Floor double-rocker-arm derrick anti-overturning system

By adding monitoring devices and sensors at key parts of the floor-standing double rocker arm holder, the risk of overturning is monitored and reported in real time, the overturning problem caused by the lack of intelligent monitoring in the prior art is solved, and safety and service life are improved.

CN223047125UActive Publication Date: 2025-07-01YANGZHOU ELECTRIC POWER TOOLS CO LTD
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Patent Information

Application Number
CN202421607100.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-08
Publication Date
2025-07-01
Estimated Expiration
2034-07-08

AI Technical Summary

Technical Problem

The existing floor-standing double rocker arm holder lacks intelligent monitoring devices, which leads to the risk of overturning.

Method used

The monitoring device is added at the key connections and apexes of the floor-standing double rocker arm holder, equipped with a variety of sensors to monitor the stress, tilt degree, vibration and environmental parameters in real time, and send data to the alarm center through the wireless communication module.

Benefits of technology

Improves operational safety, reduces the risk of overturning, and extends the service life of the holder.

✦ Generated by Eureka AI based on patent content.

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Abstract

According to the anti-overturning system for the floor double-rocker-arm derrick provided by the utility model, the monitoring devices are additionally arranged at the joint of the first rocker arm and the first variable amplitude piece, the joint of the second rocker arm and the second variable amplitude piece, the articulated piece and the vertex of the main derrick of the floor double-rocker-arm derrick, and various types of sensors are arranged in the monitoring devices; the stress condition, the inclination degree and the vibration condition of the landing double-rocker-arm derrick can be monitored in real time, the temperature and humidity of the external environment can be monitored in real time, and the problem that an existing landing double-rocker-arm derrick is prone to the overturning risk due to the fact that an intelligent monitoring device is lacked is solved. Therefore, the safety when the landing double-rocker-arm derrick is used for operation is improved, and the service life of the landing double-rocker-arm derrick is prolonged.
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Description

Technical Field

[0001] The utility model relates to the technical field of a hoisting system, in particular to an anti-overturning system for a ground double-jib gin pole. Background Art

[0002] A gin pole is a common hoisting device used in construction and power engineering, mainly for hoisting and assembling large structures such as transmission towers and bridge components. Currently, gin poles in China are mainly divided into two types: one is an internal suspended gin pole, and the other is a ground double-jib gin pole.

[0003] Among them, the ground double-jib gin pole has two main jibs, which can cover a larger working range and allow multiple hoisting operations to be carried out simultaneously, improving construction efficiency and flexibility. When hoisting heavy objects, the two jibs of the ground double-jib gin pole are equivalent to a balance, so it is required that the weights of the heavy objects hoisted on both sides are as close as possible, and the heavy objects hoisted cannot exceed the rated hoisting power of the hoisting traction mechanism (such as a winch) to avoid the risk of overturning. However, the qualities of on-site operators vary, and it is impossible to know the actual power of the winch and the stress condition of the gin pole when operating the winch, making it difficult to ensure the balance of the two arms and easily causing construction hazards. Summary of the Utility Model

[0004] In view of the above-mentioned disadvantages of the prior art, the utility model provides an anti-overturning system for a ground double-jib gin pole, which is used to solve the problem that the existing ground double-jib gin pole is prone to the risk of overturning due to the lack of an intelligent monitoring device.

[0005] To achieve the above object, the utility model provides an anti-overturning system for a ground double-jib gin pole. The anti-overturning system for a ground double-jib gin pole includes: a ground double-jib gin pole, including: a main gin pole, a first jib, and a second jib; a hinge is provided on the main gin pole; the hinge is respectively connected to the inner sides of the first jib and the second jib; a first luffing member and a first load-bearing member are connected to the outer side of the first jib, a second luffing member and a second load-bearing member are connected to the outer side of the second jib, and the first luffing member and the second luffing member converge at the top of the main gin pole; a monitoring component, the monitoring component includes a plurality of monitoring devices; each monitoring device is respectively installed at the connection between the first jib and the first luffing member, the connection between the second jib and the second luffing member, the hinge, and the top of the main gin pole; each monitoring device is communicatively connected to an external alarm center.

