Multifunctional emergency rescue vehicle for urban ground collapse
By setting up a multi-functional area on the emergency rescue vehicle and rationally arranging the drilling and grouting, power and electricity, pumping and drainage equipment and materials and equipment, the problem of insufficient loading capacity of traditional emergency rescue vehicles has been solved, and the rapid and efficient delivery of rescue materials and equipment stability have been achieved, meeting the rescue needs of tunnel ground collapse accidents.
Patent Information
- Application Number
- CN202423033256.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-10
AI Technical Summary
Traditional emergency rescue vehicles have limited loading capacity, making it difficult to deliver large amounts of rescue supplies to the ground collapse site within half an hour. They cannot meet the rapid rescue needs of tunnel stratum collapse accidents under complex geological conditions.
A multifunctional emergency rescue vehicle for urban ground collapse is designed. Multiple functional areas are set on the vehicle body, including the main equipment area, auxiliary equipment area and weight balance area, which are respectively arranged with drilling and grouting equipment, power and electrical equipment, drainage equipment, supplies and other tools. Reasonable division of labor and layout are ensured to ensure efficient storage and rapid deployment of equipment and supplies.
It achieved the goal of delivering a large amount of rescue supplies to the ground collapse site within half an hour, improving rescue efficiency, ensuring the stability and safety of equipment, reducing the time for searching and transporting equipment, and meeting the needs of rapid rescue under complex geological conditions.
Smart Images

Figure CN223478909U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of emergency rescue equipment technology, specifically to a multi-functional emergency rescue vehicle for urban ground collapse. Background Technology
[0002] In recent years, with the acceleration of global urbanization, urban rail transit systems have been widely promoted and constructed as an important means to alleviate urban traffic pressure and improve public transportation efficiency. However, with the continuous extension and expansion of rail transit lines such as subways and light rails, the geological complexity encountered during construction and operation has become increasingly prominent. Especially in areas with poor geological conditions, abundant groundwater, or insufficient soil stability, the risk of local collapse of tunnel strata has increased significantly. This not only threatens the safe operation of rail transit but may also have a serious impact on the surrounding environment and residents' lives.
[0003] Traditional emergency rescue systems often rely on single-function emergency rescue vehicles for material transport and personnel rescue when facing tunnel collapses. While these vehicles can perform basic rescue tasks to some extent, such as transporting rescue personnel and carrying simple rescue tools, their limited carrying capacity makes it difficult to deliver the large quantities of necessary rescue supplies (such as drilling and grouting equipment, pumping equipment, lighting equipment, and communication equipment) to the collapsed site within the required half-hour rescue time.
[0004] The above-mentioned defects urgently need to be addressed. Utility Model Content
[0005] To address the problem that existing emergency rescue vehicles have limited loading capacity and cannot deliver all the necessary relief supplies to the site of a ground collapse within half an hour, this utility model provides a multi-functional emergency rescue vehicle for urban ground collapses.
[0006] The technical solution of this utility model is as follows:
[0007] A multi-functional emergency rescue vehicle for urban ground collapse includes a rescue vehicle body, on which multiple functional areas are provided. The multiple functional areas include a main equipment area, an auxiliary equipment area, and a weight balance area arranged sequentially. The weight balance area is located at the rear of the rescue vehicle body.
[0008] The main equipment area includes a drilling and grouting equipment area, a power equipment area, and a drainage equipment area, which are arranged side by side on the body of the rescue vehicle.
[0009] According to the above-described scheme of this utility model, the drilling and grouting equipment area is equipped with an integrated drilling and grouting machine, a dual-liquid synchronous grouting pump and a floor-mounted mixer.
[0010] According to the above-described scheme of this utility model, a mobile screw air compressor and a silent generator set are installed in the power equipment area.
[0011] According to the above-described scheme of this utility model, a submersible sewage pump is installed in the drainage equipment area.
[0012] According to the above-described scheme of this utility model, the auxiliary equipment area includes a grouting and leak-stopping material area, a material and equipment area, an auxiliary rescue facility area, and other tool areas. The grouting and leak-stopping material area, the material and equipment area, the auxiliary rescue facility area, and the other tool areas are arranged side by side on the body of the rescue vehicle.
[0013] According to the above-described scheme of this utility model, the grouting and sealing material area is equipped with cement, water glass, and grouting pipes.
[0014] According to the above-described scheme of this utility model, the material and equipment area is provided with a disc buckle frame, channel steel, square timber, steel plate and cotton quilt.
[0015] According to the above-described scheme of this utility model, the auxiliary rescue facility area is equipped with jacks, chain hoists, handcarts, fire extinguishers, switch boxes, rope ladders, and walkie-talkies.
