forward thrust parameter is increased by pressing the up button 13a of the electronic gauge 11, or the reverse thrust parameter is decreased by tilting the joystick 15 forward. The choice between using the electronic gauge 11 and the joystick 15 is appropriately selected according to the hull's turning speed. For example, if the hull's turning speed is too fast, the reverse thrust parameter is reduced using the joystick 15 to adjust the turning speed.
[0031] Returning to Figure 2, when the steering pattern is lateral movement, the basic operation is tilting the joystick 15 left and right (see Figure 4(A)). While tilting the joystick 15 left and right, the input of the forward thrust parameter is assigned to the electronic gauge 11, and the input of the reverse thrust parameter and the rudder angle parameter is assigned to the joystick 15. Tilting the joystick 15 forward and backward is ineffective for steering, but is effective for inputting the reverse thrust parameter. Also, twisting the joystick 15 is ineffective for steering, but is effective for inputting the rudder angle parameter.
[0032] When the joystick 15 is tilted left or right, pressing the up button 13a of the electronic gauge 11 increases the forward thrust parameter by one level, and pressing the down button 13b of the electronic gauge 11 decreases the forward thrust parameter by one level. When the joystick 15 is tilted left or right and then returned to its original position, tilting the joystick 15 backward increases the reverse thrust parameter by one level, and tilting the joystick 15 forward and then returned to its original position decreases the reverse thrust parameter by one level. Both the forward and reverse thrust parameters can be set simultaneously while the joystick 15 is tilted left or right.
[0033] Furthermore, when the joystick 15 is tilted to the right, if the joystick 15 is twisted to the left and then returned to its original position, the rudder angle parameter increases by one level (opens), and if the joystick 15 is twisted to the right and then returned to its original position, the rudder angle parameter decreases by one level (closes). When the joystick 15 is tilted to the left, if the joystick 15 is twisted to the right and then returned to its original position, the rudder angle parameter increases by one level, and if the joystick 15 is twisted to the left and then returned to its original position, the rudder angle parameter decreases by one level. In other words, if the joystick 15 is twisted to the opposite side of the tilt, the rudder angle parameter increases, and if the joystick 15 is twisted to the same side as the tilt, the rudder angle parameter decreases.
[0034] Thus, when setting up lateral maneuvering, the forward thrust parameter is input by operating the electronic gauge 11 while tilting the joystick 15 left or right, and the reverse thrust parameter is input by tilting the joystick 15 left or right while also tilting it forward or backward. Furthermore, the rudder angle parameter is input by twisting the joystick 15 while tilting it left or right. If the left or right tilting operation of the joystick 15 is released during setting mode, and the joystick 15 is tilted forward or backward from the neutral position, the thrust of the propellers 2L and 2R is output according to the amount of joystick 15 operation, as in normal mode.
[0035] As shown in Figure 4(A), during lateral maneuvering to the right, the left and right thrusters 2L and 2R are spread out to the left and right in an inverted V shape, with the left thruster 2L outputting forward thrust and the right thruster 2R outputting reverse thrust. In order to move the ship laterally without moving the hull forward or backward by tilting the joystick 15 to the right, it is necessary to set the forward thrust parameter of thruster 2L and the reverse thrust parameter of thruster 2R so that the forward thrust of thruster 2L and the reverse thrust of thruster 2R are balanced. In this case, the behavior during lateral maneuvering differs depending on the specifications of the hull, so the forward thrust parameter and reverse thrust parameter are set while checking the behavior of the hull.
[0036] As shown in Figure 4(B), when the hull moves diagonally forward to the right, it is necessary to reduce the forward thrust of propeller 2L or increase the reverse thrust of propeller 2R. Therefore, with the joystick 15 tilted to the right, the forward thrust parameter is reduced by pressing the down button 13b of the electronic gauge 11, or the reverse thrust parameter is increased by tilting the joystick 15 backward. Whether to use the electronic gauge 11 or the joystick 15 is appropriately selected according to the hull's lateral movement speed. For example, if the hull's lateral movement speed is too fast, the forward thrust parameter is reduced using the electronic gauge 11 to adjust the turning speed.
