Reinforced comprehensive rescue box for field emergency rescue

Through the combined design of the inner support body, the outer protective gas, the inner protective gas and the extrusion buffer body, combined with the inflation drive mechanism, the problem of poor stability of the rescue box structure is solved, and medium- and low-altitude drops and cost reduction are achieved.

CN120348595APending Publication Date: 2025-07-22BEIJING HONGCHENG INNOVATION TECH CO LTD
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Patent Information

Application Number
CN202510693518.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-27
Publication Date
2025-07-22

AI Technical Summary

Technical Problem

The existing rescue box has poor structural stability and cannot be highly deployed. It has a small applicable environment and poor usage stability.

Method used

It adopts a combination design of inner support body, outer protective gas, inner protective gas and extrusion buffer body, combined with the inflation drive mechanism, to form a triple shock absorbing buffering effect, which is suitable for medium and low altitude drop.

Benefits of technology

It improves the overall structural stability and use safety of the rescue box, expands the applicable environment, and reduces the cost and weight of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of field emergency rescue, and particularly relates to a reinforced comprehensive rescue box for field emergency rescue, which comprises a containing body, an inner support body, an inflation driving mechanism, an outer protective inflation body, an inner protective inflation body and an extrusion buffer body, the inner support body is connected to the accommodating body; a buffer assembly gap is formed between the inner support body and the accommodating body; the inner protective inflation body is arranged in the buffer assembly gap; the two side ends of the extrusion buffering body are connected to the inner supporting body and the containing body respectively. The outer protective inflating body is connected to the outer side surface, far away from the buffer assembly gap, of the accommodating body; the inflation driving mechanism is arranged in the inner supporting body; and the outer protection inflating body and the inner protection inflating body are both communicated with the inflating driving mechanism. According to the invention, the buffer protection effect on instruments and instruments in the inner support body can be improved; therefore, the stability of the whole structure and the use safety can be improved, and the device is also suitable for throwing operation at middle and low altitudes.
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Description

Technical Field

[0001] The present invention belongs to the technical field of field emergency rescue, and particularly relates to a reinforced comprehensive rescue box for field emergency rescue. Background Art

[0002] In the event of an emergency, it is often necessary to carry out emergency rescue work on rescue personnel in order to prevent the situation from becoming more serious. The device used for emergency rescue is called an emergency rescue box. Rescue boxes are essential items for medical staff, and field rescue boxes containing simple medical items are also suitable for ordinary people. Some simple rescue items are essential inside, such as pliers, wrenches, lubricating oil, air pumps, band-aids, iodophor, mercurochrome, etc.; and some emergency rescue instruments and equipment are also carried.

[0003] However, the structural stability of most existing rescue boxes is poor, and they cannot perform the operation of dropping and transporting at a certain height. They need to be carried and transported by personnel themselves, so the applicable environment range is small, and the use stability is poor. Summary of the Invention

[0004] The purpose of the present invention is to provide, in view of the deficiencies of the prior art, a reinforced comprehensive rescue box for field emergency rescue, which can solve the technical problem of the small applicable environment range of the prior art.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions: A reinforced comprehensive rescue box for field emergency rescue includes a containing body, an inner support body, an inflation driving mechanism, an outer protective inflatable body, an inner protective inflatable body, and a squeezing buffer body; the inner support body is connected to the inside of the containing body; and there is a buffer assembly gap between the inner support body and the containing body; the inner protective inflatable body is arranged inside the buffer assembly gap; both sides of the squeezing buffer body are respectively connected to the inner support body and the containing body; the outer protective inflatable body is connected to the outer surface of the containing body far away from the buffer assembly gap; the inflation driving mechanism is arranged inside the inner support body; and the gas delivery ends of the outer protective inflatable body and the inner protective inflatable body are both communicated with the inflation driving mechanism.

[0006] Preferably, the containing body includes a main box body and a cover body connected to the top of the main box body; the buffer assembly gap is formed between the inner side wall of the main box body and the outer side wall of the inner support body.