[0006] In some embodiments of the present utility model, the monitoring device includes: a load monitoring module, a balance monitoring module, an environmental monitoring module, and a wireless communication module; wherein, the wireless communication module is respectively communicatively connected to the load monitoring module, the balance monitoring module, and the environmental monitoring module, and is communicatively connected to an external alarm center; the load monitoring module is configured to monitor in real time the magnitude, direction, point of action, distribution mode, and change rate of each force borne by the ground double-jib gin pole; the balance monitoring module is configured to monitor in real time the inclination degree and vibration condition of the ground double-jib gin pole; the environmental monitoring module is configured to monitor in real time the external environmental parameters of the ground double-jib gin pole; the wireless communication module is configured to receive the gin pole monitoring data collected by the load monitoring module, the balance monitoring module, and the environmental monitoring module, and send it to the external alarm center.

[0007] In some embodiments of the present utility model, the load monitoring module includes: a force sensor, a strain sensor, and a displacement sensor; wherein, the force sensor, the strain sensor, and the displacement sensor are respectively communicatively connected to the wireless communication module; the force sensor is configured to monitor in real time the quantity, magnitude, and direction of each force borne by the main gin pole, the first jib, and the second jib; the strain sensor is configured to monitor in real time the strain condition of the main gin pole, the first jib, and the second jib; the displacement sensor is configured to monitor in real time the displacement condition of the main gin pole, the first jib, and the second jib in each direction.

[0008] In some embodiments of the present utility model, the balance monitoring module includes: an inclination sensor and an acceleration sensor; wherein, the inclination sensor and the acceleration sensor are respectively communicatively connected to the wireless communication module; the inclination sensor is configured to monitor in real time the inclination angle of the main gin pole, the first jib, and the second jib; the acceleration sensor is configured to monitor in real time the vibration condition of the main gin pole, the first jib, and the second jib.

[0009] In some embodiments of the present utility model, the environmental monitoring module includes: a temperature sensor and a humidity sensor; wherein, the temperature sensor and the humidity sensor are respectively communicatively connected to the wireless communication module; the temperature sensor is configured to monitor in real time the external environmental temperature of the ground double-jib gin pole; the humidity sensor is configured to monitor in real time the external environmental humidity of the ground double-jib gin pole.

[0010] In some embodiments of the present utility model, the first jib and the second jib are located in the same vertical plane and are symmetrically arranged about the main gin pole.

[0011] In some embodiments of the present utility model, the floor-mounted double swing arm gin pole further includes: a first traction member, a second traction member, a first luffing traction mechanism and a second luffing traction mechanism respectively disposed on both sides of the main gin pole; wherein, one end of the first traction member is joined with the first luffing member at the top of the main gin pole, and the other end bypasses the bottom of the main gin pole and is connected with the first luffing traction mechanism; the first luffing traction mechanism serves as a power source, and drives the first luffing member to retract and extend by retracting and extending the first traction member, thereby driving the first swing arm to rotate along its connection with the hinge member; one end of the second traction member is joined with the second luffing member at the top of the main gin pole, and the other end bypasses the bottom of the main gin pole and is connected with the second luffing traction mechanism; the second luffing traction mechanism serves as a power source, and drives the second luffing member to retract and extend by retracting and extending the second traction member, thereby driving the second swing arm to rotate along its connection with the hinge member.

[0012] In some embodiments of the present utility model, the floor-mounted double swing arm gin pole further includes: a first hoisting member, a second hoisting member, a first hoisting traction mechanism and a second hoisting traction mechanism respectively disposed on both sides of the main gin pole; wherein, one end of the first hoisting member is joined with the first load-bearing member outside the first swing arm, and the other end bypasses the hinge member and the bottom of the main gin pole and is connected with the first hoisting traction mechanism; the first hoisting traction mechanism serves as a power source, and drives the first load-bearing member to move in the vertical direction by retracting and extending the first hoisting member; one end of the second hoisting member is joined with the second load-bearing member outside the second swing arm, and the other end bypasses the hinge member and the bottom of the main gin pole and is connected with the second hoisting traction mechanism; the second hoisting traction mechanism serves as a power source, and drives the second load-bearing member to move in the vertical direction by retracting and extending the second hoisting member.

