Horizontal explosion vessel
By installing lifting lugs on the top and bottom supports on the horizontal explosive container, and combining them with a hydraulically driven opening and closing device and a removable inner wall protective plate, the problem of the difficulty in conveniently transporting horizontal explosive containers has been solved. This enables convenient handling of lifting equipment and stable carrier bearing, improving the convenience and safety of operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NORTHWEST INST OF NUCLEAR TECH
- Filing Date
- 2025-05-06
- Publication Date
- 2026-06-02
AI Technical Summary
The existing horizontal explosive container structure design makes it difficult to transfer to a mobile vehicle conveniently using lifting equipment, resulting in inconvenience in handling.
Lifting lugs are installed on the top of the horizontal explosion container, and supports are installed at the bottom. Combined with a hydraulically driven opening and closing device and a removable inner wall protective plate, convenient handling of lifting equipment and stable load-bearing are achieved.
The lifting lugs and supports allow the lifting equipment to easily lift and stably place horizontal explosive containers onto mobile vehicles, simplifying the transfer process and improving operational convenience and safety.
Smart Images

Figure CN224317559U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of explosive container technology, and more specifically, to a horizontal explosive container. Background Technology
[0002] An explosion container is a device specifically designed for conducting explosion tests. Its purpose is to simulate and study the physical phenomena involved in an explosion, such as shock waves, debris dispersion, and flame propagation. Horizontal explosion containers are a common type of explosion container, primarily used for testing.
[0003] In certain specific applications, horizontal explosive containers need to be moved from one location to another for testing purposes, requiring the use of mobile vehicles during the transfer. However, existing horizontal explosive container designs have shortcomings that make it difficult to easily transfer them to mobile vehicles using lifting equipment. Utility Model Content
[0004] The purpose of this utility model is to provide a horizontal explosive container that can be easily transported to a mobile vehicle by a lifting device.
[0005] The embodiments of this utility model can be implemented as follows:
[0006] This utility model provides a horizontal explosive container, including an explosive container body, a support and a lifting lug;
[0007] The main body of the explosion container has a cavity, and both ends of the cavity are provided with openings. The main body of the explosion container is provided with connecting flanges corresponding to the openings.
[0008] The support is located at the bottom of the explosive container body, and the lifting lug is located at the top of the explosive container body.
[0009] In an optional embodiment, the horizontal explosion container also includes an opening and closing device;
[0010] A manhole is provided on the side wall of the main body of the explosive container. An opening and closing device is provided on the main body of the explosive container and is provided corresponding to the manhole. The opening and closing device can open or close the manhole.
[0011] In an optional embodiment, the opening and closing device includes a connecting flange, a limiting clamp, a manhole cover, a swing arm assembly, a first drive assembly, and a second drive assembly.
[0012] The connecting flange is fixedly installed on the side wall of the explosion container body and corresponds to the manhole;
[0013] The limiting clamp is rotatably fitted onto the outer periphery of the connecting flange, and the inner periphery of the limiting clamp is provided with a plurality of first protrusions at intervals, and a first mounting groove is formed between any two adjacent first protrusions.
[0014] The first drive assembly is installed on the body of the explosion container and is connected to the limit clamp via a transmission. The first drive assembly can drive the limit clamp to rotate around the axis of the connecting flange between a first position and a second position.
[0015] The swing arm assembly is rotatably mounted on the side wall of the explosive container body, and the manhole cover is mounted on the swing arm assembly;
[0016] Multiple second protrusions are spaced apart around the periphery of the manhole cover, and a second mounting groove is formed between any two adjacent second protrusions;
[0017] The second drive assembly is installed on the body of the explosion container and connected to the swing arm assembly;
[0018] The second drive assembly can drive the swing arm assembly to rotate the manhole cover between the closed and open positions;
[0019] When the manhole cover is in the closed position and the limiting clamp is in the first position, the manhole cover abuts against the end face of the connecting flange, and the first protrusion abuts against the outside of the second protrusion.
[0020] In an optional embodiment, the opening and closing device further includes a mounting base, which is mounted on the outside of the body of the explosion container;
[0021] One end of the swing arm assembly is rotatably mounted on the mounting base via a pivot.