[0007] Preferably, the outer protective inflatable body includes a second inflatable bag body and a first inflatable bag body; the first inflatable bag body is connected to the outer surface of the main box body; the second inflatable bag body is connected to the outer surface of the cover body; and the gas delivery ends of the second inflatable bag body and the first inflatable bag body are both communicated with the inflation driving mechanism.

[0008] Preferably, an assembly groove is provided on one side surface of the cover body facing the main box body; a support mesh plate is provided inside the assembly groove; and a buffer cotton is further provided between the support mesh plate and the cover body.

[0009] Preferably, a first gas storage cavity is provided inside the first inflatable bag body; the first inflatable bag body is further provided with a first gas valve; one end of the first gas valve is communicated with the first gas storage cavity; the other end of the first gas valve passes through the main box body and is communicated with the inflation driving mechanism; and / or, a third gas storage cavity is provided inside the second inflatable bag body; the second inflatable bag body is further provided with a third gas valve; one end of the third gas valve is communicated with the third gas storage cavity; the other end of the third gas valve passes through the main box body and is communicated with the inflation driving mechanism; and / or, the inner protective inflatable body includes an airbag bag and a second gas valve; a second gas storage cavity is provided inside the airbag bag; one end of the second gas valve passes through the airbag bag and is communicated with the second gas storage cavity; the other end of the second gas valve is communicated with the inflation driving mechanism.

[0010] Preferably, a fourth storage adhesive is provided on the outer surface of the first inflatable bag body away from the main box body; a third storage adhesive is provided on the outer surface of the main box body; when the first inflatable bag body is in an uninflated or partially inflated state, the fourth storage adhesive is connected to the third storage adhesive; and / or, a second storage adhesive is provided on the outer surface of the second inflatable bag body away from the cover body; a first storage adhesive is provided on the outer surface of the cover body; when the second inflatable bag body is in an uninflated or partially inflated state, the second storage adhesive is connected to the first storage adhesive.

[0011] Preferably, the inflation driving mechanism includes an air pump assembly and a gas delivery pipe group connected to one end of the air pump assembly; and both the outer protective inflatable body and the inner protective inflatable body are communicated with the gas delivery pipe group.

[0012] Preferably, the extrusion buffer body includes a first connecting plate, an extrusion spring, a second connecting plate, and a first positioning column; the first connecting plate is connected to the inner wall of the main box body; one end of the extrusion spring is connected to the first connecting plate; the other end of the extrusion spring is connected to the second connecting plate; one end of the first positioning column is connected to the second connecting plate; the other end of the first positioning column penetrates into the inner support body and is detachably connected to the inner support body.

[0013] Preferably, at least one partition plate is provided in the inner support body; the partition plate and the inner support body are provided with an instrument placement cavity, an installation cavity, an instrument placement cavity, and a wire harness placement cavity; the inflation drive mechanism is arranged in the installation cavity; the wire harness placement cavity is used for storing the wire harness of the instrument; the instrument placement cavity is used for placing rescue instruments; the instrument placement cavity is used for placing rescue instrument equipment.

[0014] Preferably, a placement rack is provided in the instrument placement cavity; the placement rack can be arranged to move back and forth along the height direction of the instrument placement cavity; And / or, a wire pushing rack is provided in the wire harness placement cavity; the wire pushing rack can be arranged to move back and forth along the height direction of the wire harness placement cavity.

[0015] The beneficial effect of the present invention is that through the external gas buffering effect of the outer protective inflatable body on the accommodating body of the present technical solution, combined with the gas buffering effect of the inner protective inflatable body on the inner support body and the contact buffering effect of the extrusion buffer body on the inner support body, a triple shock absorption and buffering effect is formed, so as to improve the buffering and protection effect on the instruments and devices inside the inner support body; furthermore, the stability of the overall structure and the safety of use can be improved, and it is also applicable to low-altitude and medium-altitude dropping operations, improving the scope of its applicable environment; in addition, a single inflation drive mechanism is used as the inflation power source to effectively reduce the input of the drive source, thereby effectively saving the use cost and reducing the overall weight. Description of the Drawings

[0016] The following will refer to the attached Figures 1 to 5 to describe the features, advantages, and technical effects of the exemplary embodiments of the present invention.