[0013] In some embodiments of the present utility model, the floor-mounted double swing arm gin pole further includes: a base; the base is used for fixing the main gin pole.

[0014] In some embodiments of the present utility model, the floor-mounted double swing arm gin pole further includes: a rotating turntable disposed at the hinge member; the rotating turntable is respectively connected with the inner sides of the first swing arm and the second swing arm, and is used for allowing the first swing arm and the second swing arm to rotate horizontally with the main gin pole as the axis.

[0015] As described above, the present utility model provides an anti-overturning system for a floor-mounted double swing arm gin pole. The anti-overturning system for the floor-mounted double swing arm gin pole adds monitoring devices at the connection between the first swing arm and the first luffing member, the connection between the second swing arm and the second luffing member, the hinge member, and the apex of the main gin pole of the floor-mounted double swing arm gin pole, and various types of sensors are arranged in each monitoring device. Therefore, it has the following beneficial effects: the anti-overturning system for the floor-mounted double swing arm gin pole can monitor the stress condition, inclination degree, and vibration condition of the floor-mounted double swing arm gin pole in real time, and can also monitor the temperature and humidity of the external environment in real time, solving the problem that the existing floor-mounted double swing arm gin pole lacks an intelligent monitoring device and is prone to overturning risks, thereby improving the safety when using the floor-mounted double swing arm gin pole for operation and helping to extend the service life of the floor-mounted double swing arm gin pole. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It shows a schematic structural diagram of an anti-overturning system for a floor-mounted double swing arm gin pole in an embodiment of the present utility model.

[0017] Figure 2 It shows a schematic structural diagram of a monitoring device in an embodiment of the present utility model.

[0018] DESCRIPTION OF REFERENCE NUMERALS

[0019] 1 Floor-mounted double swing arm gin pole

[0020] 11 Main gin pole

[0021] 12 First swing arm

[0022] 13 Second swing arm

[0023] 14 Hinge member

[0024] 15 First luffing member

[0025] 16 First load-bearing member

[0026] 17 Second luffing member

[0027] 18 Second load-bearing member

[0028] 19 First towing member

[0029] 110 Second towing member

[0030] 111 First luffing towing mechanism

[0031] 112 Second luffing towing mechanism

[0032] 113 First hoisting member

[0033] 114 Second hoisting member

[0034] 115 The first hoisting and traction mechanism

[0035] 116 The second hoisting and traction mechanism

[0036] 117 Base

[0037] 118 Rotary turntable

[0038] 2 Monitoring device

[0039] 21 Load monitoring module

[0040] 211 Force sensor

[0041] 212 Strain sensor

[0042] 213 Displacement sensor

[0043] 22 Balance monitoring module

[0044] 221 Inclinometer

[0045] 222 Accelerometer

[0046] 23 Environment monitoring module

[0047] 231 Temperature sensor

[0048] 232 Humidity sensor

[0049] 24 Wireless communication module Specific implementation mode

[0050] The following specific embodiments illustrate the implementation mode of the present utility model. Those skilled in the art can easily understand other advantages and effects of the present utility model from the content disclosed in this specification.

[0051] It should be noted that the structures, ratios, sizes, etc. shown in the drawings of this specification are only used to cooperate with the content disclosed in the specification for those skilled in the art to understand and read, and are not used to limit the limiting conditions for the implementation of the present utility model. Therefore, they do not have any technical essence. Any modification of the structure, change of the ratio relationship or adjustment of the size should still fall within the scope covered by the technical content disclosed in the present utility model without affecting the effects that the present utility model can produce and the purposes that can be achieved. The following detailed description should not be considered restrictive, and the scope of the embodiments of this application is only defined by the claims of the published patent. The terms used here are only for describing specific embodiments and are not intended to limit this application. Spatially related terms, such as "upper", "lower", "left", "right", "below", "beneath", "lower part", "above", "upper part", etc., may be used in the text to facilitate the description of the relationship between one element or feature shown in the figure and another element or feature.