[0037] As shown in Figure 4(C), when the hull moves diagonally to the right and rear, it is necessary to increase the forward thrust of propeller 2L or decrease the reverse thrust of propeller 2R. For this reason, with the joystick 15 tilted to the right, the forward thrust parameter is increased by pressing the up button 13a of the electronic gauge 11, or the reverse thrust parameter is decreased by tilting the joystick 15 forward. The choice of whether to use the electronic gauge 11 or the joystick 15 is appropriately selected according to the hull's lateral movement speed. For example, if the hull's lateral movement speed is too fast, the reverse thrust parameter is decreased with the joystick 15 to adjust the turning speed.
[0038] As shown in Figure 5(A), when the hull moves to the right while swinging its stern, the rudder angles of the propellers 2L and 2R need to be closed (narrowed). Therefore, with the joystick 15 tilted to the right, twisting the joystick 15 to the right decreases the rudder angle parameter. As shown in Figure 5(B), when the hull moves to the right while swinging its bow, the rudder angles of the propellers 2L and 2R need to be opened (widened). Therefore, with the joystick 15 tilted to the right, twisting the joystick 15 to the left increases the rudder angle parameter.
[0039] Incidentally, during normal operation, the output of the thrusters 2L and 2R changes according to the amount of movement of the joystick 15. In contrast, when setting a steering pattern in setting mode, the forward and reverse thrusts are adjusted based on a constant output of the thrusters 2L and 2R, regardless of the amount of movement of the joystick 15. The electronic gauge 11 sets the upper limit output of the thrusters 2L and 2R to two levels, high and low, and the forward and reverse thrusts of the thrusters 2L and 2R are adjusted based on forward thrust parameters and reverse thrust parameters that indicate the ratio to the upper limit output. This allows the user to concentrate on setting the steering pattern without having to be conscious of the amount of movement of the joystick 15.
[0040] As shown in Figure 6, when the steering pattern is a turning maneuver, the electronic gauge 11 sets the upper limit output to two levels, high and low, in response to the twisting operation of the joystick 15. When the upper limit output is set to "low," the forward and reverse thrust of the propellers 2L and 2R are adjusted based on the thrust parameters, using the "low" upper limit output as a reference, regardless of the amount of twisting operation of the joystick 15. When the upper limit output is set to "high," the forward and reverse thrust of the propellers 2L and 2R are adjusted based on the thrust parameters, using the "high" upper limit output as a reference, regardless of the amount of twisting operation of the joystick 15.
[0041] When the steering pattern is lateral movement, the electronic gauge 11 sets the upper limit output to two levels, high and low, in response to the left and right tilting operation of the joystick 15. When the upper limit output is set to "low," the forward and reverse thrust of the propellers 2L and 2R are adjusted based on the thrust parameters, using the "low" upper limit output as a reference, regardless of the amount of tilting operation of the joystick 15. When the upper limit output is set to "high," the forward and reverse thrust of the propellers 2L and 2R are adjusted based on the thrust parameters, using the "high" upper limit output as a reference, regardless of the amount of tilting operation of the joystick 15.
[0042] Referring to Figures 7 to 10, the setting operations for turning and lateral maneuvering will be explained. Figure 7 is a flowchart showing the setting operation for turning in a comparative example. Figure 8 is a flowchart showing the setting operation for turning in this embodiment. Figure 9 is a flowchart showing the setting operation for lateral maneuvering in a comparative example. Figure 10 is a flowchart showing the setting operation for lateral maneuvering in this embodiment. Note that the setting operation for the maneuvering pattern in the comparative example differs from the setting operation for the maneuvering pattern in this embodiment in that forward thrust, reverse thrust, and rudder angle are set using a single electronic gauge.