[0017] Figure 1 It is a schematic structural diagram of a reinforced comprehensive rescue box for field emergency rescue according to an embodiment of the present invention; Figure 2 It is a schematic structural diagram of the main box body of a reinforced comprehensive rescue box for field emergency rescue according to an embodiment of the present invention; Figure 3 It is a partial enlarged schematic diagram of the main box body of a reinforced comprehensive rescue box for field emergency rescue according to an embodiment of the present invention; Figure 4 Structural schematic diagram of the cover of the reinforced comprehensive rescue box for field emergency rescue according to an embodiment of the present invention; Figure 5 Structural schematic diagram of the inner support body of the reinforced comprehensive rescue box for field emergency rescue according to an embodiment of the present invention.

[0018] In the figure: 1 - receiving body; 101 - buffer assembly gap; 11 - cover body; 12 - main box body; 111 - first storage adhesive attachment; 112 - assembly groove; 113 - support mesh plate; 114 - buffer cotton; 115 - handle; 116 - second limiting hole; 121 - third storage adhesive attachment; 2 - inner support body; 201 - installation cavity; 202 - instrument placement cavity; 203 - wire harness placement cavity; 204 - instrument placement cavity; 205 - first limiting groove; 206 - second limiting groove; 22 - wire pushing frame; 23 - storage rack; 3 - inflation driving mechanism; 31 - air pump assembly; 311 - air extraction and blowing pump; 312 - first air delivery pipe; 32 - gas delivery pipe group; 321 - main delivery pipe; 322 - multi-port adapter; 323 - second air delivery pipe; 33 - charging and energy storage power supply; 4 - outer protective inflatable body; 401 - second storage adhesive attachment; 402 - fourth storage adhesive attachment; 41 - second inflatable bag body; 411 - second inner protection bag body; 412 - second arc connecting bag body; 413 - second outer protection bag body; 414 - third gas storage cavity; 415 - third gas valve; 416 - second limiting column; 42 - first inflatable bag body; 421 - first inner protection bag body; 422 - first arc connecting bag body; 423 - first outer protection bag body; 424 - first gas storage cavity; 425 - first limiting column; 426 - first gas valve; 5 - inner protective inflatable body; 501 - third inflatable bag body; 51 - airbag; 52 - second gas storage cavity; 53 - second gas valve; 54 - installation bump; 55 - second positioning column; 6 - extrusion buffer body; 62 - first connecting plate; 61 - extrusion spring; 63 - second connecting plate; 64 - first positioning column; 7 - foaming filler. Detailed implementation manners

[0019] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above drawings are intended to cover non-exclusive inclusion.

[0020] In the description of the embodiments of the present application, technical terms such as "first" and "second" are only used to distinguish different objects, and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity, specific order or primary-secondary relationship of the indicated technical features. In the description of the embodiments of the present application, the meaning of "a plurality" is more than two, unless otherwise specifically defined.

[0021] Reference to "embodiment" herein means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the present application. The phrase appears in various places in the specification and does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0022] In the description of the embodiments of the present application, the term "and / or" is merely a description of the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can mean: A exists alone, A and B exist simultaneously, or there are multiple separate situations. Additionally, the character " / " in this document generally represents an "or" relationship between the associated objects before and after.

[0023] In the description of the embodiments of the present application, unless otherwise clearly specified and limited, technical terms such as "install", "connect", "couple", and "fix" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or integrated; it can also be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present application can be understood according to specific circumstances.

[0024] The following is a further detailed description of the present invention in conjunction with the appended Figures 1 to 5 This is not intended to limit the present invention.

[0025] Such as Figure 1As shown, in an embodiment of the present invention, the reinforced comprehensive rescue box for field emergency rescue includes a housing 1, an inner support body 2, an air inflation driving mechanism 3, an outer protective inflatable body 4, an inner protective inflatable body 5, and a squeezing buffer body 6. The inner support body 2 is connected to the inside of the housing 1, and a buffer assembly gap 101 is provided between the inner support body 2 and the housing 1. The inner protective inflatable body 5 is disposed inside the buffer assembly gap 101. Both side ends of the squeezing buffer body 6 are respectively connected to the inner support body 2 and the housing 1. The outer protective inflatable body 4 is connected to the outer surface of the housing 1 away from the buffer assembly gap 101. The air inflation driving mechanism 3 is disposed inside the inner support body 2, and the gas delivery ends of the outer protective inflatable body 4 and the inner protective inflatable body 5 are both communicated with the air inflation driving mechanism 3.