[0052] In the present utility model, unless otherwise clearly specified and defined, terms such as "installation", "connection", "linkage", "fixation", "holding", etc. shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0053] Furthermore, as used herein, the singular forms "a", "an", and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. It should be further understood that the terms "comprise" and "include" indicate the presence of the described features, operations, elements, components, items, types, and / or groups, but do not preclude the presence, occurrence, or addition of one or more other features, operations, elements, components, items, types, and / or groups. The terms "or" and "and / or" used herein are interpreted as inclusive, or meaning any one or any combination. Thus, "A, B, or C" or "A, B, and / or C" means "any one of the following: A; B; C; A and B; A and C; B and C; A, B, and C". An exception to this definition only occurs when the combination of elements, functions, or operations is inherently mutually exclusive in some way.

[0054] To solve the problems in the above background art, the present utility model provides an anti-overturning system for a floor-mounted double swing arm gin pole, aiming to solve the problem that the existing floor-mounted double swing arm gin pole lacks an intelligent monitoring device and is prone to the risk of overturning. At the same time, in order to make the purpose, technical solution, and advantages of the present utility model clearer, the technical solutions in the embodiments of the present utility model will be further described in detail through the following embodiments and in conjunction with the accompanying drawings. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.

[0055] As Figure 1 shown, the present utility model provides an anti-overturning system for a floor-mounted double swing arm gin pole. In this embodiment, the anti-overturning system for the floor-mounted double swing arm gin pole includes: a floor-mounted double swing arm gin pole 1 and a monitoring component.

[0056] Among them, the floor double swing arm guyed mast 1 includes: a main guyed mast 11, a first swing arm 12, and a second swing arm 13. A hinge member 14 is provided on the main guyed mast 11; the hinge member 14 is respectively connected to the inner sides of the first swing arm 12 and the second swing arm 13; a first luffing member 15 and a first load-bearing member 16 are connected to the outer side of the first swing arm 12, and a second luffing member 17 and a second load-bearing member 18 are connected to the outer side of the second swing arm 13, and the first luffing member 15 and the second luffing member 17 converge at the top of the main guyed mast 11.

[0057] The monitoring component includes a plurality of monitoring devices 2. Each monitoring device 2 is respectively installed at the connection between the first swing arm 12 and the first luffing member 15, the connection between the second swing arm 13 and the second luffing member 17, the hinge member 14, and the top of the main guyed mast 11; each monitoring device 2 is communicatively connected to an external alarm center.

[0058] In one embodiment, as Figure 2 shown, the monitoring device 2 includes: a load monitoring module 21, a balance monitoring module 22, an environment monitoring module 23, and a wireless communication module 24. Among them, the wireless communication module 24 is communicatively connected to the load monitoring module 21, the balance monitoring module 22, and the environment monitoring module 23 respectively, and is communicatively connected to an external alarm center.

[0059] The load monitoring module 21, the balance monitoring module 22, and the environment monitoring module 23 include one or more existing sensors for real-time monitoring of the floor double swing arm guyed mast 1. It should be noted that what the present invention protects is the hardware structure of a floor double swing arm guyed mast anti-overturning system. Among them, the load monitoring module 21, the balance monitoring module 22, the environment monitoring module 23, and the wireless communication module 24 all refer to different hardware components. In this embodiment, the description of each module or each sensor is only used to illustrate that the floor double swing arm guyed mast anti-overturning system can be used in combination with some existing software programs to collect the monitoring data of the guyed mast for force analysis, balance analysis, and stability risk analysis of the floor double swing arm guyed mast 1, and when dangers such as excessive force or uneven force on the floor double swing arm guyed mast 1 are about to occur, functions such as timely alarm and power source cut-off can be realized. However, these software programs are not within the protection scope of the present invention.

