Communication tower fixing base for communication engineering

By installing heating rings and heating wires, extending reinforcement columns, and a drainage system inside the communication tower's fixed base, the problem of uneven stress on the base in frozen soil areas was solved, achieving base stability and long-term operational reliability of the communication tower, reducing operation and maintenance costs, and improving energy utilization efficiency.

CN121976572APending Publication Date: 2026-05-05XINJIANG SILK ROAD SUNSHINE INVESTMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
XINJIANG SILK ROAD SUNSHINE INVESTMENT CO LTD
Filing Date
2026-03-25
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

In permafrost regions, the fixed base of communication towers suffers from uneven stress due to frost heave and thaw settlement, leading to problems such as base cracking, steel corrosion, and tower tilting. This affects communication quality, increases safety risks, and results in high maintenance costs.

Method used

A spiral heating ring and heating wire are installed inside the cement base, and the heating is powered by a power supply module. Combined with the heat dissipation material and insulation board in the connecting column, the base temperature is actively maintained to stabilize. At the same time, an integrated structural reinforcement design is adopted, including vertical extension reinforcement columns and connecting steel bars, to enhance the overall rigidity of the base. A water collection tank and drainage pipe are installed to prevent water from seeping in and causing freeze-thaw.

Benefits of technology

It effectively suppresses frost heave and thaw settlement, ensures the integrity and stability of the base structure, reduces operation and maintenance costs, improves the service life and operational reliability of communication towers, and realizes energy recycling and equipment protection.

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Abstract

The invention relates to the technical field of communication engineering, in particular to a communication tower fixing base for communication engineering. A bearing platform is installed at the top of the bearing base, a water collecting groove is formed in the upper portion of the bearing platform, a connecting base fixedly connected with the bearing platform is arranged in the center of the water collecting groove, and a plurality of vertically-arranged connecting bolts are fixedly connected to the top of the connecting base; the top of the cement base platform is fixedly connected with a vertically arranged connecting column, and the outer side of the connecting column is fixedly connected with the bearing platform; a spiral heating ring sleeve is further fixedly connected to the upper layer of the interior of the cement base table, and a heating wire is fixedly connected to the interior of the heating ring sleeve; the spiral heating ring sleeve is pre-embedded in the cement abutment, the heating wire is arranged in the cement abutment, in cold weather, the power supply module supplies power to the heating wire, heat is conducted to the whole cement abutment through the heating ring sleeve, the bearing platform is subjected to auxiliary heating through the heat dissipation material in the connecting column, the base is kept at the proper temperature, frost heaving and thaw collapse are restrained from the source, and the service life of the bearing platform is prolonged. The structural integrity is guaranteed.
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Description

Technical Field

[0001] This invention relates to the field of communication engineering technology, specifically to a communication tower fixing base used in communication engineering. Background Technology

[0002] As the core infrastructure of various communication networks such as mobile communication, private network communication, and emergency communication, the operational stability of communication towers directly determines the quality of communication signal coverage and the reliability of network connectivity. The fixed base of the communication tower is the core supporting component ensuring the overall structural safety of the tower. It plays a crucial role in bearing the weight of the tower, transmitting external forces (wind load, snow load, seismic load, etc.), and fixing the tower's posture; it is the "foundation" for the stable operation of the communication tower. The construction quality and durability of the fixed base directly affect the service life of the communication tower and are a core prerequisite for preventing safety accidents such as tower overturning, equipment damage, and communication interruptions.

[0003] Communication tower bases are typically constructed of reinforced concrete, metal, or composite materials, requiring a rigid connection to the foundation to withstand external forces. However, in permafrost regions, the freezing and expansion of soil moisture generates frost heave, which, upon thawing, leads to thaw settlement. This repeated cycle disrupts the stress balance of the base, causing various quality problems, such as: cracking of the base structure, corrosion of reinforcing steel, and decreased mechanical strength; loosening of the connection between the base and the foundation, and uneven settlement, causing the tower to tilt, affecting communication quality and increasing the risk of overturning; corrosion and deformation of metal components, and failure of protective structures, shortening service life and increasing maintenance costs. Therefore, this paper proposes a new communication tower base design for communication engineering to address these issues. Summary of the Invention