[0026] The technical solution of the present invention forms a triple shock absorption and buffering effect through the external gas buffering effect of the outer protective inflatable body on the housing, combined with the gas buffering effect of the inner protective inflatable body on the inner support body and the contact buffering effect of the squeezing buffer body on the inner support body, so as to improve the buffering protection effect on the instruments and devices inside the inner support body. Furthermore, it can improve the stability of the overall structure and the safety of use, and is also applicable to dropping operations at medium and low altitudes, expanding the scope of its applicable environment. In addition, a single air inflation driving mechanism is used as the air inflation power source to effectively reduce the input of the driving source, thereby effectively saving the use cost and reducing the overall weight.

[0027] Specifically, in some embodiments, such as Figure 1As shown, a foamed filling body 7 is further provided in the buffer assembly gap 101 between the accommodation body 1, the inner support body 2, and the extrusion buffer body 6. This structure can avoid phenomena such as extrusion damage to the foamed filling body 7 when the inner protective gas 5 inflates and expands, and can ensure the stability and orderliness of the inflation and expansion of the foamed filling body 7. Among them, the material of the inner support body 2 is the same as that of the foamed filling body 7; and the foamed filling body 7 is made of polyethylene (PE) or polyurethane (PU) foam or polyvinyl chloride (PVC) foaming material. This structure can further improve the shock absorption and buffering performance of the rescue box through polyethylene (PE) or polyurethane (PU) foam or polyvinyl chloride (PVC) foaming material, and is beneficial to reducing the overall weight; and by making the material of the inner support body 2 the same as that of the foamed filling body 7, the assembly stability of the inner support body 2 can be improved, reducing phenomena such as excessive shaking; and the overall weight can also be reduced. Further, the relationship between the filling volume V1 of the foamed filling body 7 and the volume V2 of the buffer assembly gap 101 between the accommodation body 1, the inner support body 2, and the extrusion buffer body 6 satisfies: V1 = (1 / 2 to 3 / 4) * V2. This structure can make the maximum value of the buffer of the vibration impact stress through the foamed filling body 7 with a relatively large coverage area, and can also ensure the orderliness of the active extrusion of the extrusion buffer body 6.

[0028] Specifically, in some embodiments, as Figure 1 and 2 shown, the accommodation body 1 includes a main box body 12 and a cover body 11 connected to the top of the main box body 12; a buffer assembly gap 101 is formed between the inner side wall of the main box body 12 and the outer side wall of the inner support body 2; and the outer protective gas 4 includes a second air bag body 41 and a first air bag body 42; the first air bag body 42 is connected to the outer surface of the main box body 12; the second air bag body 41 is connected to the outer surface of the cover body 11; and the gas delivery ends of the second air bag body 41 and the first air bag body 42 are both connected to the inflation driving mechanism 3. This structure can achieve the protective effect on the main box body 12 and the cover body 11 through the split second air bag body 41 and the first air bag body 42, so as to achieve a larger coverage area of the air bag shock absorption and buffering effect; thereby improving the buffering and protection effect on the instruments and equipment inside the inner support body; further improving the stability of the overall structure and the safety of use, and is also suitable for dropping operations at medium and low altitudes, improving the scope of its applicable environment.

[0029] Specifically, in some embodiments, as Figure 1 and 4As shown, on one side surface of the cover body 11 facing the main box body 12, there is an assembly groove 112; inside the assembly groove 12, there is a support mesh plate 113; between the support mesh plate 113 and the cover body 11, there is also a buffer cotton 114. When there are several through holes in the support mesh plate 113, in the case of impact and collision, through the extrusion and buffering effect of the buffer cotton 114 itself and the extrusion and buffering effect of the buffer cotton 114 towards the through holes, the stress decomposition and buffering effect can be further realized, thereby improving the buffering protection effect on the instruments and devices inside the inner support body; therefore, the stability of the overall structure and the safety of use can be improved, and it is also applicable to dropping operations at medium and low altitudes, improving the scope of its applicable environment.