[0060] Specifically, the load monitoring module 21 is used to monitor in real time the magnitude, direction, point of action, distribution mode, and change rate of the forces borne by the double-rocker ground-supported mast 1. In a specific embodiment, the load monitoring module 21 includes: a force sensor 211, a strain sensor 212, and a displacement sensor 213. Among them, the force sensor 211, the strain sensor 212, and the displacement sensor 213 are respectively communicatively connected to the wireless communication module 24; the force sensor 211 is used to monitor in real time the quantity, magnitude, and direction of the forces borne by the main mast 11, the first rocker 12, and the second rocker 13; the strain sensor 212 is used to monitor in real time the strain conditions of the main mast 11, the first rocker 12, and the second rocker 13; the displacement sensor 213 is used to monitor in real time the displacement conditions of the main mast 11, the first rocker 12, and the second rocker 13 in various directions.

[0061] The balance monitoring module 22 is used to monitor in real time the inclination degree and vibration condition of the double-rocker ground-supported mast 1. In a specific embodiment, the balance monitoring module 22 includes: an inclination sensor 221 and an acceleration sensor 222. Among them, the inclination sensor 221 and the acceleration sensor 222 are respectively communicatively connected to the wireless communication module 24; the inclination sensor 221 is used to monitor in real time the inclination angles of the main mast 11, the first rocker 12, and the second rocker 13; the acceleration sensor 222 is used to monitor in real time the vibration conditions of the main mast 11, the first rocker 12, and the second rocker 13.

[0062] The environment monitoring module 23 is used to monitor in real time the external environment parameters of the double-rocker ground-supported mast 1. In a specific embodiment, the environment monitoring module 23 includes: a temperature sensor 231 and a humidity sensor 232. Among them, the temperature sensor 231 and the humidity sensor 232 are respectively communicatively connected to the wireless communication module 24; the temperature sensor 231 is used to monitor in real time the external environment temperature of the double-rocker ground-supported mast 1; the humidity sensor 232 is used to monitor in real time the external environment humidity of the double-rocker ground-supported mast 1.

[0063] The wireless communication module 24 is used to receive the mast monitoring data collected by the load monitoring module 21, the balance monitoring module 22, and the environment monitoring module 23, and send it to an external alarm center.

[0064] In an embodiment, the double-rocker ground-supported mast 1 further includes: a first traction member 19, a second traction member 110, a first luffing traction mechanism 111 and a second luffing traction mechanism 112 respectively disposed on both sides of the main mast 11.

[0065] Specifically, one end of the first traction member 19 is joined with the first luffing member 15 at the top of the main mast 11, and the other end bypasses the bottom of the main mast 11 and is connected to the first luffing traction mechanism 111; the first luffing traction mechanism 111 serves as a power source, and drives the first luffing member 15 to retract and extend by retracting and extending the first traction member 19, thereby driving the first swing arm 12 to rotate along its connection with the hinge member 14; one end of the second traction member 110 is joined with the second luffing member 17 at the top of the main mast 11, and the other end bypasses the bottom of the main mast 11 and is connected to the second luffing traction mechanism 112; the second luffing traction mechanism 112 serves as a power source, and drives the second luffing member 17 to retract and extend by retracting and extending the second traction member 110, thereby driving the second swing arm 13 to rotate along its connection with the hinge member 14.