[0016] According to the above-described scheme of this utility model, the other tool area is equipped with personal protective equipment, directional signs, warning tape, rubber barriers, flashing lights, and sandbags.
[0017] According to the above-described scheme of this utility model, a plurality of prefabricated slabs are provided in the weight balance area.
[0018] According to the above-described scheme of this utility model, a ladder is provided on the side of the weight balance area.
[0019] The advantages of this utility model based on the above solution are as follows:
[0020] The aforementioned multi-functional emergency rescue vehicle for urban ground collapses is equipped with multiple functional areas, including a main equipment area, an auxiliary equipment area, and a weight balance area arranged sequentially. These functional areas are not only clearly defined in their functions but also rationally laid out, allowing for the unified and orderly storage of rescue supplies and equipment. This enables rescue personnel to quickly locate the necessary equipment in emergency situations, reducing the time spent searching for and transporting equipment, thereby accelerating the rescue progress. Furthermore, it can deliver a large amount of necessary rescue supplies to the ground collapse site within half an hour, ensuring efficient loading and rapid deployment of rescue supplies.
[0021] In addition, the main equipment area includes a drilling and grouting equipment area, a power equipment area, and a drainage equipment area. These areas are arranged side by side on the rescue vehicle, allowing the vehicle to carry multiple critical rescue equipment at once. This enables the vehicle to quickly stabilize the collapsed area, provide power support, and remove accumulated water, creating favorable conditions for subsequent rescue operations.
[0022] In addition, the weight balance zone is located at the rear of the rescue vehicle, which helps maintain the stability of the vehicle during driving and ensures the reasonable distribution of loaded materials. This avoids operational difficulties or safety hazards caused by uneven weight distribution and ensures stability during operation. Attached Figure Description
[0023] Figure 1 This is one of the structural schematic diagrams of this utility model;
[0024] Figure 2 This is the second structural schematic diagram of the present invention.
[0025] In the diagram, 1. Rescue vehicle body; 11. Main equipment area; 111. Drilling and grouting equipment area; 112. Power equipment area; 113. Pumping and drainage equipment area; 12. Auxiliary equipment area; 121. Grouting and leak sealing material area; 122. Material and equipment area; 123. Auxiliary rescue facility area; 124. Other tools area; 13. Weight balance area; 131. Precast slab; 132. Ladder; 14. Vehicle drive area; 15. Truck-mounted crane area. Detailed Implementation
[0026] To make the technical problem to be solved, the technical solution, and the beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this utility model and are not intended to limit this utility model.
[0027] like Figure 1 As shown, this utility model provides a multi-functional emergency rescue vehicle for urban ground collapse, including a rescue vehicle body 1. The rescue vehicle body 1 is equipped with multiple functional areas, including a main equipment area 11, an auxiliary equipment area 12, and a weight balance area 13 arranged sequentially. The multiple functional areas are not only clearly divided but also rationally laid out, thereby uniformly and neatly storing rescue materials and equipment. This allows rescue personnel to quickly find the required equipment in emergency situations, reducing the time spent searching for and transporting equipment, thus accelerating the rescue progress. Furthermore, it can deliver a large amount of required rescue materials to the ground collapse site within half an hour, ensuring efficient loading and rapid deployment of rescue materials.
[0028] like Figure 1As shown, in this embodiment, the rescue vehicle body 1 is also provided with a vehicle driving area 14 and a truck-mounted crane area 15. The vehicle driving area 14 is located in front of the main equipment area 11, and the truck-mounted crane area 15 is located between the auxiliary equipment area 12 and the weight balance area 13. This makes full use of the space of the rescue vehicle, so that the various functional areas are both independent and closely connected, forming an efficient and orderly whole.
[0029] like Figure 2 As shown, in this embodiment, the main equipment area 11 includes a drilling and grouting equipment area 111, a power equipment area 112, and a drainage equipment area 113. The drilling and grouting equipment area 111 is responsible for quickly stabilizing the collapsed area, the power equipment area 112 provides necessary power support to the rescue site, and the drainage equipment area 113 helps to remove accumulated water, creating a safe working environment for rescue personnel. Furthermore, the drilling and grouting equipment area 111, the power equipment area 112, and the drainage equipment area 113 are arranged side-by-side on the rescue vehicle body 1, enabling the rescue vehicle to carry multiple critical rescue equipment at once, quickly stabilize the collapsed area, provide power support, and remove accumulated water, creating favorable conditions for subsequent rescue operations.