[0004] The purpose of this invention is to provide a communication tower fixing base for communication engineering, so as to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: As an optional embodiment of the communication tower fixing base for communication engineering described in this invention, the communication tower fixing base for communication engineering includes a bearing base, a support platform, and a power supply module; A support platform is installed on the top of the support base, and a water collection trough is opened above the support platform. A connecting seat is fixedly connected to the support platform in the center of the water collection trough, and multiple vertically arranged connecting bolts are fixedly connected to the top of the connecting seat. The supporting base includes a cement platform, and a vertically installed connecting column is fixedly connected to the top of the cement platform. The outer side of the connecting column is fixedly connected to the platform. The upper part of the cement base is also fixedly connected to a spiral heating ring, and a heating wire is fixedly connected inside the heating ring. The two ends of the heating wire are connected to the power supply module, which is located on one side of the cement base.

[0006] As an optional embodiment of the communication tower fixing base for communication engineering described in this invention, a ring of insulation board is provided on the outer side of the cement base.

[0007] As an alternative embodiment of the communication tower fixing base for communication engineering described in this invention, the connecting column is hollow and filled with a heating material.

[0008] Communication tower bases are mostly made of reinforced concrete, metal, or composite materials, requiring a rigid connection to the foundation to resist external forces. However, in permafrost regions, the freezing and expansion of soil moisture generates frost heave, which, upon thawing, leads to thaw settlement. This repeated cycle disrupts the stress balance of the base, causing various quality problems, such as: cracking of the base structure, corrosion of reinforcing steel, and decreased mechanical strength; loosening of the connection between the base and the foundation, and uneven settlement, causing the tower to tilt, affecting communication quality and increasing the risk of overturning; corrosion and deformation of metal components, and failure of protective structures, shortening service life and increasing maintenance costs. A spirally arranged heating ring is installed inside the concrete base, with heating wires inside the ring. In cold weather, the power supply module is activated to power the heating wires, which generate heat that is dissipated through the heating ring to the surrounding area, achieving overall heating of the concrete base. Furthermore, the heat dissipation material inside the connecting column can heat the foundation, ensuring that the concrete base and connecting column maintain a certain temperature, thus guaranteeing their quality to a certain extent.

[0009] As an optional embodiment of the communication tower fixing base for communication engineering described in this invention, a reinforcing base plate is further provided in the lower inner layer of the cement base. The surface of the reinforcing base plate is provided with uniformly distributed grooves, and connecting steel bars are provided inside the grooves. The bottom of each connecting steel bar is fixedly connected to a vertically arranged extending reinforcing column.

[0010] As an optional embodiment of the communication tower fixing base for communication engineering described in this invention, a reinforcing plate is fixedly connected to the top of each connecting steel bar.

[0011] The concrete base is also equipped with vertically extended reinforcing columns. The top of the extended reinforcing columns is fixedly connected with connecting steel bars, which penetrate the reinforcing base plate. The reinforcing base plate is located inside the concrete base. The top of the connecting steel bars is connected to the reinforcing plate. The concrete base, reinforcing base plate, extended reinforcing columns, connecting steel bars and reinforcing plate form a whole to ensure the overall stability of the base.

[0012] As an optional solution for the communication tower fixing base used in communication engineering according to the present invention, the side of the foundation is also connected to a drainage pipe, and one end of the drainage pipe is provided with a sinking groove opened inside the foundation.

[0013] In actual use, a water collection trough is provided on the top of the foundation. The water inside the water collection trough can be discharged to a distant place through the drainage pipe to avoid the water from affecting the stability of the soil around the foundation. At the same time, the sinking trough can prevent the accumulation of impurities inside the water collection trough from clogging the drainage pipe and ensure the stable operation of the drainage pipe.