[0043] As shown in Figure 7, in the initial setup for the comparative example's rightward turning maneuver, turning maneuver is selected in the setting mode (step S01), and the joystick is twisted to the right (step S02). When the hull turns to the right while moving forward (Yes in step S03), the electronic gauge selects either the forward thrust or reverse thrust setting item (step S04). If the forward thrust setting item is selected, the forward thrust parameter is decreased by the input operation of the electronic gauge (step S05). If the reverse thrust setting item is selected, the reverse thrust parameter is increased by the input operation of the electronic gauge (step S06). The output of the left and right thrusters is changed according to the forward thrust parameter or reverse thrust parameter (step S07).
[0044] When the hull turns to the right while moving in reverse (Yes in step S08), the electronic gauge selects either the forward thrust or reverse thrust setting (step S09). If the forward thrust setting is selected, the forward thrust parameter is increased by the input operation of the electronic gauge (step S10). If the reverse thrust setting is selected, the reverse thrust parameter is decreased by the input operation of the electronic gauge (step S11). The output of the left and right thrusters is changed according to the forward thrust parameter or reverse thrust parameter (step S12). Note that in steps S04 and S09, the forward thrust or reverse thrust setting is appropriately selected according to the hull's turning speed.
[0045] During the turning maneuver, the process from steps S03 to S12 is repeated until the forward or reverse movement of the hull stops. If the hull turns to the right without changing its position (No in step S03, No in step S08), the setting process for the turning maneuver in the setting mode is completed (step S13). In the initial setting of the turning maneuver in the comparative example, only one setting item can be selected by the electronic gauge in steps S04 and S09. Therefore, it is necessary to set the forward thrust and reverse thrust separately, and depending on the behavior of the hull, setting the thrust can take a long time. Also, since the joystick is operated with one hand, complex gauge operations such as changing setting items must be performed with the other hand.
[0046] In contrast, as shown in Figure 8, in the initial setting of turning the ship to the right in this embodiment, turning the ship is selected in the setting mode (step S21), and the joystick 15 is twisted to the right (step S22). When the ship turns to the right while moving forward (Yes in step S23), the input operation of the forward thrust parameter by the electronic gauge 11 and the input operation of the reverse thrust parameter by the joystick 15 are performed in parallel. The input operation of the electronic gauge 11 decreases the forward thrust parameter (step S24), and the joystick 15 is tilted backward to increase the reverse thrust parameter (step S25). The output of the propeller 2L is changed according to the forward thrust parameter (step S26), and the output of the propeller 2R is changed according to the reverse thrust parameter (step S27).
[0047] When the hull turns to the right while moving in reverse (Yes in step S28), the input operation of the forward thrust parameter using the electronic gauge 11 and the input operation of the reverse thrust parameter using the joystick 15 are performed in parallel. The input operation of the electronic gauge 11 increases the forward thrust parameter (step S29), and the joystick 15 is tilted forward to decrease the reverse thrust parameter (step S30). The output of the propeller 2L is changed according to the forward thrust parameter (step S31), and the output of the propeller 2R is changed according to the reverse thrust parameter (step S32). Note that the input operation of the electronic gauge 11 or the joystick 15 in steps S24, S25, S29, and S30 is performed as appropriate according to the turning speed of the hull.
[0048] The process from step S23 to step S32 is repeated until the forward or reverse movement of the hull stops during the turning maneuver. If the hull turns to the right without changing its position (No in step S23, No in step S28), the setting operation for the turning maneuver in the setting mode is completed (step S33). In the initial setting of the turning maneuver in this embodiment, the input operations for the forward thrust parameter and the reverse thrust parameter are assigned to the electronic gauge 11 and the joystick 15. Therefore, the forward thrust parameter and the reverse thrust parameter can be set simultaneously while checking the behavior of the ship, reducing the workload of the setting operation and shortening the working time. The thrust can be intuitively increased or decreased by twisting and tilting the joystick 15 forward or backward.