[0030] In this embodiment, the drilling and grouting equipment area 111 is equipped with an integrated drilling and grouting machine, a dual-liquid synchronous grouting pump, and a floor-mounted mixer. The integrated drilling and grouting machine combines drilling and grouting functions, simplifying the operation process and improving work efficiency. In emergency rescue or construction tasks, it can quickly complete drilling and immediately begin grouting operations, reducing equipment changeover time. The dual-liquid synchronous grouting pump can simultaneously inject two different types of grout, such as cement grout and chemical grout, meeting the grouting needs under complex geological conditions. Simultaneous grouting ensures the uniformity and stability of the grout, improving the grouting effect. The floor-mounted mixer provides sufficient mixing capacity and stability, ensuring uniform grout mixing and avoiding poor grouting results caused by uneven grout distribution.
[0031] In this embodiment, a mobile screw air compressor and a silent generator set are installed in the power equipment area 112. The mobile screw air compressor provides a stable air source to support the operation of drilling and grouting equipment and other pneumatic tools. Furthermore, its mobile design allows the air compressor to be used flexibly in different locations to meet varying on-site needs. The silent generator set can provide stable power support for the entire rescue vehicle in the event of insufficient or interrupted power supply, while its silent design reduces noise pollution, making it suitable for rescue or construction environments where quiet is required.
[0032] In this embodiment, a submersible sewage pump is installed in the drainage equipment area 113. The submersible sewage pump is suitable for various complex environments, such as deep water and sludge, and can quickly remove accumulated water, creating favorable conditions for rescue or construction. At the same time, the submersible design avoids the risk of the pump body being submerged, improving the reliability and service life of the equipment.
[0033] like Figure 2 As shown, in this embodiment, the auxiliary equipment area 12 includes a grouting and sealing material area 121, a material and equipment area 122, an auxiliary rescue facility area 123, and other tool areas 124, making reasonable and effective use of the space inside the rescue vehicle. The material and equipment area 122 stores the materials and equipment needed for rescue, the auxiliary rescue facility area 123 provides additional rescue support equipment, and the other tool areas 124 store various commonly used tools, enabling rescue personnel to quickly find the required items, reducing search and transportation time, and thus improving the efficiency of rescue operations. Furthermore, the grouting and sealing material area 121, material and equipment area 122, auxiliary rescue facility area 123, and other tool areas 124 are arranged side-by-side on the rescue vehicle body 1, making the internal structure of the rescue vehicle compact and orderly, saving space, and making the items inside the rescue vehicle more neatly arranged, facilitating management and maintenance. Rescue personnel can clearly see the items in each area, avoiding mis-taking or omissions due to disorder. At the same time, it also facilitates regular inspection and maintenance of items by rescue personnel, ensuring the integrity and usability of the rescue equipment.
[0034] In this embodiment, the grouting and sealing material area 121 is equipped with cement, water glass, and grouting pipes. Specifically, during grouting, cement is mainly used to increase the bonding strength, hardness, and density of the concrete, while also enhancing the stability of the structure. Water glass is an inorganic cementitious material that can react with cement to form a cementitious substance with good bonding properties. In emergency rescue, water glass can act as a quick-setting agent, accelerating the solidification speed of the cement grout to form a robust waterproof barrier, effectively preventing the flow or leakage of groundwater. In emergency rescue, the grouting pipes ensure that the grout is accurately delivered to the leakage point or the area requiring reinforcement, while controlling the diffusion range of the grout to ensure the grouting effect.
[0035] In this embodiment, the material and equipment area 122 is equipped with modular support frames, channel steel, square timber, steel plates, and cotton quilts. This allows the rescue vehicle to quickly provide the necessary material support in the face of different types of disasters, meeting various rescue needs. Rescue personnel do not need to search for or purchase materials temporarily in emergency situations, thus greatly reducing preparation time and improving rescue efficiency. Specifically, the modular support frames can serve as temporary support structures for temporary reinforcement at collapse sites or for building temporary shelters. Channel steel, square timber, and steel plates can be used to repair damaged structures or build temporary passages, providing safe passage for rescue personnel. Cotton quilts can be used for warmth or temporary shelter, providing basic protection and comfort to injured personnel.
[0036] In this embodiment, the auxiliary rescue facility area 123 is equipped with jacks, chain hoists, handcarts, fire extinguishers, switch boxes, rope ladders, and walkie-talkies, which enhance the rescue capabilities of the rescue vehicle and improve operational efficiency. Specifically, the jacks and chain hoists can be used to lift or move heavy objects, especially in the event of a collapse or being buried under heavy objects, enabling the rapid rescue of trapped personnel. The handcart facilitates the transportation of materials and equipment, reducing the labor intensity of manual handling. The fire extinguishers can be used to deal with possible fire situations, ensuring the safety of the rescue site. The switch box provides power control, ensuring the normal power supply to the rescue equipment. The rope ladder and walkie-talkies can be used for vertical rescue and communication, respectively, enhancing the collaborative combat capabilities of the rescue team.