[0014] As an optional solution for the communication tower fixing base for communication engineering described in this invention, the power supply module includes a power supply cabinet, a storage slot is provided on one side of the power supply cabinet, and a first fan blade is provided inside the storage slot. A rotating shaft is fixedly connected inside the first fan blade, a rotating disk is rotatably connected to one end of the rotating shaft, a vertical plate is fixedly connected to the outside of the rotating disk, a moving end of a pushing mechanism is fixedly connected to one end of the vertical plate, and the outside of the pushing mechanism is fixedly connected to the inner wall of the power supply cabinet. A second fan blade is also fixedly connected to the outside of the rotating shaft.

[0015] As an optional solution for the communication tower fixing base used in communication engineering according to the present invention, the bottom of the receiving slot is provided with a guide groove, and the guide groove is set with an inclined surface.

[0016] As an optional embodiment of the communication tower fixing base for communication engineering described in this invention, a fixing rod is fixedly connected to one side of the vertical plate, and a baffle is fixedly connected to the other end of the fixing rod.

[0017] As an optional embodiment of the communication tower fixing base for communication engineering described in this invention, the outer sides of the fixing rod and the rotating shaft are rotatably connected to the power supply cabinet.

[0018] The heat generated by the internal components of the power supply module can flow into the cement base through the heating ring, realizing heat recycling and avoiding resource waste. At the same time, the rotation of the first and second fan blades can realize the active flow of hot air, achieving auxiliary heating of the cement base.

[0019] Compared with the prior art, the beneficial effects of the present invention are: Active temperature control to prevent frost heave: A spiral heating ring with built-in heating wires is pre-embedded inside the cement base. In cold weather, the heating wires are powered by a power supply module, and the heat is conducted to the entire cement base through the heating ring. The heat dissipation material inside the connecting column further heats the base, maintaining it at a suitable temperature and inhibiting frost heave and thaw settlement from the source, thus ensuring structural integrity.

[0020] Integrated structural reinforcement: Vertically extending reinforcement columns are installed within the cement base, with their tops connected to the reinforcement base plate via reinforcing bars. The reinforcement base plate is pre-embedded inside the cement base, forming an integrated load-bearing structure with the cement base, extending reinforcement columns, connecting bars, reinforcement base plate, and reinforcement plate. This significantly improves the overall rigidity and stability of the base, resisting uneven settlement and external impacts.

[0021] Efficient drainage and anti-siltation: A water collection trough is set on the top of the foundation, and drainage pipes are used to guide the accumulated water to a distant place to prevent water from seeping into the soil around the foundation and causing the freeze-thaw cycle to worsen; a sinking trough is set in the water collection trough to effectively intercept impurities such as mud and sand, prevent the drainage pipe from being blocked, ensure the long-term stable operation of the drainage system, and further protect the stability of the soil around the foundation. The power supply module design achieves a dual practical effect: Firstly, the hot air inside the cabinet, heated by the electronic components, can flow more quickly and fully through the gaps in the heating ring under the drive of the second fan blade, improving heat exchange efficiency and allowing more redundant heat to be transferred to the cement base, enhancing the auxiliary heating effect on the cement base and ensuring that the cement base maintains a stable working state in low-temperature environments. Secondly, the rapid flow of hot air can promptly remove the accumulated heat around the electronic components inside the power supply cabinet, effectively reducing the overall temperature inside the cabinet and preventing the electronic components from experiencing performance degradation, shortened lifespan, or even failure due to prolonged exposure to high temperatures. This truly achieves energy recycling, taking into account both equipment protection and energy-saving requirements, and significantly improving the operational stability and practicality of the entire power supply system under low-temperature conditions. Attached Figure Description

[0022] Figure 1 A schematic diagram of the overall structure of a communication tower mounting base used in communication engineering; Figure 2 This is a structural schematic diagram of a communication tower fixing base bearing base used in communication engineering; Figure 3 A schematic diagram of the power supply module for a communication tower fixed base used in communication engineering; Figure 4 This is a schematic diagram of the structure of the communication tower fixing base driving mechanism used in communication engineering.