[0030] Specifically, in some embodiments, as Figure 1 and 2 shown, on the outer surface of the first airbag body 42 away from the main box body 12, there is a fourth storage attachment 402; on the outer surface of the main box body 12, there is a third storage attachment 121; when the first airbag body 42 is in an uninflated or partially inflated state, the fourth storage attachment 402 is connected to the third storage attachment 121. Among them, the third storage attachment 121 is a third magic tape; the fourth storage attachment 402 is a fourth magic tape. That is to say, when the housing 1 is in a stationary state, the gas in the first airbag body 42 is discharged completely or mostly; to achieve a flat state; then the first airbag body 42 is pushed upward to make the fourth storage attachment 402 adhere to the third storage attachment 121, thereby reducing the overall volume and improving the convenience of use.

[0031] Specifically, in some embodiments, as Figure 1 and 2 shown, on the outer surface of the second airbag body 41 away from the cover body 11, there is a second storage attachment 401; on the outer surface of the cover body 11, there is a first storage attachment 111; when the second airbag body 41 is in an uninflated or partially inflated state, the second storage attachment 401 is connected to the first storage attachment 111. Among them, the second storage attachment 401 is a second magic tape; the first storage attachment 111 is a first magic tape. That is to say, when the housing 1 is in a stationary state, the gas in the second airbag body 41 is discharged completely or mostly; to achieve a flat state; then the second airbag body 41 is pushed upward to make the second magic tape adhere to the first magic tape, thereby reducing the overall volume and improving the convenience of use.

[0032] Specifically, in some embodiments, as Figure 2 and 3As shown, the first airbag body 42 is wrapped (the wrapping area is more than ninety percent) and arranged on the outer surface of the main box body 11; and the first airbag body 42 includes a first inner protection bag body 421, a first arc-shaped connecting bag body 422, a first outer protection bag body 423 and a first gas valve 426; the first inner protection bag body 421 is connected to the outer surface of the main box body 12; one end of the first arc-shaped connecting bag body 422 is connected to the first inner protection bag body 421; the other end of the first arc-shaped connecting bag body 422 is connected to the first outer protection bag body 423; a first gas storage cavity 424 is arranged between the first outer protection bag body 423, the first inner protection bag body 421 and the first arc-shaped connecting bag body 422; one end of the first gas valve 426 passes through the first outer protection bag body 423 and is communicated with the first gas storage cavity 424; the other end of the first gas valve 426 passes through the main box body 12 and is communicated with the inflation driving mechanism 3. Among them, in some embodiments, such as Figure 3 As shown, a first adhesive is arranged between the first inner protection bag body 421 and the main box body 12; and a first limiting column 425 is further arranged on the first inner protection bag body 421; a first limiting hole 122 is arranged in the main box body 12; the first limiting column 425 passes through the first limiting hole 122 and is clamped inside the first limiting hole 122. This structure improves the assembly stability of the first airbag body 42 through the dual assembly effects of the first limiting column 425 and the first adhesive; and improves the convenience of disassembly.

[0033] Specifically, in some embodiments, such as Figure 2 and 4 As shown, the number of the second airbag bodies 41 is two, and they are symmetrically arranged on the outer surface of the cover body 11; and the second airbag body 41 includes a second inner protection bag body 411, a second arc-shaped connecting bag body 412, a second outer protection bag body 413 and a third gas valve 415; the second inner protection bag body 411 is connected to the outer surface of the cover body 11; one end of the second arc-shaped connecting bag body 412 is connected to the second inner protection bag body 411; the other end of the second arc-shaped connecting bag body 412 is connected to the second outer protection bag body 413; a third gas storage cavity 414 is arranged between the second inner protection bag body 411, the second arc-shaped connecting bag body 412 and the second outer protection bag body 413; one end of the third gas valve 415 passes through the second outer protection bag body 413 and is communicated with the third gas storage cavity 414; the other end of the third gas valve 415 passes through the main box body 12 and is communicated with the inflation driving mechanism 3. Among them, in some embodiments, such as Figure 4As shown, a second adhesive is provided between the second inner protective bag body 411 and the cover body 11; and a second limiting post 416 is further provided on the second inner protective bag body 411; a second limiting hole 116 is provided in the main box body 12; the second limiting post 416 passes through the second limiting hole 116 and is clamped inside the second limiting hole 116. This structure improves the assembly stability of the second air inflation bag body 41 through the dual assembly effects of the second limiting post 416 and the second adhesive; and improves the convenience of disassembly. Further, a handle 115 is provided on the outer surface of the cover body 11; the handle 115 is arranged between two second air inflation bag bodies 41; to improve the convenience of carrying by hand.

