A navigation direction control system and method for an engineering vessel based on four-anchor positioning

The real-time position information of the engineering ship is obtained through the four-anchor positioning system, and plane operation planning and dynamic analysis of anchor chains are carried out, which solves the problem of artificial experience dependence in water operations of the engineering ship, realizes automatic precise direction control, and improves operation efficiency and safety.

CN119781483BActive Publication Date: 2025-08-19GUANGDONG HAIKE SHIPPING CO LTD
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Patent Information

Application Number
CN202510008771.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-03
Publication Date
2025-08-19
Estimated Expiration
2045-01-03

AI Technical Summary

Technical Problem

In the prior art, engineering ship water operations rely on manual experience and cannot achieve real-time response, resulting in low operating efficiency and insufficient safety.

Method used

The real-time position information of the engineering ship is obtained through the four-anchor positioning system, plane operation planning is carried out, initial position is determined, and dynamic changes of anchor points and anchor chains are analyzed, and operation control plans are formulated to achieve automated and precise direction control.

Benefits of technology

It improves the efficiency and intelligence of engineering ship operations, realizes accurate positioning and automated direction control of engineering ships, and reduces dependence on manual experience.

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Abstract

The present invention discloses a navigation direction control system and method for an engineering ship based on four-anchor positioning, which relates to the technical field of ship navigation direction control. The present invention obtains real-time engineering ship position information; the engineering ship position information is the latitude and longitude information of the center point of the engineering ship; plane operation planning is performed based on the engineering ship position information, the engineering ship operation planning area is determined, and the initial operation position of the ship is adjusted; the engineering ship operation area is analyzed to determine the position information of the engineering ship positioning anchor points, and the dynamic changes of the anchor chain operations corresponding to each anchor point are analyzed in combination with the engineering ship operation control angle interval, and the engineering ship operation control plan is planned; the real-time position information of the engineering ship is fed back, and the engineering ship is operated according to the operation control plan; the present invention realizes real-time determination of the operation position of the engineering ship, and after accurate anchor point positioning, the anchor chain is adjusted according to the operation requirements to realize automatic and accurate direction control of the operation ship.
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Description

Technical Field

[0001] The present invention relates to the field of ship navigation direction control, and in particular to a navigation direction control system and method for an engineering ship based on four-anchor positioning. Background Art

[0002] The use of four-anchor positioning to control the navigation direction of engineering ships is achieved by arranging four anchor points around the hull and accurately controlling the tension and length of the anchor chain, so as to achieve precise positioning and direction control of the engineering ship in the water, ensure the smooth progress of engineering operations, and improve operational efficiency and safety; the demand for navigation or operations in waters is gradually increasing, and the requirements for the accuracy and stability of engineering ships in water operations are gradually increasing. At this stage, when engineering ships are operating in waters, operators are required to adjust the engineering ships in real time according to operational needs. This relies too much on the experience of operators and cannot respond to the status of the engineering ships in real time, which is not conducive to the efficient development of operations. Summary of the Invention

[0003] The object of the present invention is to provide a navigation direction control system and method for an engineering vessel based on four-anchor positioning, so as to solve the problems raised in the prior art.

[0004] To achieve the above object, the present invention provides the following technical solutions:

[0005] A method for controlling the navigation direction of an engineering vessel based on four-anchor positioning, the method comprising the following steps:

[0006] S100, obtaining real-time engineering vessel location information; the engineering vessel location information is the latitude and longitude information of the center point of the engineering vessel;

[0007] S200, performing planar operation planning based on the engineering vessel position information, determining the engineering vessel operation planning area, and adjusting the vessel's initial operation position;

[0008] S300, analyzing the engineering vessel operation area to determine the position information of the engineering vessel's positioning anchor points, analyzing the dynamic changes of the anchor chain operation corresponding to each anchor point in combination with the engineering vessel's operation control angle range, and planning the engineering vessel operation control plan;

[0009] S400: Feedback the real-time position information of the engineering vessel and execute the operation on the engineering vessel according to the operation control plan.

[0010] The specific steps of S100 are as follows:

[0011] S101. Acquire real-time location information of the engineering vessel based on an engineering vessel positioning device and visualize it using longitude and latitude; the engineering vessel positioning device includes a positioning system such as GPS or Beidou system;

[0012] S102, constructing a coordinate plane to perform coordinate transformation on the position information of the engineering vessel, with the center position of the engineering vessel as the coordinate origin; wherein the coordinate system is determined with the central axis of the engineering vessel as the longitudinal axis.