[0037] In this embodiment, the other tool area 124 is equipped with personal protective equipment, directional signs, warning tape, rubber barriers, flashing lights, and sandbags, further improving the rescue vehicle's rescue system, enhancing emergency response capabilities, helping to maintain order and safety at the rescue site, and reducing rescue delays caused by chaos. Specifically, personal protective equipment such as helmets, protective clothing, and gloves provide necessary protection for rescue personnel and reduce the risk of injury. Directional signs, warning tape, and rubber barriers can be used to set up safety warnings and directions at the rescue site, ensuring that rescue personnel can quickly find the target area and avoid accidentally entering dangerous areas. Flashing lights can provide strong visual warnings, especially at night or in poor visibility conditions, quickly attracting attention and improving visibility at the rescue site. Sandbags can be used to temporarily block water flow or set up obstacles to prevent the disaster from spreading.
[0038] like Figure 2 As shown, in this embodiment, the weight balance zone 13 is located at the rear of the rescue vehicle body 1, which helps maintain the stability of the vehicle during driving and ensures the reasonable distribution of loaded materials. This avoids operational difficulties or safety hazards caused by uneven weight distribution, ensuring stability during operation. The design of the weight balance zone 13 makes the center of gravity more stable when the vehicle turns, accelerates, or brakes, reducing handling difficulties caused by weight transfer and improving the driver's handling experience. This allows the rescue vehicle to respond more flexibly and accurately to various road conditions. In addition, two prefabricated plates 131 are provided within the weight balance zone 13. The position and number of prefabricated plates 131 can be flexibly adjusted as needed to achieve a reasonable distribution of loaded materials, avoiding operational difficulties caused by uneven weight distribution, such as vehicle tilting and uneven tire wear, thereby improving loading efficiency and vehicle lifespan. Of course, in actual design, the number of prefabricated plates 131 can be designed according to actual needs. In addition, a ladder 132 is provided on the side of the weight balance area 13, providing a convenient passage for emergency rescue personnel, facilitating the storage and retrieval of emergency rescue equipment and materials, and the operation command of the truck crane.
[0039] It should be understood that those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.
[0040] The present utility model patent has been described above with reference to the accompanying drawings. Obviously, the implementation of the present utility model patent is not limited to the above-described manner. Any improvements made by adopting the inventive concept and technical solution of the present utility model patent, or the direct application of the inventive concept and technical solution of the present utility model patent to other occasions without modification, are all within the protection scope of the present utility model.
Claims
1. A multi-functional emergency rescue vehicle for urban ground collapse, characterized in that, The vehicle includes a rescue vehicle body, which is provided with multiple functional areas. The multiple functional areas include a main equipment area, an auxiliary equipment area, and a weight balance area arranged sequentially. The weight balance area is located at the rear of the rescue vehicle body. The main equipment area includes a drilling and grouting equipment area, a power equipment area, and a drainage equipment area, which are arranged side by side on the body of the rescue vehicle.
2. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 1, characterized in that, The drilling and grouting equipment area is equipped with an integrated drilling and grouting machine, a dual-liquid synchronous grouting pump, and a floor-mounted mixer.
3. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 1, characterized in that, The power equipment area is equipped with a mobile screw air compressor and a silent generator set.
4. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 1, characterized in that, Submersible sewage pumps are installed in the drainage equipment area.
5. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 1, characterized in that, The auxiliary equipment area includes a grouting and leak sealing material area, a material and equipment area, an auxiliary rescue facility area, and other tool areas. The grouting and leak sealing material area, the material and equipment area, the auxiliary rescue facility area, and the other tool areas are arranged side by side on the body of the rescue vehicle.
6. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 5, characterized in that, The grouting and sealing material area is equipped with cement, water glass, and grouting pipes.
7. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 5, characterized in that, The materials and equipment area is equipped with disc buckle frames, channel steel, square timber, steel plates, and cotton quilts.
8. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 5, characterized in that, The auxiliary rescue facility area is equipped with jacks, chain hoists, handcarts, fire extinguishers, switch boxes, rope ladders, and walkie-talkies.
9. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 5, characterized in that, The other tools area is equipped with personal protective equipment, directional signs, warning tape, rubber barriers, flashing lights, and sandbags.
10. The multi-functional emergency rescue vehicle for urban ground collapse according to claim 1, characterized in that, Several prefabricated slabs are arranged within the weight balance area.