[0023] In the diagram: 1. Bearing base; 101. Cement base; 102. Connecting column; 103. Heating ring; 104. Heating wire; 105. Reinforcing base plate; 106. Groove; 107. Extended reinforcing column; 108. Connecting steel bar; 109. Reinforcing plate; 110. Insulation board; 2. Foundation; 3. Water collection tank; 4. Sinking tank; 5. Drainage pipe; 6. Connecting seat; 7. Connecting bolt; 8. Power supply module; 801-Power supply cabinet; 802-Storage slot; 803-Guide slot; 804-Baffle; 805-Fixing rod; 806-Vertical plate; 807-Pushing mechanism; 808-Rotating disk; 809-Rotating shaft; 810-First fan blade; 8011-Second fan blade. Detailed Implementation

[0024] Example 1: Please refer to Figure 1 and Figure 2 The present invention provides a technical solution: A communication tower fixing base for communication engineering, including a load-bearing base 1, a support platform 2 and a power supply module 8; A support base 2 is installed on the top of the support base 1. A water collection trough 3 is provided above the support base 2. A connecting seat 6 is fixedly connected to the support base 2 in the center of the water collection trough 3. A number of vertically arranged connecting bolts 7 are fixedly connected to the top of the connecting seat 6. The bearing base 1 includes a cement base 101, and a vertically arranged connecting column 102 is fixedly connected to the top of the cement base 101. The outer side of the connecting column 102 is fixedly connected to the bearing base 2. The upper inner layer of the cement base 101 is also fixedly connected to a heating ring 103 arranged in a spiral, and a heating wire 104 is fixedly connected inside the heating ring 103. The two ends of the heating wire 104 are connected to the power supply module 8, and the power supply module 8 is located on one side of the cement base 101.

[0025] A ring of insulation board 110 is installed on the outside of the cement base 101.

[0026] The connecting post 102 is hollow and filled with heating material.

[0027] Communication tower bases are typically constructed of reinforced concrete, metal, or composite materials, requiring a rigid connection to the foundation to withstand external forces. However, in permafrost regions, the freezing and expansion of soil moisture generates frost heave forces, which, upon thawing, lead to thaw settlement. This repeated cycle disrupts the stress balance of the base, causing various quality problems, such as: cracking of the base structure, corrosion of reinforcing steel, and decreased mechanical strength; loosening of the connection between the base and the foundation, and uneven settlement, causing the tower to tilt, affecting communication quality and increasing the risk of overturning; corrosion and deformation of metal components, and failure of protective structures, shortening service life and increasing maintenance costs. The base 101 is equipped with a spirally arranged heating ring 103, and the heating ring 103 is equipped with a heating wire 104. In cold weather, the heating wire 104 is powered by the power supply module 8. The heating wire 104 generates heat and dissipates it to the surroundings through the heating ring 103, thereby achieving the purpose of heating the entire cement base 101. In addition, the heat dissipation material inside the connecting column 102 can heat the support 2, ensuring that the cement base 101 and the connecting column 102 are maintained at a certain temperature, thus ensuring their quality to a certain extent. Also includes the following: Connecting bolts 7 are installed on the top of the connecting seat 6 for reliable connection and fixation to the communication tower body. The connecting column 102 is filled with heating material, preferably paraffin-based or fatty acid-based microencapsulated phase change material, or it can be mixed into mortar to form a composite phase change material. This type of material can absorb and store excess heat when the heating wire is working, and slowly release it in low-temperature environments, effectively reducing temperature fluctuations of the base, improving temperature control stability, and reducing heating energy consumption. An insulation board 110 is installed circumferentially on the outer side of the cement base 101. It is made of polyurethane rigid foam insulation board (PU / PIR), which has low thermal conductivity, high closed-cell rate, good adhesion, and strong weather resistance. It is especially suitable for severely cold permafrost areas, which can significantly reduce heat loss from the base, improve heating efficiency, and reduce operating costs.

[0028] The heating ring 103 is arranged in a spiral pattern, which can greatly increase the contact area with the cement base 102, so that the heat can be evenly and fully transferred to the interior of the base, avoiding local overheating or uneven temperature, ensuring the overall temperature stability of the cement base 101, suppressing frost heave and thaw settlement from the source, and ensuring the structural integrity and mechanical properties of the base. The power supply module 8 integrates a temperature detection unit, which can monitor the external ambient temperature of the base in real time. When the ambient temperature is detected to be lower than the preset threshold, the power supply module 8 automatically starts and supplies power to the heating wire 104, so that the heating wire 104 generates heat, which is conducted to the cement base 101 and the connecting column 102 through the heating ring 103, realizing active temperature control of the base, suppressing frost heave and thaw settlement, and ensuring structural stability.