[0013] The specific steps of S200 are as follows:

[0014] S201, obtaining the location information of the engineering vessel's operating area based on the engineering vessel's operating task information, and marking the engineering vessel's operating area based on a coordinate plane; the location information of the engineering vessel's operating area is used to determine the operating area range using the operating task data to obtain a closed plane area corresponding to the operating area;

[0015] S202. In the coordinate plane, the coordinate information of each point in the working area is determined, and the working area is completely surrounded by constructing a circumscribed circle. The coordinate information of the center of the circumscribed circle corresponding to the working area is determined, and the coordinate information of the center position of the engineering vessel is controlled to be consistent with the coordinate information of the center of the circumscribed circle, so as to determine the initial working position of the engineering vessel.

[0016] The specific steps of S300 are as follows:

[0017] S301. Based on the engineering ship coordinate plane, connect the initial coordinate position of the engineering ship with the circumscribed circle of the operation area through full line segments, determine the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship, and obtain the intersection distance data of each intersection point and the center point of the engineering ship; sort the intersection distances corresponding to each intersection point in descending order from large to small, and determine the intersection point corresponding to the maximum intersection distance data in the left front, right front, left rear and right rear areas of the engineering ship coordinate plane as the current engineering ship operation positioning anchor point; analyze the coordinate information of the four engineering ship positioning anchor points respectively, and the calculation formula is:

[0018] ;

[0019] Among them, (X1, Y1) is the coordinate of the anchor point in the front left of the engineering ship, (X2, Y2) is the coordinate of the anchor point in the front right of the engineering ship; (X3, Y3) is the coordinate of the anchor point in the rear left of the engineering ship; (X1, Y1) is the coordinate of the anchor point in the rear right of the engineering ship; (X0, Y0) is the coordinate of the center point of the engineering ship; S1, S2, S3, S4 are the maximum values of the intersection distance data in the left front, right front, left rear and right rear areas in the corresponding engineering ship coordinate plane; β is the angle between the line connecting the intersection point and the center point of the engineering ship and the center axis of the engineering ship;

[0020] S302, combining the current anchor point positioning coordinate information of the engineering ship, deploying the anchor chain to the engineering ship, and analyzing the length of the anchor chain deployed at the initial position of the engineering ship. The calculation formula is:

[0021] ;

[0022] Wherein, L1, L2, L3, and L4 correspond to the initial anchor chain lengths of the anchor points in the left front, right front, left rear, and right rear areas in the engineering ship coordinate plane, respectively; H is the water depth;

[0023] By retrieving the current engineering ship operation task information to determine the single engineering ship operation coverage angle data, the corresponding bow angle control range of the engineering ship to complete the task is obtained; the changes in the anchor chain connected to the anchor point corresponding to the bow control angle of each engineering ship operation are analyzed respectively, and the calculation formula is:

[0024] ;

[0025] Wherein, ΔL(α) is the change in length of the anchor chain connected to the anchor point corresponding to the engineering ship's bow control angle α; L1' is the changed length of the anchor chain connected to the anchor point in front of the engineering ship corresponding to the engineering ship's bow control angle α; S1' is the length of the distance after the intersection distance in the left front area in the engineering ship's coordinate plane changes; α is the engineering ship's bow control angle; wherein, since the engineering ship is a whole, when the angle of its bow changes and causes the length of the anchor chain to change, the change in the length in the left front, right front, left rear and right rear directions is consistent; the angle change of the engineering ship's bow is negative when the engineering ship is in the initial position to the left, and positive when it is to the right; wherein, according to the different control directions of the engineering ship's bow, the change of each anchor chain is also different, including two states of extension and shortening;

[0026] Based on the anchor point position information of the engineering ship and the anchor chain length control data corresponding to the bow angle control of the operation ship, the bow angle of the engineering ship and the corresponding anchor chain control data plan are planned according to the changes of the anchor chain during the operation of the engineering ship.

[0027] The steps of S400 are as follows: feedback the real-time position information of the engineering vessel, and execute the operation of the engineering vessel according to the operation control plan.