[0049] As shown in Figure 9, in the comparative example of lateral maneuvering to the right, lateral maneuvering is selected in the setting mode (step S41), and the joystick is tilted to the right (step S42). When the hull moves to the right while swinging its bow (Yes in step S43), the rudder angle setting item is selected by the electronic gauge (step S44). The rudder angle parameter is increased by the input operation of the electronic gauge (step S45), and the rudder angles of the left and right propellers are widened (step S46). When the hull moves to the right while swinging its stern (Yes in step S47), the rudder angle setting item is selected by the electronic gauge (step S48). The rudder angle parameter is decreased by the input operation of the electronic gauge (step S49), and the rudder angles of the left and right propellers are narrowed (step S50).
[0050] During lateral maneuvering, the processes from steps S43 to S50 are repeated until the bow or stern of the hull settles down. When the hull moves to the right while moving forward (Yes in step S51), the electronic gauge selects either the forward thrust or reverse thrust setting item (step S52). If the forward thrust setting item is selected, the forward thrust parameter is decreased by the input operation of the electronic gauge (step S53). If the reverse thrust setting item is selected, the reverse thrust parameter is increased by the input operation of the electronic gauge (step S54). The output of the left and right thrusters is changed according to the forward thrust parameter or reverse thrust parameter (step S55).
[0051] When the hull moves to the right while moving in reverse (Yes in step S56), the electronic gauge selects either the forward thrust or reverse thrust setting (step S57). If the forward thrust setting is selected, the forward thrust parameter is increased by the input operation of the electronic gauge (step S58). If the reverse thrust setting is selected, the reverse thrust parameter is decreased by the input operation of the electronic gauge (step S59). The output of the left and right thrusters is changed according to the forward thrust parameter or reverse thrust parameter (step S60). Note that in steps S52 and S57, the forward thrust or reverse thrust setting is appropriately selected according to the lateral movement speed of the hull.
[0052] During lateral maneuvering, the process from step S43 to step S60 is repeated until the forward or reverse movement of the hull stops. If the hull moves to the right without moving forward or backward (No in step S51, No in step S56), the setting process for lateral maneuvering in setting mode is completed (step S61). In the initial setting of lateral maneuvering in the comparative example, only one setting item can be selected by the electronic gauge in steps S52 and S57. Therefore, it is necessary to set the forward thrust and reverse thrust separately, and depending on the behavior of the hull, setting the thrust can take a long time. Also, since the joystick is operated with one hand, complex gauge operations such as changing setting items must be performed with the other hand.
[0053] In contrast, as shown in Figure 10, in the lateral maneuvering to the right in this embodiment, lateral maneuvering is selected in the setting mode (step S71), and the joystick 15 is tilted to the right (step S72). When the hull moves to the right while swinging its bow (Yes in step S73), the joystick 15 is twisted to the left, increasing the rudder angle parameter (step S74), and widening the rudder angles of the propellers 2L and 2R (step S75). When the hull moves to the right while swinging its stern (Yes in step S76), the joystick 15 is twisted to the right, decreasing the rudder angle parameter (step S77), and narrowing the rudder angles of the propellers 2L and 2R (step S78).
[0054] During lateral maneuvering, the processes from steps S73 to S78 are repeated until the bow or stern of the hull settles down. When the hull moves to the right while moving forward (Yes in step S79), the input operation of the forward thrust parameter by the electronic gauge 11 and the input operation of the reverse thrust parameter by the joystick 15 are performed in parallel. The input operation of the electronic gauge 11 decreases the forward thrust parameter (step S80), and the joystick 15 is tilted backward to increase the reverse thrust parameter (step S81). The output of the propeller 2L is changed according to the forward thrust parameter (step S82), and the output of the propeller 2R is changed according to the reverse thrust parameter (step S83).
[0055] As the hull moves to the right while moving in reverse (Yes in step S84), the input operation of the forward thrust parameter using the electronic gauge 11 and the input operation of the reverse thrust parameter using the joystick 15 are performed in parallel. The input operation of the electronic gauge 11 increases the forward thrust parameter (step S85), and the joystick 15 is tilted forward, decreasing the reverse thrust parameter (step S86). The output of the propeller 2L is changed according to the forward thrust parameter (step S87), and the output of the propeller 2R is changed according to the reverse thrust parameter (step S88). Note that the input operation of the electronic gauge 11 or the joystick 15 in steps S80, S81, S85, and S86 is performed as appropriate according to the lateral movement speed of the hull.