[0066] In a preferred embodiment, the first luffing member 15, the first traction member 19, the second luffing member 17 and the second traction member 110 adopt a rope structure, such as a steel wire rope, and the first luffing member 15 and the first traction member 19 are designed as a steel wire rope as the first luffing steel wire rope, and the second luffing member 16 and the second traction member 110 are designed as another steel wire rope as the second luffing steel wire rope. The first luffing steel wire rope is led out from the first luffing traction mechanism 111, bypasses the bottom and top of the main mast 11, and is connected to the outer side of the first swing arm 12; the second luffing steel wire rope is led out from the second luffing traction mechanism 112, bypasses the bottom and top of the main mast 11, and is connected to the outer side of the second swing arm 13. At this time, pulley groups are provided at the bottom and top of the main mast 11, the outer side of the first swing arm 12 and the outer side of the second swing arm 13 for the steel wire rope to bypass.

[0067] The first luffing traction mechanism 111 and the second luffing traction mechanism 112 include a communication module for communicating with an external alarm center, and can be combined with existing software programs to realize timely shutdown according to the instructions sent by the alarm center, so that the ground double-swing-arm mast 1 stops luffing work. It should be noted that this method is not within the protection scope of the present utility model.

[0068] In an embodiment, the ground double-swing-arm mast 1 further includes: a first hoisting member 113, a second hoisting member 114, a first hoisting traction mechanism 115 and a second hoisting traction mechanism 116 respectively arranged on both sides of the main mast 11.

[0069] Specifically, one end of the first hoisting member 113 is joined with the first bearing member 16 outside the first swing arm 12, and the other end bypasses the hinge member 14 and the bottom of the main mast 11 and is connected to the first hoisting traction mechanism 115; the first hoisting traction mechanism 115 serves as a power source, and drives the first bearing member 16 to move in the vertical direction by taking in and releasing the first hoisting member 113; one end of the second hoisting member 114 is joined with the second bearing member 18 outside the second swing arm 13, and the other end bypasses the hinge member 14 and the bottom of the main mast 11 and is connected to the second hoisting traction mechanism 116; the second hoisting traction mechanism 116 serves as a power source, and drives the second bearing member 18 to move in the vertical direction by taking in and releasing the second hoisting member 114.

[0070] In a preferred embodiment, the first hoisting member 113 and the second hoisting member 114 are designed to adopt a rope structure, such as a steel wire rope, and are respectively used as the first hoisting wire rope and the second hoisting wire rope, and the first bearing member 16 and the second bearing member 17 are designed as hook structures. The first hoisting wire rope is led out from the first hoisting traction mechanism 115, bypasses the bottom of the main mast 11, the hinge member 14 and the outside of the first swing arm 12, and is connected to a hook; the second hoisting wire rope is led out from the second hoisting traction mechanism 116, bypasses the bottom of the main mast 11, the hinge member 14 and the outside of the second swing arm 13, and is connected to another hook. In this embodiment, pulley groups are arranged at the bottom of the main mast 11, at the hinge member 14, outside the first swing arm 12 and outside the second swing arm 13 for the steel wire rope to bypass.

[0071] The first hoisting traction mechanism 115 and the second luffing traction mechanism 116 include a communication module for communicating with an external alarm center, and in combination with existing software programs, can be shut down in a timely manner according to instructions sent by the alarm center, so that the ground double-swing-arm mast 1 stops hoisting work. It should be noted that this method is not within the protection scope of the present utility model.

[0072] In an embodiment, the ground double-swing-arm mast 1 further includes: a base 117; the base 117 is used to fix the main mast 11.

[0073] In an embodiment, the ground double-swing-arm mast 1 further includes: a rotating turntable 118 provided at the hinge member 14; the rotating turntable 118 is respectively connected to the inner sides of the first swing arm 12 and the second swing arm 13, and is used to allow the first swing arm 12 and the second swing arm 13 to rotate in the horizontal direction with the main mast 11 as the axis.

[0074] In summary, the present utility model provides an anti-overturning system for a floor-mounted double-rocker boom pole. By adding monitoring devices at the connection between the first rocker arm and the first luffing member, the connection between the second rocker arm and the second luffing member, the hinge member, and the apex of the main boom pole of the floor-mounted double-rocker boom pole, and setting various types of sensors in each monitoring device, it can monitor the force condition, inclination degree, and vibration condition of the floor-mounted double-rocker boom pole in real time, as well as monitor the temperature and humidity of the external environment in real time, solving the problem that the existing floor-mounted double-rocker boom pole lacks an intelligent monitoring device and is prone to overturning risks, thereby improving the safety when using the floor-mounted double-rocker boom pole for operation and helping to extend the service life of the floor-mounted double-rocker boom pole. Therefore, the present utility model effectively overcomes various disadvantages in the prior art and has high industrial utilization value.