[0028] S401, real-time feedback of engineering vessel position information via a visual port;

[0029] S402: According to the engineering vessel operation task information, the actual operation is implemented by executing the control plan of the engineering vessel's bow angle and the corresponding anchor chain change data.

[0030] A navigation direction control system for an engineering vessel based on four-anchor positioning, the system comprising a position acquisition module, an operation area determination module, an operation control module, and an implementation execution module;

[0031] The position acquisition module acquires real-time engineering ship position information; the engineering ship position information is the latitude and longitude information of the center point of the engineering ship; the operation area determination module performs plane operation planning based on the engineering ship position information, determines the engineering ship operation planning area, and controls the initial operation position of the ship; the operation control module analyzes the engineering ship operation area to determine the position information of the engineering ship positioning anchor point, combines the engineering ship operation control angle range, analyzes the dynamic changes of the anchor chain operation corresponding to each anchor point, and plans the engineering ship operation control plan; the implementation execution module feeds back the real-time position information of the engineering ship, and executes the operation of the engineering ship according to the operation control plan.

[0032] The position acquisition module includes an engineering ship positioning unit and a coordinate plane construction unit;

[0033] The engineering ship positioning unit acquires the real-time position information of the engineering ship based on the engineering ship positioning device and displays it visually through longitude and latitude;

[0034] The coordinate plane construction unit constructs a coordinate plane to perform coordinate transformation on the engineering ship position information, with the center position of the engineering ship as the coordinate origin.

[0035] The operation area determination module includes an operation area determination unit and an engineering vessel operation position determination unit;

[0036] The operation area determination unit obtains the location information of the engineering ship operation area according to the engineering ship operation task information, and marks the engineering ship operation area based on the coordinate plane;

[0037] The engineering ship operation position determination unit determines the coordinate information of each point in the operation area in the coordinate plane, constructs a circumscribed circle to completely surround the operation area, determines the center coordinate information of the circumscribed circle corresponding to the operation area, controls the center position coordinate information of the engineering ship to be consistent with the center coordinate information of the circumscribed circle, and determines the initial operation position of the engineering ship.

[0038] The operation control module includes an engineering ship anchor point determination unit and an operation control analysis unit;

[0039] The engineering ship anchor point determination unit is based on the engineering ship coordinate plane, connects the initial coordinate position of the engineering ship with the circumscribed circle of the operation area through full line segments, determines the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship, obtains the intersection distance data of each intersection point and the center point of the engineering ship; sorts the intersection distances corresponding to each intersection point in descending order from large to small, and determines the intersection point corresponding to the maximum value of the intersection distance data in the left front, right front, left rear and right rear areas in the engineering ship coordinate plane as the current engineering ship operation positioning anchor point; and analyzes the coordinate information of the four engineering ship positioning anchor points respectively;

[0040] The operation control and analysis unit deploys anchor chains to the engineering ship in combination with the current anchor point positioning coordinate information of the engineering ship, and analyzes the length of the anchor chains deployed at the initial position of the engineering ship; determines the angle data of a single engineering ship operation coverage by retrieving the current engineering ship operation task information, and obtains the bow angle control range interval corresponding to the completion of the engineering ship task; analyzes the changes in the anchor chain connected to the anchor point corresponding to the operation bow control angle of each engineering ship; and plans the bow angle of the engineering ship and the corresponding anchor chain control data scheme for the changes in the anchor chain during the operation of the engineering ship based on the engineering ship anchor point position information and the anchor chain length control data corresponding to the operation bow angle control.

[0041] The implementation execution module includes an engineering vessel position output unit and an operation planning implementation unit;

[0042] The engineering vessel position output unit feeds back engineering vessel position information in real time via a visual port;

[0043] The operation planning implementation unit performs actual operation implementation according to the operation task information of the engineering ship by executing the control plan of the engineering ship's bow angle and the corresponding anchor chain change data.