[0029] Example 2: This example is an improvement upon Example 1. Please refer to [link / reference]. Figure 2 Specifically, the lower inner layer of the cement base 101 is also provided with a reinforcing base plate 105. The surface of the reinforcing base plate 105 is provided with evenly distributed grooves 106. The grooves 106 are provided with connecting steel bars 108. The bottom of each connecting steel bar 108 is fixedly connected with a vertically arranged extension reinforcing column 107.

[0030] The top of each connecting steel bar 108 is fixedly connected with a reinforcing plate 109.

[0031] The cement base 101 is internally equipped with vertically extending reinforcing columns 107, the top of which is fixedly connected to connecting steel bars 108. The connecting steel bars 108 extend upwards through the reinforcing base plate 105, which is embedded inside the cement base 101 and tightly bonded to the concrete. The upper end of the connecting steel bars 108 is fixedly connected to the reinforcing plate 109, so that the cement base 101, reinforcing base plate 105, extending reinforcing columns 107, connecting steel bars 108, and reinforcing plate 109 form an integrated load-bearing structure through concrete pouring and steel bar connection. This integrated structure can significantly improve the overall rigidity and pull-out and lateral displacement resistance of the base, effectively resist uneven settlement and horizontal thrust caused by frost heave and thaw settlement in frozen soil areas, avoid base cracking, loosening, and tower tilting, and ensure the long-term stable operation of the communication tower.

[0032] Example 3: This example is an improvement on Example 2. Please refer to [link / reference]. Figure 1 Specifically, the side of the foundation 2 is also connected to a drainage pipe 5, and one end of the drainage pipe 5 is provided with a sinkhole 4 opened inside the foundation 2.

[0033] In actual use, a water collection trough 3 is provided on the top of the foundation 2 to collect rainwater, snowmelt, and surface runoff. The water collection trough 3 guides the internal water to the far end of the foundation through the drainage pipe 5, effectively preventing water from seeping into the soil around the foundation, preventing excessive soil moisture content from causing accelerated freeze-thaw cycles, softening, and erosion, and ensuring the mechanical stability of the soil around the foundation.

[0034] A settling trough 4 is installed inside the water collection trough 3. The settling trough 4 is located at the inlet of the drainage pipe 5, which can form a sedimentation space to effectively intercept mud, sand and other impurities, prevent them from entering the drainage pipe 5 and causing blockage, ensure the long-term smooth and stable operation of the drainage system, and further improve the adaptability and reliability of the base in complex climate and frozen soil environments.

[0035] Example 4: This example is an improvement on Example 3. Please refer to [link / reference]. Figure 3 and Figure 4 Specifically, the power supply module 8 includes a power supply cabinet 801. A storage slot 803 is provided on one side of the power supply cabinet 801, and a first fan blade 810 is provided inside the storage slot 803. A rotating shaft 809 is fixedly connected inside the first fan blade 810. A rotating disk 808 is rotatably connected to one end of the rotating shaft 809. A vertical plate 806 is fixedly connected to the outside of the rotating disk 808. A moving end of a pushing mechanism 807 is fixedly connected to one end of the vertical plate 806, and the outside of the pushing mechanism 807 is fixedly connected to the inner wall of the power supply cabinet 801. A second fan blade 811 is also fixedly connected to the outside of the rotating shaft 809.

[0036] The bottom of the storage slot 802 is provided with a guide slot 803, and the guide slot 803 is set with an inclined surface.

[0037] A fixing rod 805 is fixedly connected to one side of the vertical plate 806, and a baffle 804 is fixedly connected to the other end of the fixing rod 805.

[0038] The outer sides of the fixed rod 805 and the rotating shaft 809 are rotatably connected to the power supply cabinet 801.