[0056] The process from step S73 to step S88 is repeated until the forward or reverse movement of the hull stops during lateral maneuvering. If the hull moves to the right without moving forward or backward (No in step S79, No in step S84), the setting operation for lateral maneuvering in setting mode is completed (step S89). In the initial setting of lateral maneuvering in this embodiment, the input operations for the forward thrust parameter and the reverse thrust parameter are assigned to the electronic gauge 11 and the joystick 15. Therefore, the forward thrust parameter and the reverse thrust parameter can be set simultaneously while checking the behavior of the vessel, reducing the workload of the setting operation and shortening the working time. The thrust can be intuitively increased or decreased by tilting the joystick 15 left or right and then tilting it forward or backward, and the rudder angle can be intuitively opened or closed by tilting the joystick 15 left or right and then twisting it.
[0057] As described above, with the ship handling system 1 of this embodiment, forward thrust parameters and reverse thrust parameters are input in parallel by the electronic gauge 11 and joystick 15 when setting the ship handling pattern, and the forward thrust parameters and reverse thrust parameters are reflected in the propulsion engines 2L and 2R in real time. The forward thrust parameters and reverse thrust parameters can be set simultaneously while checking the behavior of the ship. Therefore, the workload for setting the forward thrust parameters and reverse thrust parameters can be reduced and the work time can be shortened.
[0058] In this embodiment, the forward thrust parameter was input by an electronic gauge and the reverse thrust parameter was input by a joystick; however, the reverse thrust parameter may be input by an electronic gauge and the forward thrust parameter by a joystick.
[0059] Furthermore, although this embodiment describes a configuration in which the first input device is an electronic gauge, the first input device can be any device that accepts input of either the forward thrust parameter or the reverse thrust parameter of the propulsion system.
[0060] Furthermore, although this embodiment describes a configuration in which the second input device is a joystick, the second input device can be any device that accepts input for either the forward thrust parameter or the reverse thrust parameter of the propulsion system. For example, the ship steering system may be provided with two input devices in addition to the joystick.
[0061] Furthermore, although this embodiment describes a configuration in which the controller consists of a steering ECU and a remote control ECU, the controller only needs to reflect the forward thrust parameters and reverse thrust parameters to the propulsion system in real time.
[0062] Furthermore, in this embodiment, the propulsion system may be an outboard motor, an inboard / outboard motor, or an inboard motor.
[0063] Furthermore, in this embodiment, various parameters were input by tilting and twisting the joystick, but various parameters may also be input by operation buttons provided on the joystick.
[0064] Furthermore, in this embodiment, the settings for the ship handling pattern may be uploaded to an external server or stored on an external storage medium. This allows the settings for the ship handling pattern to be applied to vessels of the same type.
[0065] As described above, the first embodiment is a ship handling system (1) for a ship equipped with left and right thrusters (2L, 2R), comprising: a first input device (electronic gauge 11) that accepts input of either the forward thrust parameter or the reverse thrust parameter of the thruster; a second input device (joystick 15) that accepts input of the other of the forward thrust parameter or the reverse thrust parameter of the thruster; and a controller (remote control ECU 17) that reflects the forward thrust parameter and the reverse thrust parameter to the thruster in real time, wherein the first and second input devices accept input in parallel when setting the ship handling pattern. With this configuration, the forward thrust parameter and the reverse thrust parameter are input in parallel by the first and second input devices when setting the ship handling pattern, and the forward thrust parameter and the reverse thrust parameter are reflected to the thruster in real time. The forward thrust parameter and the reverse thrust parameter can be set simultaneously while checking the behavior of the ship. Therefore, the workload for setting the forward thrust parameter and the reverse thrust parameter can be reduced and the work time can be shortened.