[0044] Compared with the prior art, the present invention has the following beneficial effects:

[0045] The present invention obtains the real-time position information of the engineering vessel through the engineering vessel positioning system; determines the engineering vessel's operating area through the operating task, and determines the initial operating position of the engineering vessel by planning the operating area; constructs a coordinate plane based on the initial operating position to determine the positioning anchor point position information of the engineering vessel; analyzes the changes in the corresponding control angles of each anchor point according to the operating angle control data of the engineering vessel, and formulates the engineering vessel operation control plan based on the control data; the present invention realizes the real-time determination of the operating position of the engineering vessel, and after accurate anchor point positioning, the anchor chain is controlled according to the operating requirements to realize automatic and accurate direction control of the operating vessel, thereby improving the operating efficiency and intelligence of the engineering vessel. BRIEF DESCRIPTION OF THE DRAWINGS

[0046] Figure 1 The figure is a structural diagram of a navigation direction control system for an engineering vessel based on four-anchor positioning according to the present invention. DETAILED DESCRIPTION

[0047] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0048] Example: Figure 1 As shown, the present invention provides a technical solution:

[0049] A method for controlling the navigation direction of an engineering vessel based on four-anchor positioning, the method comprising the following steps:

[0050] S100, obtaining real-time engineering vessel location information; the engineering vessel location information is the latitude and longitude information of the center point of the engineering vessel;

[0051] S200, performing planar operation planning based on the engineering vessel position information, determining the engineering vessel operation planning area, and adjusting the vessel's initial operation position;

[0052] S300, analyzing the engineering vessel operation area to determine the position information of the engineering vessel's positioning anchor points, analyzing the dynamic changes of the anchor chain operation corresponding to each anchor point in combination with the engineering vessel's operation control angle range, and planning the engineering vessel operation control plan;

[0053] S400: Feedback the real-time position information of the engineering vessel and execute the operation on the engineering vessel according to the operation control plan.

[0054] The specific steps of S100 are as follows:

[0055] S101. Acquire real-time location information of the engineering vessel based on the engineering vessel positioning device and visualize it using latitude and longitude;

[0056] S102. Construct a coordinate plane to perform coordinate transformation on the position information of the engineering vessel, with the center position of the engineering vessel as the coordinate origin.

[0057] The specific steps of S200 are as follows:

[0058] S201, obtaining the location information of the engineering ship operation area according to the engineering ship operation task information, and marking the engineering ship operation area based on the coordinate plane;

[0059] S202. In the coordinate plane, the coordinate information of each point in the working area is determined, and the working area is completely surrounded by constructing a circumscribed circle. The coordinate information of the center of the circumscribed circle corresponding to the working area is determined, and the coordinate information of the center position of the engineering vessel is controlled to be consistent with the coordinate information of the center of the circumscribed circle, so as to determine the initial working position of the engineering vessel.

[0060] The specific steps of S300 are as follows:

[0061] S301. Based on the engineering ship coordinate plane, connect the initial coordinate position of the engineering ship with the circumscribed circle of the operation area through full line segments, determine the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship, and obtain the intersection distance data of each intersection point and the center point of the engineering ship; sort the intersection distances corresponding to each intersection point in descending order from large to small, and determine the intersection point corresponding to the maximum intersection distance data in the left front, right front, left rear and right rear areas of the engineering ship coordinate plane as the current engineering ship operation positioning anchor point; analyze the coordinate information of the four engineering ship positioning anchor points respectively, and the calculation formula is:

[0062] ;

[0063] Among them, (X1, Y1) is the coordinate of the anchor point in the front left of the engineering ship, (X2, Y2) is the coordinate of the anchor point in the front right of the engineering ship; (X3, Y3) is the coordinate of the anchor point in the rear left of the engineering ship; (X1, Y1) is the coordinate of the anchor point in the rear right of the engineering ship; (X0, Y0) is the coordinate of the center point of the engineering ship; S1, S2, S3, S4 are the maximum values of the intersection distance data in the left front, right front, left rear and right rear areas in the corresponding engineering ship coordinate plane; β is the angle between the line connecting the intersection point and the center point of the engineering ship and the center axis of the engineering ship;

[0064] S302, combining the current anchor point positioning coordinate information of the engineering ship, deploying the anchor chain to the engineering ship, and analyzing the length of the anchor chain deployed at the initial position of the engineering ship. The calculation formula is:

[0065] ;

[0066] Wherein, L1, L2, L3, and L4 correspond to the initial anchor chain lengths of the anchor points in the left front, right front, left rear, and right rear areas in the engineering ship coordinate plane, respectively; H is the water depth;