[0034] Specifically, in some embodiments, as Figure 1 and 3 shown, the inner protective inflatable body 5 includes an airbag bag 51 and a second gas valve 53; a second gas storage cavity 52 is provided in the airbag bag 51; one end of the second gas valve 53 passes through the airbag bag 51 and communicates with the second gas storage cavity 52; the other end of the second gas valve 53 communicates with the inflation driving mechanism 3. Among them, as Figure 3 shown, at least one mounting bump 54 is provided at the outer end of the airbag bag 51; a second positioning post 55 is provided in the mounting bump 54; the second positioning post 55 is detachably connected to the inner side wall of the main box body 12. This structure limits the airbag bag 51 through the second positioning post 55 to avoid its dislocation and sliding, thereby avoiding interference with the buffering process of the extrusion buffer body 6, and further improving the stability and safety of use.

[0035] Specifically, in some embodiments, as Figure 1 and 3 shown, the inflation driving mechanism 3 includes an air pump assembly 31 and a gas delivery pipe group 32 connected to one end of the air pump assembly 31; and the (third gas valve 415 in the second air inflation bag body 41 and the first gas valve 426 in the first air inflation bag body 42) of the outer protective inflatable body 4 and the (second gas valve 53 in the airbag bag 51) of the inner protective inflatable body 5 are both connected to the gas delivery pipe group 32; thereby realizing the driving of a single air source driving part for three inflation and deflation ends, thus reducing the equipment investment and reducing the overall weight. Among them, as Figure 3 shown, the air pump assembly 31 includes an air extraction and blowing pump 311 and a first air pipe 312; the air extraction and blowing pump 311 is arranged inside the inner support body 2; one end of the first air pipe 312 is connected to the air extraction and blowing pump 311; the other end of the first air pipe 312 communicates with the outside of the main box body 12; the air extraction and blowing pump 311 communicates with the gas delivery pipe group 32. Further, as Figure 3As shown, the gas delivery pipe group 32 includes a main delivery pipe 321, a multi-port adapter 322, and a second gas delivery pipe 323; one end of the main delivery pipe 321 is connected to the air extraction and blowing pump 311; the other end of the main delivery pipe 321 is connected to one end of the multi-port adapter 322; all branch interfaces of the multi-port adapter 322 are respectively connected to the (third gas valve 415 in the second airbag body 41 and the first gas valve 426 in the first airbag body 42) of the outer protective gas 4 and the (second gas valve 53 in the airbag bag 51) of the inner protective gas 5. Among them, the air extraction and blowing pump 311 is also called a blow-suction dual-purpose air pump; its principle is mainly to use the high-speed rotation of the impeller to generate high-pressure blowing or high suction. That is, the edge of the impeller of the blow-suction dual-purpose air pump is provided with multiple blades. When the impeller rotates, due to the centrifugal force, the air in the two blades moves rapidly towards the outer edge direction, transferring energy, and the wind pressure is rapidly superimposed, thus forming high pressure or high force and its speed is increased. When the air is re-introduced into the impeller by the air duct, it will be accelerated again. Due to the energy transfer of multiple blades, the wind pressure is rapidly superimposed, thus forming high-pressure blowing or high suction.