[0066] In the second embodiment, as in the first embodiment, the second input device receives input for the propulsion engine's rudder angle parameter, and the controller (steering ECU 16) reflects the rudder angle parameter to the propulsion engine in real time. With this configuration, the rudder angle parameter can be set while checking the behavior of the ship.
[0067] A third embodiment is a configuration in which the first input device is a gauge capable of displaying forward thrust parameters and reverse thrust parameters. With this configuration, the forward thrust parameters and reverse thrust parameters can be checked in real time by visually observing the gauge. Furthermore, there is no need to prepare a dedicated display device.
[0068] The fourth embodiment is a configuration in which the second input device is a joystick, in any one of the first to third embodiments. With this configuration, the number of parts can be reduced by using a joystick as the second input device. The forward thrust parameter or reverse thrust parameter can be set while steering the vessel without taking your hand off the joystick.
[0069] The fifth aspect is that, in the fourth aspect, the steering pattern is a turning maneuver, and when setting the turning maneuver, the first input device accepts input of either the forward thrust parameter or the reverse thrust parameter by operating the first input device while twisting the joystick, and when setting the turning maneuver, the joystick accepts input of the other of the forward thrust parameter or the reverse thrust parameter by tilting the joystick forward or backward while twisting it. With this configuration, the forward thrust parameter or the reverse thrust parameter can be input by an operation different from steering operation using the joystick. The thrust can be intuitively increased or decreased by tilting the joystick forward or backward while twisting it.
[0070] The sixth aspect is, in the fourth or fifth aspect, the steering pattern is lateral steering, and when setting lateral steering, the first input device accepts input of either the forward thrust parameter or the reverse thrust parameter by operating the first input device while tilting the joystick left or right, and when setting lateral steering, the joystick accepts input of the other of the forward thrust parameter or the reverse thrust parameter by tilting the joystick left or right and then tilting it forward or backward. With this configuration, the forward thrust parameter or the reverse thrust parameter can be input by an operation different from steering operation with the joystick. The thrust can be intuitively increased or decreased by tilting the joystick left or right and then tilting it forward or backward.
[0071] The seventh embodiment is one of the fourth to sixth embodiments, in which, when setting the steering pattern, the forward and reverse thrusts are adjusted based on a constant output of the propulsion system, regardless of the amount of joystick movement. With this configuration, the operator can concentrate on setting the steering pattern without having to be conscious of the amount of joystick movement.
[0072] The eighth aspect is one of the fourth to seventh aspects, in which the steering pattern is lateral movement of the vessel, and the rudder angle parameter is input by tilting and twisting the joystick left and right when setting the lateral steering. With this configuration, the rudder angle parameter can be input by an operation different from steering operation using the joystick. The opening and closing of the rudder angle can be set intuitively by tilting and twisting the joystick left and right.
[0073] The ninth embodiment is one of the embodiments from the fourth to the seventh embodiment, in which, when the joystick is tilted forward or backward from the neutral position when setting the steering pattern, the thrust of the propulsion system is output according to the amount of joystick operation. With this configuration, approaching other ships or obstacles can be quickly avoided even when setting the steering pattern.
[0074] The tenth embodiment is a method for setting control parameters of a vessel equipped with left and right propulsion systems, comprising the steps of: receiving input of either the forward thrust parameter or the reverse thrust parameter of the propulsion system at a first input device when setting a maneuvering pattern; receiving input of the other of the forward thrust parameter or the reverse thrust parameter at a second input device in parallel with the input at the first input device; and reflecting the forward thrust parameter and the reverse thrust parameter to the propulsion system in real time. With this configuration, the forward thrust parameter and the reverse thrust parameter are input in parallel by the first and second input devices when setting a maneuvering pattern, and the forward thrust parameter and the reverse thrust parameter are reflected to the propulsion system in real time. The forward thrust parameter and the reverse thrust parameter can be set simultaneously while checking the behavior of the vessel. Therefore, the workload of setting the forward thrust parameter and the reverse thrust parameter can be reduced and the work time can be shortened.