[0067] By retrieving the current engineering ship operation task information to determine the single engineering ship operation coverage angle data, the corresponding bow angle control range of the engineering ship to complete the task is obtained; the changes in the anchor chain connected to the anchor point corresponding to the bow control angle of each engineering ship operation are analyzed respectively, and the calculation formula is:

[0068] ;

[0069] Wherein, ΔL(α) is the change in the length of the anchor chain connecting the anchor point corresponding to the engineering ship's bow control angle α; L1' is the changed length of the anchor chain connecting the anchor point in the left front of the engineering ship corresponding to the engineering ship's bow control angle α; S1' is the length of the distance after the change in the intersection distance in the left front area in the engineering ship's coordinate plane; α is the engineering ship's bow control angle;

[0070] Based on the anchor point position information of the engineering ship and the anchor chain length control data corresponding to the bow angle control of the operation ship, the bow angle of the engineering ship and the corresponding anchor chain control data plan are planned according to the changes of the anchor chain during the operation of the engineering ship.

[0071] The steps of S400 are as follows: feedback the real-time position information of the engineering vessel, and execute the operation of the engineering vessel according to the operation control plan.

[0072] S401, real-time feedback of engineering vessel position information via a visual port;

[0073] S402: According to the engineering vessel operation task information, the actual operation is implemented by executing the control plan of the engineering vessel's bow angle and the corresponding anchor chain change data.

[0074] A navigation direction control system for an engineering vessel based on four-anchor positioning, the system comprising a position acquisition module, an operation area determination module, an operation control module, and an implementation execution module;

[0075] The position acquisition module acquires real-time engineering ship position information; the engineering ship position information is the latitude and longitude information of the center point of the engineering ship; the operation area determination module performs plane operation planning based on the engineering ship position information, determines the engineering ship operation planning area, and controls the initial operation position of the ship; the operation control module analyzes the engineering ship operation area to determine the position information of the engineering ship positioning anchor point, combines the engineering ship operation control angle range, analyzes the dynamic changes of the anchor chain operation corresponding to each anchor point, and plans the engineering ship operation control plan; the implementation execution module feeds back the real-time position information of the engineering ship, and executes the operation of the engineering ship according to the operation control plan.

[0076] The position acquisition module includes an engineering ship positioning unit and a coordinate plane construction unit;

[0077] The engineering ship positioning unit acquires the real-time position information of the engineering ship based on the engineering ship positioning device and displays it visually through longitude and latitude;

[0078] The coordinate plane construction unit constructs a coordinate plane to perform coordinate transformation on the engineering ship position information, with the center position of the engineering ship as the coordinate origin.

[0079] The operation area determination module includes an operation area determination unit and an engineering vessel operation position determination unit;

[0080] The operation area determination unit obtains the location information of the engineering ship operation area according to the engineering ship operation task information, and marks the engineering ship operation area based on the coordinate plane;

[0081] The engineering ship operation position determination unit determines the coordinate information of each point in the operation area in the coordinate plane, constructs a circumscribed circle to completely surround the operation area, determines the center coordinate information of the circumscribed circle corresponding to the operation area, controls the center position coordinate information of the engineering ship to be consistent with the center coordinate information of the circumscribed circle, and determines the initial operation position of the engineering ship.

[0082] The operation control module includes an engineering ship anchor point determination unit and an operation control analysis unit;

[0083] The engineering ship anchor point determination unit is based on the engineering ship coordinate plane, connects the initial coordinate position of the engineering ship with the circumscribed circle of the operation area through full line segments, determines the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship, obtains the intersection distance data of each intersection point and the center point of the engineering ship; sorts the intersection distances corresponding to each intersection point in descending order from large to small, and determines the intersection point corresponding to the maximum value of the intersection distance data in the left front, right front, left rear and right rear areas in the engineering ship coordinate plane as the current engineering ship operation positioning anchor point; and analyzes the coordinate information of the four engineering ship positioning anchor points respectively;

[0084] The operation control and analysis unit deploys anchor chains to the engineering ship in combination with the current anchor point positioning coordinate information of the engineering ship, and analyzes the length of the anchor chains deployed at the initial position of the engineering ship; determines the angle data of a single engineering ship operation coverage by retrieving the current engineering ship operation task information, and obtains the bow angle control range interval corresponding to the completion of the engineering ship task; analyzes the changes in the anchor chain connected to the anchor point corresponding to the operation bow control angle of each engineering ship; and plans the bow angle of the engineering ship and the corresponding anchor chain control data scheme for the changes in the anchor chain during the operation of the engineering ship based on the engineering ship anchor point position information and the anchor chain length control data corresponding to the operation bow angle control.