[0039] The built-in detection unit of the power supply cabinet 801 has high-precision temperature sensing capabilities, which can monitor the external ambient temperature of the cabinet in real time. When the detected external temperature is in a low range (especially suitable for extremely cold regions or low-temperature operating conditions), the heat continuously generated by various electronic components (such as controllers, contactors, terminals, etc.) inside the power supply cabinet 801 during operation can be naturally transferred through the hollow gaps reserved inside the heating ring 103 to form a directional heat flow channel without the need for additional heat dissipation or insulation equipment. This heat flows uniformly along the gaps of the heating ring 103, making full contact with the inner wall of the heating ring 103. With the help of the good thermal conductivity of the heating ring 103, efficient heat exchange is achieved, and the redundant heat generated by the electronic components is stably transferred to the interior of the cement base 101, thereby achieving the purpose of auxiliary heating of the cement base 101. This not only avoids damage problems such as freezing and cracking or condensation of the cement base 101 due to low temperature, ensuring its structural stability, but also realizes the initial recovery and utilization of redundant heat, which is in line with the design concept of energy saving and consumption reduction.

[0040] Meanwhile, during actual operation, staff can flexibly control the push mechanism 807 based on temperature changes inside the power supply cabinet 801 and the operating load of electronic components. The extension and retraction of the push mechanism 807 causes the vertical plate 806, which is fixedly connected to it, to move horizontally. During this movement, the vertical plate 806 simultaneously displaces the rotating disk 808 and rotating shaft 809 mounted on one side, causing the first blade 810, originally stored in a designated position, to gradually extend outside the power supply cabinet 801. When there is natural airflow in the external environment (such as outdoor wind fields or airflow from surrounding ventilation systems), the flowing air exerts a continuous force on the extended first blade 810, causing it to rotate around the rotating shaft 809. The rotation of the first blade 810 directly drives the rotating shaft 809 to rotate synchronously. The other end of the rotating shaft 809 extends into the power supply cabinet 801 and is linked with the second blade 811 fixed on the shaft, thereby causing the second blade 811 to rotate at high speed, achieving forced air circulation inside the power supply cabinet 801.

[0041] The design of this linkage structure achieves a dual practical effect: On the one hand, the hot air inside the cabinet, heated by the electronic components, can flow more quickly and fully through the gaps in the heating ring 103 under the drive of the second fan blade 811, improving heat exchange efficiency and allowing more redundant heat to be transferred to the cement base 101, enhancing the auxiliary heating effect on the cement base 101 and ensuring that the cement base 101 maintains a stable working state in low-temperature environments; on the other hand, the rapid flow of hot air can promptly remove the accumulated heat around the electronic components inside the power supply cabinet 801, effectively reducing the overall temperature inside the cabinet and preventing the electronic components from experiencing performance degradation, shortened lifespan, or even failure due to prolonged exposure to high temperatures. This truly achieves energy recycling, taking into account both equipment protection and energy-saving requirements, and significantly improving the operational stability and practicality of the entire power supply system under low-temperature conditions.

[0042] To ensure the stable operation of the aforementioned linkage structure, a specially designed storage slot 803 is provided on the power supply cabinet 801. Its dimensions are precisely matched with the specifications of the first fan blade 810. This slot is mainly used to completely store the first fan blade 810 inside the slot when the equipment is not running and air circulation and heat recovery are not required. This effectively isolates the first fan blade 810 from external air contact, preventing unrelated external airflow (such as turbulence or strong winds) from causing the first fan blade 810 to rotate meaninglessly. This also prevents the rotating shaft 809 and the second fan blade 811 from spinning idly, reducing component wear and unnecessary energy loss. At the same time, it also prevents the first fan blade 810 from being exposed to dust, rain, debris, and other damage for a long time, thus extending its service life.

[0043] Meanwhile, the guide groove 803 located below the storage groove 803 adopts an inclined structure design. Its guiding direction is precisely aligned with the bottom outlet of the storage groove 803. When dust, debris, small foreign objects accidentally enter the storage groove 803 and accumulate at the bottom, the inclined guiding action of the guide groove can guide the impurities to fall smoothly down the slope of the guide groove and finally be discharged to one side of the cabinet. This prevents impurities from accumulating inside the storage groove 803 and prevents the first blade 810 from being unable to extend or retract normally due to impurities blocking it, ensuring the flexible operation of the components. At the same time, it can also prevent the first blade 810 from shaking or shifting when retracted, ensuring the stability and sealing of the entire equipment structure and providing additional protection for the safe operation of electronic components inside the power supply cabinet 801.