[0075] In the 11th embodiment, in the step of receiving input, the rudder angle parameter of the propulsion system is received by a second input device, and in the step of reflecting it in the propulsion system, the rudder angle parameter is reflected in the propulsion system in real time. With this configuration, the rudder angle parameter can be set while checking the behavior of the ship.
[0076] Although this embodiment has been described, other embodiments may include combinations of the above embodiment and its modifications, either entirely or partially.
[0077] Furthermore, the technology of the present invention is not limited to the embodiments described above, and may be modified, substituted, or transformed in various ways without departing from the spirit of the technical idea. Moreover, if the technical idea can be realized in a different way by advances in the technology or by other derived technologies, it may be implemented by that method. Accordingly, the claims cover all embodiments that may fall within the scope of the technical idea. [Explanation of Symbols]
[0078] 1: Ship handling system 2L: Propulsion machine 2R: Propulsion machine 11: Electronic gauge (first input device) 15: Joystick (second input device) 16: Steering ECU (Controller) 17: Remote Control ECU (Controller)
Claims
1. A ship steering system for a vessel equipped with left and right propulsion systems, A first input device that accepts input of either the forward thrust parameter or the reverse thrust parameter of the propulsion machine, A second input device that accepts input of either the forward thrust parameter or the reverse thrust parameter of the propulsion machine, The system includes a controller that reflects forward thrust parameters and reverse thrust parameters to the propulsion system in real time, A ship handling system characterized in that the first input device and the second input device accept inputs in parallel when setting a ship handling pattern.
2. The second input device receives input of the rudder angle parameter of the propulsion machine, The ship handling system according to claim 1, characterized in that the controller reflects the rudder angle parameter to the propulsion system in real time.
3. The ship handling system according to claim 1 or 2, characterized in that the first input device is a gauge capable of displaying forward thrust parameters and reverse thrust parameters.
4. The ship steering system according to claim 1 or 2, characterized in that the second input device is a joystick.
5. The maneuvering pattern is a turning maneuver. When setting up a turning maneuver, the joystick is twisted while operating the first input device, causing the first input device to accept input of either the forward thrust parameter or the reverse thrust parameter. The steering system according to claim 4, characterized in that when setting up a turning maneuver, the joystick is twisted and tilted forward or backward, causing the joystick to accept input of either the forward thrust parameter or the reverse thrust parameter.
6. The maneuvering pattern is lateral movement. When setting up lateral maneuvering, the first input device is operated while tilting the joystick left or right, thereby allowing the first input device to accept either the forward thrust parameter or the reverse thrust parameter. The ship handling system according to claim 4, characterized in that when setting up lateral movement, the joystick is tilted left and right while also tilting forward and backward, causing the joystick to accept input of either the forward thrust parameter or the reverse thrust parameter.
7. The ship handling system according to claim 4, characterized in that when setting a ship handling pattern, the forward thrust and reverse thrust are adjusted based on a constant output of the propulsion system regardless of the amount of operation of the joystick.
8. The maneuvering pattern is the lateral movement of the ship. The steering system according to claim 4, characterized in that when setting lateral steering, the joystick is tilted left and right and twisted to accept input of rudder angle parameters.
9. The ship handling system according to claim 4, characterized in that when the joystick is tilted forward or backward from the neutral position when setting a ship handling pattern, the thrust of the propulsion system is output according to the amount of operation of the joystick.
10. A method for setting control parameters of a ship equipped with left and right propulsion systems, The process involves, when setting the steering pattern, receiving input of either the forward thrust parameter or the reverse thrust parameter of the propulsion system at a first input device, and simultaneously receiving input of the other of the forward thrust parameter or the reverse thrust parameter at a second input device, A method for setting control parameters, characterized by comprising the step of reflecting forward thrust parameters and reverse thrust parameters to the propulsion system in real time.
11. In the step of receiving input, the second input device receives the rudder angle parameter of the thruster. The method for setting control parameters according to claim 10, characterized in that the steering angle parameter is reflected in the propulsion system in real time during the step of reflecting the parameter in the propulsion system.
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