[0036] Specifically, in some embodiments, as Figure 1 , 2 and as shown in 3, the extrusion buffer body 6 includes a first connecting plate 62, an extrusion spring 61, a second connecting plate 63, and a first positioning column 64; the first connecting plate 62 is connected to the inner wall of the main box body 12; one end of the extrusion spring 62 is connected to the first connecting plate 62; the other end of the extrusion spring 62 is connected to the second connecting plate 63; one end of the first positioning column 64 is connected to the second connecting plate 63; the other end of the first positioning column 64 penetrates into the inner support body 2 and is detachably connected to the inner support body 2. Among them, the other end of the first positioning column 64 is detachably connected to the inner support body 2 through a positioning bolt.

[0037] Specifically, in some embodiments, as Figure 1 , 2 and as shown in 5, at least one partition plate 21 is provided in the inner support body 2; the partition plate 21 and the inner support body 2 are provided with an instrument placement cavity 204, an installation cavity 201, an instrument placement cavity 202, and a wire harness placement cavity 203; a placement rack 23 is provided in the instrument placement cavity 204; the placement rack 23 can be arranged to move back and forth along the height direction of the instrument placement cavity 204; a wire pushing rack 22 is provided in the wire harness placement cavity 203; the wire pushing rack 22 can be arranged to move back and forth along the height direction of the wire harness placement cavity 203; the inflation driving mechanism 3 is arranged in the installation cavity 201; the instrument placement cavity 202 is used to place rescue instrument equipment. Among them, as Figure 5As shown, the partition plate 21 is provided with a first limiting groove 205; the sliding protrusion on the wire pushing frame 22 is limitedly connected to the inside of the first limiting groove 205; and the partition plate 21 is also provided with a second limiting groove 206; the sliding protrusion on the storage rack 23 is limitedly connected to the inside of the second limiting groove 206.

[0038] Among them, the instruments and equipment used for field emergency rescue include: 1. Radar life detector: This is a high-tech disaster site rescue emergency equipment, which plays a vital role in emergency rescue missions such as earthquakes, collapses, and building collapses.

[0039] 2. Sonic wave detector: Sonic wave detector is an instrument that uses sound vibrations to search for people in distress. It has extremely high sensitivity.

[0040] 3. Optical sonic detector: The optical sonic detector is an instrument that uses reflected light to explore the lives of survivors and is called snake eyes.

[0041] 4. Infrared detector: uses the principle of infrared to detect the location of survivors through the heat energy emitted by the bodies of people in distress.

[0042] 5. Electric hydraulic shears for emergency rescue: mainly composed of motor, hydraulic system, shear head and other parts. Its working principle is to drive the hydraulic system through the motor to generate high-pressure oil, drive the shear head to shear the metal material. That is, when the electric hydraulic shear is started, the motor drives the pump to work, the pump sucks in and pressurizes the oil, and then transports it to the hydraulic cylinder through the pipeline. The piston in the hydraulic cylinder is pushed by the high-pressure oil and begins to move inward, which generates a huge clamping force, tightly holding the object to be clamped. When the object needs to be released, just let the oil in the hydraulic cylinder flow back, the piston moves outward, the clamping force will disappear, and the object can be released.

[0043] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode includes only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

[0044] Based on the disclosure and teachings of the above specification, those skilled in the art to which the present invention pertains are also able to make changes and modifications to the above embodiments. Therefore, the present invention is not limited to the above specific embodiments, and any obvious improvements, substitutions, or variations made by those skilled in the art based on the present invention fall within the protection scope of the present invention. In addition, although some specific terms are used in this specification, these terms are only for convenience of description and do not constitute any limitation to the present invention.

Claims

1. A reinforced comprehensive rescue box for field emergency rescue, characterized in that: It includes a housing body, an inner support body, an inflation driving mechanism, an outer protective inflatable body, an inner protective inflatable body and a squeezing buffer body; the inner support body is connected to the inside of the housing body; and a buffer assembly gap is provided between the inner support body and the housing body; the inner protective inflatable body is arranged inside the buffer assembly gap; both side ends of the squeezing buffer body are respectively connected to the inner support body and the housing body; the outer protective inflatable body is connected to the outer surface of the housing body away from the buffer assembly gap; the inflation driving mechanism is arranged inside the inner support body; and the gas delivery ends of the outer protective inflatable body and the inner protective inflatable body are both communicated with the inflation driving mechanism.