[0022] In an optional embodiment, the first driving component includes a first hydraulic cylinder, the fixed end of which is connected to the body of the explosive container via a first fixed seat, and the telescopic end of which is fixed to the side wall of the limiting clamp via a second fixed seat.
[0023] The second drive assembly includes a second hydraulic cylinder. The fixed end of the second hydraulic cylinder is mounted on the body of the explosion container via a third fixed seat, and the telescopic end of the second hydraulic cylinder is connected to the swing arm assembly via a fourth fixed seat.
[0024] In an optional embodiment, the horizontal explosion container also includes multiple inner wall protective plates, which are detachably installed inside the explosion container body via a connecting structure to shield the inner wall of the cavity.
[0025] In an optional implementation, all the inner wall protective plates are arranged in multiple layers along the axial direction of the explosive container body, with each layer arranged in a circular array.
[0026] The connection structure includes threaded posts and nuts; there are multiple threaded posts, which are spaced apart and protrude from the inner wall of the explosion container body; all the inner wall protective plates are provided with notches for the threaded posts to pass through; all the inner wall protective plates are arranged sequentially on the inner side wall of the cavity, and the threaded posts protrude from the notches; there are multiple nuts, which are installed one-to-one on the threaded posts to fix the inner wall protective plates.
[0027] In an optional embodiment, the connecting structure further includes multiple pressure strips, each pressure strip having multiple through holes spaced apart.
[0028] The pressure strip is set at the splicing position of two adjacent inner wall protective plates, and the pressure strip is located on the inner side of the inner wall protective plate. The threaded post is inserted through the through hole, and the nut is set on the side of the pressure strip away from the inner wall protective plate and assembled on the threaded post so that the pressure strip abuts against the inner wall of the inner wall protective plate.
[0029] In an optional embodiment, the sidewall of the explosive container body is provided with an optical window and multiple terminals;
[0030] In an optional implementation, the side wall of the explosion container is also provided with a pressure test port.
[0031] The beneficial effects of the horizontal explosion container provided in this embodiment of the invention include:
[0032] This application involves installing lifting lugs at the top of the main body of a horizontal explosive container and supports at the bottom. When the horizontal explosive container needs to be moved, the lifting equipment can easily lift the container using the lifting lugs, while the supports can stably support it on the moving vehicle, thus facilitating the handling of the container by the lifting equipment. Attached Figure Description
[0033] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0034] Figure 1 This is a first-view structural diagram of the horizontal explosive container provided in this embodiment.
[0035] Figure 2 This is a structural schematic diagram of the horizontal explosive container provided in this embodiment from a second perspective.
[0036] Figure 3 This is a partial structural diagram of the explosion container provided in this embodiment;
[0037] Figure 4This is a schematic diagram of the explosion structure of the opening and closing device of the explosion container provided in this embodiment;
[0038] Figure 5 This is a partial cross-sectional schematic diagram of the explosion container provided in this embodiment;
[0039] Figure 6 for Figure 5 Enlarged diagram of point A in the middle.
[0040] Icons: 100-Horizontal explosive container; 111-Body of explosive container; 112-Support; 113-Lifting lug; 114-Cavity; 115-Opening; 116-Connecting flange; 117-Manhole; 130-Opening and closing device; 131-Connecting flange; 132-Limiting clamp; 133-Manhole cover; 134-Swing arm assembly; 135-First drive assembly; 137-Second drive assembly; 138-First tooth; 139-First mounting groove; 141-Second tooth; 142-Second mounting groove; 143-Mounting base; 150-Inner wall protective plate; 151-Notch; 160-Connecting structure; 161-Threaded post; 162-Nut; 163-Pressure strip; 171-Optical window; 172-Terminal; 173-Pressure test interface. Detailed Implementation
[0041] In certain specific applications, horizontal explosive containers need to be moved from one location to another for testing purposes, requiring the use of mobile vehicles during the transfer. However, existing horizontal explosive container designs have shortcomings that make it difficult to easily transfer them to mobile vehicles using lifting equipment.
[0042] To address the aforementioned problems, this utility model provides a horizontal explosive container that can be easily transported to a mobile vehicle using lifting equipment, thereby improving the problem of inconvenient handling.
[0043] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0044] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.
[0045] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0046] In the description of this utility model, it should be noted that if terms such as "upper," "lower," "inner," or "outer" are used to indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the utility model product is usually placed during use, they are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0047] Furthermore, the terms "first" and "second" are used only to distinguish descriptions and should not be interpreted as indicating or implying relative importance.