[0085] The implementation execution module includes an engineering vessel position output unit and an operation planning implementation unit;

[0086] The engineering vessel position output unit feeds back engineering vessel position information in real time via a visual port;

[0087] The operation planning and implementation unit implements the actual operation according to the operation task information of the engineering vessel by executing the control plan of the engineering vessel's bow angle and the corresponding anchor chain change data;

[0088] In the examples:

[0089] A certain engineering vessel is currently equipped with the engineering vessel navigation direction control system based on four-anchor positioning of the present invention to control the direction of the engineering vessel operation; the engineering vessel real-time position information is acquired based on the engineering vessel positioning device and visualized through longitude and latitude; a coordinate plane is constructed to transform the engineering vessel position information, with the center position of the engineering vessel as the coordinate origin;

[0090] The position information of the engineering ship's operating area is obtained based on the engineering ship's operating task information, and the engineering ship's operating area is marked based on the coordinate plane. In the coordinate plane, the coordinate information of each point in the operating area is determined, and a circumscribed circle is constructed to fully surround the operating area. The coordinate information of the center of the circumscribed circle corresponding to the operating area is determined, and the coordinate information of the center position of the engineering ship is controlled to be consistent with the coordinate information of the center of the circumscribed circle, thereby determining the initial operating position of the engineering ship.

[0091] Based on the engineering ship coordinate plane, the initial coordinate position of the engineering ship is connected to the circumscribed circle of the operation area through full line segments, and the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship are determined, and the intersection distance data of each intersection point and the center point of the engineering ship are obtained; the intersection distances corresponding to each intersection point are sorted in descending order from large to small, and the intersection points corresponding to the maximum intersection distance data in the left front, right front, left rear and right rear areas of the engineering ship coordinate plane are respectively determined as the current engineering ship operation positioning anchor point; the coordinate information of the four engineering ship positioning anchor points is analyzed respectively, and the calculation formula is:

[0092] ;

[0093] Combined with the current anchor point positioning coordinate information of the engineering ship, the anchor chain is deployed to the engineering ship, and the length of the anchor chain deployed at the initial position of the engineering ship is analyzed. The calculation formula is:

[0094] ;

[0095] By retrieving the current engineering ship operation task information to determine the single engineering ship operation coverage angle data, the corresponding bow angle control range of the engineering ship to complete the task is obtained; the changes in the anchor chain connected to the anchor point corresponding to the bow control angle of each engineering ship operation are analyzed respectively, and the calculation formula is:

[0096] ;

[0097] Based on the anchor point position information of the engineering vessel and the corresponding anchor chain length control data of the operating vessel bow angle control, the bow angle of the engineering vessel and the corresponding anchor chain control data plan are planned according to the changes of the anchor chain during the operation of the engineering vessel;

[0098] The position information of the engineering vessel is fed back in real time through the visualization port; according to the engineering vessel's operation task information, the actual operation is implemented by executing the engineering vessel's bow angle and the corresponding anchor chain change data control plan.