[0075] The above embodiments are only illustrative of the principles and effects of the present utility model and are not used to limit the present utility model. Any person familiar with this technology can modify or change the above embodiments without departing from the spirit and scope of the present utility model. Therefore, all equivalent modifications or changes completed by those with ordinary knowledge in the technical field without departing from the spirit and technical idea disclosed by the present utility model should still be covered by the claims of the present utility model.

Claims

1. A ground-mounted double rocker arm anti-overturning system, characterized in that: include: A ground-mounted double rocker arm (1) comprises: a main arm (11), a first rocker arm (12) and a second rocker arm (13); the main arm (11) is provided with a hinge (14); the hinge (14) is respectively connected to the inner side of the first rocker arm (12) and the inner side of the second rocker arm (13); the outer side of the first rocker arm (12) is connected to a first amplitude changing member (15) and a first bearing member (16), the outer side of the second rocker arm (13) is connected to a second amplitude changing member (17) and a second bearing member (18), and the first amplitude changing member (15) and the second amplitude changing member (17) are connected to the top of the main arm (11); A monitoring component, the monitoring component comprising a plurality of monitoring devices (2); each monitoring device (2) is respectively installed at the connection between the first rocker arm (12) and the first amplitude changing member (15), the connection between the second rocker arm (13) and the second amplitude changing member (17), the hinge (14) and the top of the main holding pole (11); each monitoring device (2) is connected to an external alarm center for communication.

2. The ground-mounted double rocker arm anti-overturning system according to claim 1 is characterized in that: The monitoring device (2) comprises: a load monitoring module (21), a balance monitoring module (22), an environment monitoring module (23) and a wireless communication module (24); The wireless communication module (24) is respectively connected to the load monitoring module (21), the balance monitoring module (22) and the environment monitoring module (23), and is also connected to an external alarm center; The load monitoring module (21) is used to monitor in real time the magnitude, direction, point of action, distribution mode and change rate of various forces borne by the ground-mounted double rocker arm (1); The balance monitoring module (22) is used to monitor the tilt degree and vibration of the ground-mounted double rocker arm (1) in real time; The environmental monitoring module (23) is used to monitor the external environmental parameters of the ground-mounted double rocker arm (1) in real time; The wireless communication module (24) is used to receive the pole monitoring data collected by the load monitoring module (21), the balance monitoring module (22) and the environment monitoring module (23), and send the data to an external alarm center.

3. The ground-mounted double rocker arm anti-overturning system according to claim 2 is characterized in that: The load monitoring module (21) comprises: a force sensor (211), a strain sensor (212) and a displacement sensor (213); Wherein, the force sensor (211), the strain sensor (212) and the displacement sensor (213) are respectively connected to the wireless communication module (24) for communication; The force sensor (211) is used to monitor in real time the quantity, magnitude and direction of each force borne by the main holding pole (11), the first rocker arm (12) and the second rocker arm (13); The strain sensor (212) is used to monitor the strain conditions of the main holding pole (11), the first rocker arm (12) and the second rocker arm (13) in real time; The displacement sensor (213) is used to monitor the displacement of the main holding pole (11), the first rocker arm (12) and the second rocker arm (13) in real time in various directions.

4. The ground-mounted double rocker arm anti-overturning system according to claim 2 is characterized in that: The balance monitoring module (22) comprises: an inclination sensor (221) and an acceleration sensor (222); Wherein, the tilt sensor (221) and the acceleration sensor (222) are respectively connected to the wireless communication module (24) for communication; The tilt sensor (221) is used to monitor the tilt angles of the main pole (11), the first rocker arm (12) and the second rocker arm (13) in real time; The acceleration sensor (222) is used to monitor the vibration conditions of the main holding pole (11), the first rocker arm (12) and the second rocker arm (13) in real time.