[0048] It should be noted that, where there is no conflict, the features in the embodiments of this utility model can be combined with each other.
[0049] The following describes in detail the overall structure, working principle, and technical effects of the horizontal explosion container provided by this utility model through embodiments and in conjunction with the accompanying drawings.
[0050] Please refer to Figure 1 The horizontal explosion container 100 provided by this utility model is used in explosion tests to simulate and study the physical phenomena involved in the explosion process, such as shock waves, fragmentation, and flame propagation.
[0051] Please refer to Figures 1 to 6 The horizontal explosive container 100 includes an explosive container body 111, a support 112, and a lifting lug 113. The explosive container body 111 has a cavity 114, with openings 115 at both ends. Corresponding to each opening 115, the explosive container body 111 is provided with a connecting flange 116. One connecting flange 116 is an inlet for connecting to other test mechanisms, and the other connecting flange 116 is an exhaust for rapid gas discharge and pressure relief during the explosion test. The opening 115 of this connecting flange 116 is eccentrically positioned. The support 112 is located at the bottom of the explosive container body 111, supporting the explosive container body 111 and allowing connection to the subframe of a mobile vehicle during transport. The lifting lug 113 is located at the top of the explosive container body 111.
[0052] In this embodiment, a lifting lug 113 is provided at the top of the explosion container body 111 of the horizontal explosion container 100, and a support 112 is provided at the bottom. When the horizontal explosion container 100 needs to be transported, the lifting equipment can easily lift the horizontal explosion container 100 through the lifting lug 113, and the support 112 can stably support it on the mobile carrier, thereby facilitating the handling of the lifting equipment.
[0053] Please refer to Figures 1 to 6 Furthermore, there are four supports 112, which are installed at intervals in the area at the bottom of the explosive container body 111. The supports 112 may be provided with bolt holes or other structures to facilitate fixed connection with the subframe of the mobile vehicle.
[0054] In detail, there are four lifting lugs 113, which are spaced apart on the top of the explosive container body. The four lifting lugs 113 are located at the four vertices of a quadrilateral. Lifting equipment (e.g., a crane) can stably lift the horizontal explosive container 100 through the four lifting lugs 113 and place it on the subframe of a mobile vehicle. Then, the support 112 is fixedly connected to the subframe of the mobile vehicle by bolts or the like. In this way, the horizontal explosive container 100 can be stably mounted on the mobile vehicle, and explosion tests can be carried out on the mobile vehicle.
[0055] Please refer to Figures 1 to 6 Furthermore, the horizontal explosive container 100 also includes an opening and closing device 130. A manhole 117 is provided on the side wall of the explosive container body 111. The opening and closing device 130 is provided on the explosive container body 111 and is provided corresponding to the manhole 117. The opening and closing device 130 can open or close the manhole 117.
[0056] In this embodiment, a manhole 117 is provided on the side wall of the main body 111 of the explosive container in the bedroom. This facilitates the placement of energetic materials inside the explosive container through the manhole 117 by test personnel during the preparation phase of the explosion test. The opening and closing device 130 allows the manhole 117 to be conveniently closed after the operation is completed.
[0057] Please refer to Figures 1 to 6In this embodiment, the opening and closing device 130 includes a connecting flange 131, a limiting clamp 132, a manhole cover 133, a swing arm assembly 134, a first drive assembly 135, and a second drive assembly 137. The connecting flange 131 is fixedly installed on the side wall of the explosive container body 111 and corresponds to the manhole 117. The limiting clamp 132 is rotatably fitted onto the outer periphery of the connecting flange 131, and the inner periphery of the limiting clamp 132 is provided with a plurality of first protrusions 138 spaced apart, with a first mounting groove 139 formed between any two adjacent first protrusions 138. The first drive assembly 135 is installed on the explosive container body 111 and is drively connected to the limiting clamp 132. The first drive assembly 135 can drive the limiting clamp 132 to rotate around the axis of the connecting flange 131 between a first position and a second position. The swing arm assembly 134 is rotatably installed on the side wall of the explosive container body 111, and the manhole cover 133 is installed on the swing arm assembly 134. The manhole cover 133 has multiple second protrusions 141 spaced apart around its periphery, and a second mounting groove 142 is formed between any two adjacent second protrusions 141. A second drive assembly 137 is mounted on the explosion container body 111 and connected to the swing arm assembly 134. The second drive assembly 137 can drive the swing arm assembly 134 to rotate the manhole cover 133 between a closed position and an open position. When the manhole cover 133 is in the closed position and the limiting clamp 132 is in the first position, the manhole cover 133 abuts against the end face of the connecting flange 131, and the first protrusion 138 abuts against the outer side of the second protrusions 141.