[0044] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only for the purpose of helping to understand the method and core ideas of the present invention. The above descriptions are only preferred embodiments of the present invention. It should be noted that due to the limitations of textual expression, while there are objectively infinite specific structures, those skilled in the art can make several improvements, modifications, or changes without departing from the principles of the present invention, and can also combine the above technical features in an appropriate manner. These improvements, modifications, changes, or combinations, or the direct application of the inventive concept and technical solution to other situations without modification, should all be considered within the scope of protection of the present invention.

Claims

1. A communication tower fixing base for communication engineering, characterized in that: It includes a support base (1), a platform (2), and a power supply module (8); A support base (1) is installed on the top of a support platform (2), and a water collection trough (3) is provided above the support platform (2). A connecting seat (6) is fixedly connected to the support platform (2) in the center of the water collection trough (3), and multiple vertically arranged connecting bolts (7) are fixedly connected to the top of the connecting seat (6). The bearing base (1) includes a cement base (101), and a vertically arranged connecting column (102) is fixedly connected to the top of the cement base (101). The outer side of the connecting column (102) is fixedly connected to the bearing base (2). The upper inner layer of the cement base (101) is also fixedly connected to a spirally arranged heating ring (103), and a heating wire (104) is fixedly connected inside the heating ring (103). The two ends of the heating wire (104) are connected to the power supply module (8), and the power supply module (8) is located on one side of the cement base (101).

2. The communication tower fixing base for communication engineering according to claim 1, characterized in that: A ring of insulation board (110) is provided on the outside of the cement base (101).

3. The communication tower fixing base for communication engineering according to claim 1, characterized in that: The connecting column (102) is hollow and the interior of the connecting column (102) is filled with heating material.

4. The communication tower fixing base for communication engineering according to claim 1, characterized in that: The lower inner layer of the cement base (101) is also provided with a reinforcing base plate (105). The surface of the reinforcing base plate (105) is provided with uniformly distributed grooves (106). The grooves (106) are provided with connecting steel bars (108). The bottom of the connecting steel bars (108) is fixedly connected with vertically arranged extension reinforcing columns (107).

5. The communication tower fixing base for communication engineering according to claim 4, characterized in that: The top of each connecting steel bar (108) is fixedly connected with a reinforcing plate (109).

6. The communication tower fixing base for communication engineering according to claim 1, characterized in that: The side of the foundation (2) is also connected to a drain pipe (5), and one end of the drain pipe (5) is provided with a sinkhole (4) inside the foundation (2).

7. The communication tower fixing base for communication engineering according to claim 1, characterized in that: The power supply module (8) includes a power supply cabinet (801), a storage slot (803) is provided on one side of the power supply cabinet (801), and a first fan blade (810) is provided inside the storage slot (803). A rotating shaft (809) is fixedly connected inside the first fan blade (810). A rotating disk (808) is rotatably connected to one end of the rotating shaft (809). A vertical plate (806) is fixedly connected to the outside of the rotating disk (808). A moving end of a pushing mechanism (807) is fixedly connected to one end of the vertical plate (806), and the outside of the pushing mechanism (807) is fixedly connected to the inner wall of the power supply cabinet (801). A second fan blade (811) is also fixedly connected to the outside of the rotating shaft (809).

8. The communication tower fixing base for communication engineering according to claim 7, characterized in that: The bottom of the storage slot (802) is provided with a guide groove (803), and the guide groove (803) is set with an inclined surface.

9. The communication tower fixing base for communication engineering according to claim 7, characterized in that: A fixing rod (805) is fixedly connected to one side of the vertical plate (806), and a baffle (804) is fixedly connected to the other end of the fixing rod (805).

10. The communication tower fixing base for communication engineering according to claim 9, characterized in that: The outer sides of the fixed rod (805) and the rotating shaft (809) are rotatably connected to the power supply cabinet (801).