5. The ground-mounted double rocker arm anti-overturning system according to claim 2 is characterized in that: The environment monitoring module (23) comprises: a temperature sensor (231) and a humidity sensor (232); Wherein, the temperature sensor (231) and the humidity sensor (232) are respectively connected to the wireless communication module (24) for communication; The temperature sensor (231) is used to monitor the external environment temperature of the ground-mounted double rocker arm (1) in real time; the humidity sensor (232) is used to monitor the external environment humidity of the ground-mounted double rocker arm (1) in real time.

6. The ground-mounted double rocker arm anti-overturning system according to claim 1 is characterized in that: The first rocker arm (12) and the second rocker arm (13) are located in the same vertical plane and are arranged in an axisymmetric manner with the main holding pole (11) as an axis.

7. The ground-mounted double rocker arm anti-overturning system according to claim 1 is characterized in that: The ground-mounted double rocker arm (1) further comprises: a first traction member (19), a second traction member (110), a first luffing traction mechanism (111) and a second luffing traction mechanism (112) respectively arranged on both sides of the main arm (11); One end of the first traction member (19) is connected to the first amplitude-changing member (15) at the top of the main pole (11), and the other end is connected to the first amplitude-changing traction mechanism (111) by bypassing the bottom of the main pole (11); the first amplitude-changing traction mechanism (111) serves as a power source, and drives the first amplitude-changing member (15) to be retracted and extended by retracting and extending the first traction member (19), thereby driving the first rocker arm (12) to rotate along the connection between the first rocker arm and the hinge member (14); One end of the second traction member (110) is connected to the second amplitude varying member (17) at the top of the main holding pole (11), and the other end bypasses the bottom of the main holding pole (11) and is connected to the second amplitude varying traction mechanism (112); the second amplitude varying traction mechanism (112) serves as a power source, and drives the second amplitude varying member (17) to be retracted and extended by retracting and extending the second traction member (110), thereby driving the second rocker arm (13) to rotate along the connection between the second rocker arm and the hinge member (14).

8. The ground-mounted double rocker arm anti-overturning system according to claim 1 is characterized in that: The ground-mounted double rocker arm (1) further comprises: a first lifting member (113), a second lifting member (114), a first lifting and traction mechanism (115) and a second lifting and traction mechanism (116) respectively arranged on both sides of the main arm (11); One end of the first lifting member (113) is connected to the first bearing member (16) at the outer side of the first rocker arm (12), and the other end bypasses the hinge (14) and the bottom of the main holding pole (11) to be connected to the first lifting and traction mechanism (115); the first lifting and traction mechanism (115) serves as a power source, and drives the first bearing member (16) to move in a vertical direction by retracting and releasing the first lifting member (113); One end of the second lifting member (114) is connected to the second bearing member (18) at the outer side of the second rocker arm (13), and the other end bypasses the hinge (14) and the bottom of the main holding rod (11) to be connected to the second lifting and traction mechanism (116); the second lifting and traction mechanism (116) serves as a power source, and drives the second bearing member (18) to move in the vertical direction by retracting and extending the second lifting member (114).

9. The ground-mounted double rocker arm anti-overturning system according to claim 1, characterized in that: The ground-mounted double rocker arm (1) further comprises: a base (117); the base (117) is used to fix the main arm (11).

10. The ground-mounted double rocker arm anti-overturning system according to claim 1, characterized in that: The ground-mounted double rocker arm (1) further comprises: a rotating turntable (118) arranged at the hinge (14); the rotating turntable (118) is respectively connected to the inner side of the first rocker arm (12) and the inner side of the second rocker arm (13), and is used to allow the first rocker arm (12) and the second rocker arm (13) to rotate in the horizontal direction with the main arm (11) as the axis.