[0058] In this embodiment, the opening and closing device 130 is configured as described above. The first driving component 135 and the second driving component 137 can easily open or close the device 130, making operation more convenient. Most importantly, when the device 130 is closed, it is achieved by the second protrusion 141 of the manhole cover 133 abutting against the first protrusion 138 of the limiting clamp 132. Therefore, the impact of an explosion test will not directly affect the first driving component 135 and the second driving component 137.
[0059] The principle of the engagement between the limiting clamp 132 and the manhole cover 133 is as follows: the limiting clamp 132 can rotate to cause the first protruding tooth 138 to be misaligned or abutted against the second protruding tooth 141. In the misaligned position (i.e., the second position), the first protruding tooth 138 corresponds to the second mounting groove 142, thus releasing the limiting clamp 132 from restricting the manhole cover 133. The rotating arm assembly 134 can then move the manhole cover 133 from the closed position to the open position or vice versa. In the abutted position (the limiting clamp 132 in the first position), the manhole cover 133 is located inside the first protruding tooth 138, and the first protruding tooth 138 abuts against the outside of the second protruding tooth 141, thereby achieving limiting and fixing.
[0060] It should also be noted that the connecting flange 131 and the limiting clamp 132 are limited by the limiting boss, so that after they are assembled, they can rotate relative to each other and connect to each other, and cannot be separated.
[0061] Please refer to Figures 1 to 6 In this embodiment, the opening and closing device 130 further includes a mounting base 143, which is mounted on the outside of the explosive container body 111. One end of the swing arm assembly 134 is rotatably mounted to the mounting base 143 via a pivot. The mounting base 143 in this embodiment allows for convenient rotatable mounting of the swing arm assembly 134.
[0062] In detail, the first drive assembly 135 includes a first hydraulic cylinder, the fixed end of which is connected to the explosive container body 111 via a first fixed seat, and the telescopic end of which is fixed to the side wall of the limiting clamp 132 via a second fixed seat. The second drive assembly 137 includes a second hydraulic cylinder, the fixed end of which is mounted on the explosive container body 111 via a third fixed seat, and the telescopic end of which is connected to the swing arm assembly 134 via a fourth fixed seat.
[0063] In this embodiment, the first drive assembly 135 is configured as the first hydraulic cylinder, and the second drive assembly 137 is configured as the second hydraulic cylinder, which can drive the rotation of the limit clamp 132 and the swing arm assembly 134 to a higher degree.
[0064] It should be noted that the number of the first hydraulic cylinder and the second hydraulic cylinder can be set according to requirements, such as one, two or more.
[0065] Please refer to Figures 1 to 6 In this embodiment, the horizontal explosion container 100 also includes a plurality of inner wall protective plates 150, which are detachably installed inside the explosion container body 111 through a connecting structure 160 to shield the inner wall of the cavity 114.
[0066] Multiple inner wall protective plates 150 are detachably installed in the cavity 114 of the explosive container body 111 via a connecting structure 160, covering the inner wall of the cavity 114. During an explosion test, the shock wave and high-speed fragments act on the inner wall protective plates 150, thereby preventing or mitigating damage to the inner wall of the explosive container body 111. After the explosion test, one or more affected inner wall protective plates 150 can be removed and replaced, making maintenance more convenient.
[0067] Please refer to Figures 1 to 6In this embodiment, all the inner wall protective plates 150 are arranged in multiple layers along the axial direction of the explosion container body 111, with each layer arranged in a circular array. The connecting structure 160 includes threaded posts 161 and nuts 162. There are multiple threaded posts 161, which are spaced apart and protrude from the inner wall of the explosion container body 111. All the inner wall protective plates 150 are provided with notches 151 for the threaded posts 161 to pass through. All the inner wall protective plates 150 are arranged sequentially on the inner sidewall of the cavity 114, and the threaded posts 161 protrude from the notches 151. There are multiple nuts 162, which are installed one-to-one with the threaded posts 161 to fix the inner wall protective plates 150.