[0099] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. A method for controlling the navigation direction of an engineering vessel based on four-anchor positioning, characterized by: The method comprises the following steps: S100, obtaining real-time engineering vessel location information; the engineering vessel location information is the latitude and longitude information of the center point of the engineering vessel; S200, performing planar operation planning based on the engineering vessel position information, determining the engineering vessel operation planning area, and adjusting the vessel's initial operation position; S300, analyzing the engineering vessel operation area to determine the position information of the engineering vessel's positioning anchor points, analyzing the dynamic changes of the anchor chain operation corresponding to each anchor point in combination with the engineering vessel's operation control angle range, and planning the engineering vessel operation control plan; S400: Feedback the real-time position information of the engineering vessel and execute the operation on the engineering vessel according to the operation control plan; Analyzing the engineering vessel's operating area to determine the location information of the engineering vessel's anchor point includes: Based on the engineering ship coordinate plane, the initial coordinate position of the engineering ship is connected to the circumscribed circle of the operation area through full line segments, and the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship are determined, and the intersection distance data of each intersection point and the center point of the engineering ship are obtained; the intersection distances corresponding to each intersection point are sorted in descending order from large to small, and the intersection points corresponding to the maximum intersection distance data in the left front, right front, left rear and right rear areas of the engineering ship coordinate plane are respectively determined as the current engineering ship operation positioning anchor point; the coordinate information of the four engineering ship positioning anchor points is analyzed respectively, and the calculation formula is: ; Among them, (X1, Y1) is the coordinate of the anchor point in the left front of the engineering ship, (X2, Y2) is the coordinate of the anchor point in the right front of the engineering ship; (X3, Y3) is the coordinate of the anchor point in the left rear of the engineering ship; (X4, Y4) is the coordinate of the anchor point in the right rear of the engineering ship; (X0, Y0) is the coordinate of the center point of the engineering ship; S1, S2, S3, S4 are the maximum values of the intersection distance data in the left front, right front, left rear and right rear areas in the corresponding engineering ship coordinate plane; β is the angle between the connecting line of the intersection point and the center point of the engineering ship and the central axis of the engineering ship.

2. The method for controlling the navigation direction of an engineering vessel based on four-anchor positioning according to claim 1, characterized in that: The specific steps of S100 are as follows: S101. Acquire real-time location information of the engineering vessel based on the engineering vessel positioning device and visualize it using latitude and longitude; S102. Construct a coordinate plane to perform coordinate transformation on the position information of the engineering vessel, with the center position of the engineering vessel as the coordinate origin.

3. The method for controlling the navigation direction of an engineering vessel based on four-anchor positioning according to claim 2, characterized in that: The specific steps of S200 are as follows: S201, obtaining the location information of the engineering ship operation area according to the engineering ship operation task information, and marking the engineering ship operation area based on the coordinate plane; S202. In the coordinate plane, the coordinate information of each point in the working area is determined, and the working area is completely surrounded by constructing a circumscribed circle. The coordinate information of the center of the circumscribed circle corresponding to the working area is determined, and the coordinate information of the center position of the engineering vessel is controlled to be consistent with the coordinate information of the center of the circumscribed circle, so as to determine the initial working position of the engineering vessel.

4. The method for controlling the navigation direction of an engineering vessel based on four-anchor positioning according to claim 3, characterized in that: Step S300 also includes: Combined with the current anchor point positioning coordinate information of the engineering ship, the anchor chain is deployed to the engineering ship, and the length of the anchor chain deployed at the initial position of the engineering ship is analyzed. The calculation formula is: ; Wherein, L1, L2, L3, and L4 correspond to the initial anchor chain lengths of the anchor points in the left front, right front, left rear, and right rear areas in the engineering ship coordinate plane, respectively; H is the water depth; By retrieving the current engineering ship operation task information to determine the single engineering ship operation coverage angle data, the corresponding bow angle control range of the engineering ship to complete the task is obtained; the changes in the anchor chain connected to the anchor point corresponding to the bow control angle of each engineering ship operation are analyzed respectively, and the calculation formula is: ; Wherein, ΔL(α) is the change in the length of the anchor chain connecting the anchor point corresponding to the engineering ship's bow control angle α; L1' is the changed length of the anchor chain connecting the anchor point in the left front of the engineering ship corresponding to the engineering ship's bow control angle α; S1' is the length of the distance after the change in the intersection distance in the left front area in the engineering ship's coordinate plane; α is the engineering ship's bow control angle; Based on the anchor point position information of the engineering ship and the anchor chain length control data corresponding to the bow angle control of the operation ship, the bow angle of the engineering ship and the corresponding anchor chain control data plan are planned according to the changes of the anchor chain during the operation of the engineering ship.

5. The method for controlling the navigation direction of an engineering vessel based on four-anchor positioning according to claim 4, characterized in that: The steps of S400 are as follows: feedback the real-time position information of the engineering vessel, and execute the operation of the engineering vessel according to the operation control plan. S401, real-time feedback of engineering vessel position information via a visual port; S402: According to the engineering vessel operation task information, the actual operation is implemented by executing the control plan of the engineering vessel's bow angle and the corresponding anchor chain change data.