2. The reinforced integrated rescue box for field emergency rescue according to claim 1, wherein: The housing body includes a main box body and a cover body connected to the top of the main box body; the buffer assembly gap is formed between the inner side wall of the main box body and the outer side wall of the inner support body.

3. The reinforced integrated rescue box for field emergency rescue according to claim 1 or 2, characterized in that: The outer protective inflatable body includes a second inflatable bag body and a first inflatable bag body; the first inflatable bag body is connected to the outer surface of the main box body; the second inflatable bag body is connected to the outer surface of the cover body; and the gas delivery ends of the second inflatable bag body and the first inflatable bag body are both communicated with the inflation driving mechanism.

4. The reinforced comprehensive rescue box for field emergency rescue according to claim 3, wherein: An assembly groove is provided on one side surface of the cover body facing the main box body; a support mesh plate is arranged inside the assembly groove; and buffer cotton is further provided between the support mesh plate and the cover body.

5. The reinforced comprehensive rescue box for field emergency rescue according to claim 3, characterized in that: A first gas storage cavity is arranged inside the first inflatable bag body; the first inflatable bag body is further provided with a first gas valve; one end of the first gas valve is communicated with the first gas storage cavity; the other end of the first gas valve passes through the main box body and is communicated with the inflation driving mechanism; and / or, a third gas storage cavity is arranged inside the second inflatable bag body; the second inflatable bag body is further provided with a third gas valve; one end of the third gas valve is communicated with the third gas storage cavity; the other end of the third gas valve passes through the main box body and is communicated with the inflation driving mechanism; and / or, the inner protective inflatable body includes an airbag and a second gas valve; a second gas storage cavity is arranged inside the airbag; one end of the second gas valve passes through the airbag and is communicated with the second gas storage cavity; the other end of the second gas valve is communicated with the inflation driving mechanism.

6. The reinforced comprehensive rescue box for field emergency rescue according to claim 3, characterized in that: A fourth storage attachment is provided on the outer surface of the first inflatable bag body away from the main box body; a third storage attachment is provided on the outer surface of the main box body; when the first inflatable bag body is in an uninflated or partially inflated state, the fourth storage attachment is connected to the third storage attachment; and / or, a second storage attachment is provided on the outer surface of the second inflatable bag body away from the cover body; a first storage attachment is provided on the outer surface of the cover body; when the second inflatable bag body is in an uninflated or partially inflated state, the second storage attachment is connected to the first storage attachment.

7. The reinforced comprehensive rescue box for field emergency rescue according to claim 1, characterized in that: The inflatable driving mechanism includes an air pump assembly and a gas delivery pipe group connected to one end of the air pump assembly; and both the outer protective inflatable body and the inner protective inflatable body are communicated with the gas delivery pipe group.

8. The reinforced integrated rescue box for field emergency rescue according to claim 7, characterized in that: The extrusion buffer body includes a first connecting plate, an extrusion spring, a second connecting plate and a first positioning column; the first connecting plate is connected to the inner wall of the accommodating body; one end of the extrusion spring is connected to the first connecting plate; the other end of the extrusion spring is connected to the second connecting plate; one end of the first positioning column is connected to the second connecting plate; the other end of the first positioning column penetrates into the inner support body and is detachably connected to the inner support body.

9. The reinforced integrated rescue box for field emergency rescue according to claim 1, characterized in that: At least one partition plate is provided in the inner support body; the partition plate and the inner support body are provided with an instrument placement cavity, an installation cavity, an instrument placement cavity and a wire harness placement cavity; the inflatable driving mechanism is arranged in the installation cavity; the wire harness placement cavity is used for accommodating the wire harness of the instrument; the instrument placement cavity is used for placing rescue instruments; the instrument placement cavity is used for placing rescue instrument equipment.

10. The reinforced comprehensive rescue box for field emergency rescue according to claim 9, characterized in that: A placement rack is provided in the instrument placement cavity; the placement rack can be arranged to move back and forth along the height direction of the instrument placement cavity; And / or, a wire pushing rack is provided in the wire harness placement cavity; the wire pushing rack can be arranged to move back and forth along the height direction of the wire harness placement cavity.