[0068] This embodiment uses an array approach to reduce the variety of inner wall protective plates 150. The inner wall protective plates 150 are fixed using threaded posts 161 and nuts 162, resulting in a low-cost connection structure 160 with high connection stability and even lower overall cost.
[0069] Please refer to Figures 1 to 6 In this embodiment, the connecting structure 160 further includes multiple pressure strips 163, each pressure strip 163 having multiple through holes spaced apart. The pressure strips 163 are positioned at the splicing position of two adjacent inner wall protective plates 150, and are located on the inner side of the inner wall protective plate 150. Threaded posts 161 pass through the through holes, and nuts 162 are positioned on the side of the pressure strip 163 away from the inner wall protective plate 150 and are fitted onto the threaded posts 161, so that the pressure strips 163 abut against the inner wall of the inner wall protective plate 150.
[0070] In this embodiment, the pressure strip 163 can cover the gap between the two adjacent inner wall protective plates 150 from the outside and increase the contact surface, thereby achieving better fixation of the inner wall protective plate 150.
[0071] It should be noted that the shape, type, and quantity of the inner wall protective plates 150, along with the structural configuration of the explosion container body 111, can completely cover the inner wall of the explosion container body 111 after assembly. The inner wall protective plates 150 are made of 5mm austenitic stainless steel, are segmented, and arranged in an array. Each segment of the inner wall protective plate 150 is attached to the inner wall of the container using welded studs and nuts 162 and pressure strips 163. The inner wall protective plates 150 can effectively absorb the blast shock wave and fragments, protecting the container body from damage.
[0072] Please refer to Figures 1 to 6 In this embodiment, the side wall of the explosion container body 111 is provided with an optical window 171 and a plurality of terminals 172.
[0073] The optical window 171 is made of double-layered K9 optical glass, providing a clear observation channel while ensuring impact resistance. Researchers can monitor the reaction changes inside the explosive container in real time through these windows and adjust the experimental protocol accordingly. This design significantly improves the precision of experimental operations; any minute changes during the experiment are quickly fed back through the optical window 171, ensuring the smooth progress of the experiment. The terminal block 172 facilitates the connection of wires from the explosive container body 111 inwards or outwards.
[0074] It should also be noted that the number of optical windows 171 can be set according to requirements, for example, four, with two on each side. Three sets of terminals 172 can be set for connecting external devices (such as power supplies, data acquisition devices, or control systems). These terminals 172 are explosion-proof to ensure safe signal transmission during experiments.
[0075] Please refer to Figures 1 to 6 In this embodiment, the side wall of the explosion container is also provided with a pressure test interface 173. The pressure test interface 173 can be connected to an external pressure sensor or monitoring device to monitor pressure changes inside the container in real time, ensuring the safety and accuracy of the experimental process. The number of pressure test interfaces 173 can be set according to usage requirements, for example, two or more.
[0076] In summary, this embodiment provides a lifting lug 113 at the top of the explosive container body 111 of the horizontal explosive container 100, and a support 112 at the bottom. When the horizontal explosive container 100 needs to be transported, the lifting equipment can easily lift the horizontal explosive container 100 through the lifting lug 113, while the support 112 can stably support it on the mobile carrier, thus facilitating the handling by the lifting equipment.
[0077] The above are merely specific embodiments of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model.
Claims
1. A horizontal explosion container, characterized in that, It includes the main body of the explosive container (111), the support (112), and the lifting lug (113); The explosion container body (111) has a cavity (114), and openings (115) are provided at both ends of the cavity (114). The explosion container body (111) is provided with connecting flanges (116) corresponding to the openings (115). The support (112) is located at the bottom of the explosive container body (111), and the lifting lug (113) is located at the top of the explosive container body (111).
2. The horizontal explosion container according to claim 1, characterized in that, The horizontal explosive container also includes an opening and closing device (130); The explosive container body (111) has a manhole (117) on its side wall. The opening and closing device (130) is provided on the explosive container body (111) and is provided corresponding to the manhole (117). The opening and closing device (130) can open or close the manhole (117).