6. A navigation direction control system for an engineering vessel based on four-anchor positioning, using the navigation direction control method for an engineering vessel based on four-anchor positioning according to claim 1, characterized in that: The system includes a location acquisition module, an operation area determination module, an operation control module and an implementation execution module; The position acquisition module acquires real-time engineering ship position information; the engineering ship position information is the latitude and longitude information of the center point of the engineering ship; The operation area determination module performs plane operation planning based on the engineering vessel position information, determines the engineering vessel operation planning area, and adjusts the vessel's initial operation position; The operation control module analyzes the operation area of the engineering ship to determine the position information of the engineering ship's positioning anchor point, combines the engineering ship's operation control angle range, analyzes the dynamic changes of the anchor chain operation corresponding to each anchor point, and plans the engineering ship's operation control plan; the implementation execution module feeds back the real-time position information of the engineering ship, and executes the operation of the engineering ship according to the operation control plan.

7. The engineering vessel navigation direction control system based on four-anchor positioning according to claim 6, characterized in that: The position acquisition module includes an engineering ship positioning unit and a coordinate plane construction unit; The engineering ship positioning unit acquires the real-time position information of the engineering ship based on the engineering ship positioning device and displays it visually through longitude and latitude; The coordinate plane construction unit constructs a coordinate plane to perform coordinate transformation on the engineering ship position information, with the center position of the engineering ship as the coordinate origin.

8. The navigation direction control system for an engineering vessel based on four-anchor positioning according to claim 7, characterized in that: The operation area determination module includes an operation area determination unit and an engineering vessel operation position determination unit; The operation area determination unit obtains the location information of the engineering ship operation area according to the engineering ship operation task information, and marks the engineering ship operation area based on the coordinate plane; The engineering ship operation position determination unit determines the coordinate information of each point in the operation area in the coordinate plane, constructs a circumscribed circle to completely surround the operation area, determines the center coordinate information of the circumscribed circle corresponding to the operation area, controls the center position coordinate information of the engineering ship to be consistent with the center coordinate information of the circumscribed circle, and determines the initial operation position of the engineering ship.

9. The engineering vessel navigation direction control system based on four-anchor positioning according to claim 8, characterized in that: The operation control module includes an engineering ship anchor point determination unit and an operation control analysis unit; The engineering ship anchor point determination unit is based on the engineering ship coordinate plane, connects the initial coordinate position of the engineering ship with the circumscribed circle of the operation area through full line segments, determines the intersection points of the line segments connecting the center point of the engineering ship and each point of the circumscribed circle with the boundary of the actual operation area of the engineering ship, obtains the intersection distance data of each intersection point and the center point of the engineering ship; sorts the intersection distances corresponding to each intersection point in descending order from large to small, and determines the intersection point corresponding to the maximum value of the intersection distance data in the left front, right front, left rear and right rear areas in the engineering ship coordinate plane as the current engineering ship operation positioning anchor point; and analyzes the coordinate information of the four engineering ship positioning anchor points respectively; The operation control and analysis unit deploys the anchor chain to the engineering ship based on the current anchor point positioning coordinate information of the engineering ship, and analyzes the length of the anchor chain deployed at the initial position of the engineering ship; determines the angle data of a single engineering ship operation by retrieving the current engineering ship operation task information, and obtains the bow angle control range corresponding to the completion of the engineering ship task; The changes in the anchor chain connected to the anchor point corresponding to the bow control angle of each engineering ship are analyzed respectively; based on the engineering ship's anchor point position information and the anchor chain length control data corresponding to the bow angle control of the operating ship, the engineering ship's bow angle and the corresponding anchor chain control data plan are planned for the changes in the anchor chain during the engineering ship's operation.

10. The engineering vessel navigation direction control system based on four-anchor positioning according to claim 9, characterized in that: The implementation execution module includes an engineering vessel position output unit and an operation planning implementation unit; The engineering vessel position output unit feeds back engineering vessel position information in real time via a visual port; The operation planning implementation unit performs actual operation implementation according to the operation task information of the engineering ship by executing the control plan of the engineering ship's bow angle and the corresponding anchor chain change data.

Citation Information

Patent Citations

  • Four-anchor positioning autonomous control method and system for engineering ship

    CN116224886A