3. The horizontal explosion container according to claim 2, characterized in that, The opening and closing device (130) includes a connecting flange (131), a limiting clamp (132), a manhole cover (133), a swing arm assembly (134), a first drive assembly (135), and a second drive assembly (137); The connecting flange (131) is fixedly installed on the side wall of the explosion container body (111) and corresponds to the manhole (117); The limiting clamp (132) is rotatably sleeved on the outer periphery of the connecting flange (131), and the inner periphery of the limiting clamp (132) is provided with a plurality of first protrusions (138) spaced apart, and a first mounting groove (139) is formed between any two adjacent first protrusions (138). The first drive assembly (135) is installed on the body of the explosion container (111) and is connected to the limiting clamp (132) in a transmission manner. The first drive assembly (135) can drive the limiting clamp (132) to rotate around the axis of the connecting flange (131) between a first position and a second position. The swing arm assembly (134) is rotatably mounted on the side wall of the explosive container body (111), and the manhole cover (133) is mounted on the swing arm assembly (134); The manhole cover (133) is provided with a plurality of second protrusions (141) at intervals around its periphery, and a second mounting groove (142) is formed between any two adjacent second protrusions (141); The second drive assembly (137) is mounted on the explosive container body (111) and connected to the swing arm assembly (134); The second drive assembly (137) can drive the swing arm assembly (134) to rotate the manhole cover (133) between the closed position and the open position; When the manhole cover (133) is in the closed position and the limiting clamp (132) is in the first position, the manhole cover (133) abuts against the end face of the connecting flange (131), and the first protrusion (138) abuts against the outside of the second protrusion (141).
4. The horizontal explosion container according to claim 3, characterized in that, The opening and closing device (130) also includes a mounting base (143), which is mounted on the outside of the explosive container body (111); One end of the swing arm assembly (134) is rotatably mounted on the mounting base (143) via a pivot.
5. The horizontal explosion container according to claim 3 or 4, characterized in that, The first drive assembly (135) includes a first hydraulic cylinder, the fixed end of the first hydraulic cylinder is connected to the body of the explosive container (111) through a first fixed seat, and the telescopic end of the first hydraulic cylinder is fixed to the side wall of the limiting clamp (132) through a second fixed seat. The second drive assembly (137) includes a second hydraulic cylinder, the fixed end of which is mounted on the body of the explosion container (111) via a third fixed seat, and the telescopic end of which is connected to the swing arm assembly (134) via a fourth fixed seat.
6. The horizontal explosion container according to claim 1, characterized in that, The horizontal explosive container also includes multiple inner wall protective plates (150), which are detachably installed inside the main body (111) of the explosive container via a connecting structure (160) to shield the inner wall of the cavity (114).
7. The horizontal explosion container according to claim 6, characterized in that, All of the inner wall protective plates (150) are arranged in multiple layers along the axial direction of the explosion container body (111), with each layer arranged in a circular array. The connecting structure (160) includes threaded posts (161) and nuts (162); there are multiple threaded posts (161), which are spaced apart and protrude from the inner wall of the explosion container body (111); all the inner wall protective plates (150) are provided with notches (151) for the threaded posts (161) to pass through; all the inner wall protective plates (150) are arranged sequentially on the inner sidewall of the cavity (114), and the threaded posts (161) protrude from the notches (151); there are multiple nuts (162), which are installed one-to-one with the threaded posts (161) to fix the inner wall protective plates (150).
8. The horizontal explosion container according to claim 7, characterized in that, The connecting structure (160) also includes a plurality of pressure strips (163), and all of the pressure strips (163) are provided with a plurality of through holes at intervals; The pressure strip (163) is disposed at the splicing position of two adjacent inner wall protective plates (150), and the pressure strip (163) is located on the inner side of the inner wall protective plate (150). The threaded post (161) passes through the through hole. The nut (162) is disposed on the side of the pressure strip (163) away from the inner wall protective plate (150) and is assembled on the threaded post (161) so that the pressure strip (163) abuts against the inner wall of the inner wall protective plate (150).
9. The horizontal explosion container according to claim 1, characterized in that, The side wall of the explosive container body (111) is provided with an optical window (171) and multiple terminals (172).
10. The horizontal explosion container according to claim 1, characterized in that, The side wall of the explosion container is also provided with a pressure test port (173).