Explosion simulation device
By combining smoke and high-pressure gas with lighting effects, the problem of unrealistic effects in existing explosion simulation devices has been solved, achieving a realistic explosion simulation experience.
Patent Information
- Application Number
- CN202423184869.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2034-12-20
AI Technical Summary
The existing explosion simulation devices are not realistic enough, resulting in a poor gaming experience.
It employs a smoke generation module, an explosion generation module, and a high-pressure gas generation module. Through the combination of smoke and high-pressure gas, it simulates the diffusion and rising process of smoke after an explosion, and combines it with lighting effects to produce a realistic visual and auditory impact.
The visual and auditory effects of the explosion simulation have been enhanced, allowing viewers to experience realistic explosion scenes both visually and aurally, thus improving the overall gaming experience.
Smart Images

Figure CN223743199U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of explosion simulation technology, and in particular to an explosion simulation device. Background Technology
[0002] Most existing explosion simulation devices use a combination of lights, smoke, and sound to simulate the effects of a bomb exploding, such as flashes, smoke, and explosions. However, the effects are not realistic enough, resulting in a poor gaming experience. Utility Model Content
[0003] The purpose of this invention is to overcome the shortcomings of the prior art and provide an explosion simulation device.
[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:
[0005] This utility model provides an explosion simulation device, including: a smoke generating module, an explosion generating module, and a high-pressure gas generating module; the explosion generating module includes a shell, a partition, a baffle, and a lamp ring component; the shell is provided with a smoke inlet and a high-pressure gas inlet located below the smoke inlet; the smoke inlet is connected to the smoke generating module; the high-pressure gas inlet is connected to the high-pressure gas generating module; the partition is installed inside the shell and located between the smoke inlet and the high-pressure gas inlet; the partition is provided with a high-pressure gas outlet; the lamp ring component is located in the area adjacent to the high-pressure gas outlet; the baffle is located on the top of the shell so that the high-pressure gas outlet and the baffle form an annular outlet.
[0006] In one specific embodiment, the high-pressure gas outlet is cylindrical and located at the center of the baffle.
[0007] In one specific embodiment, the lamp ring is disposed on the outer periphery of the high-pressure gas outlet.
[0008] In one specific embodiment, the housing is further provided with a guide plate at the location of the smoke inlet.
[0009] In one specific embodiment, the area of the guide plate facing the inner wall of the housing has several bends.
[0010] In one specific embodiment, the smoke generating module is connected to the smoke inlet via a smoke pipe.
[0011] In one specific embodiment, a smoke solenoid valve is also provided in the middle section of the smoke pipe.
[0012] In one specific embodiment, the high-pressure gas generating module is connected to the high-pressure gas inlet via a high-pressure pipe.
[0013] In one specific embodiment, a high-pressure solenoid valve is also provided in the middle section of the high-pressure pipe.
[0014] In one specific embodiment, the housing is made of metal.
[0015] Compared with existing technologies, the advantages of this explosion simulation device are as follows: the smoke generated by the smoke generation module simulates the smoke effect after an explosion. The smoke enters the casing through the smoke inlet. When the smoke is about to overflow the baffle, high-pressure gas is rapidly ejected from the high-pressure gas outlet, carrying the fog from the upper space out of the annular outlet, forming a swirling and rising fog. This dynamic effect more realistically simulates the diffusion and rising process of smoke after an explosion. Combined with the lighting effect of the light ring, it can further enhance the visual impact of the explosion, making the entire simulation device visually closer to a real explosion scene. In addition, the high-pressure gas collides with the casing during the ejection process, producing a cracking sound. This sound effect is part of the explosion simulation, allowing the audience to feel the shock of the explosion through hearing, thus enhancing the experience.
[0016] The present invention will be further described below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0017] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 A schematic diagram of the structure of the explosion simulation device provided by this utility model;
[0019] Figure 2 This is a schematic diagram of the internal cross-section of the explosion generation module provided by this utility model. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0022] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to 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.
[0023] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0024] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0025] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0026] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. The illustrative expressions of the above terms in this specification should not be construed as necessarily referring to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.
[0027] See Figures 1 to 2 The specific embodiment shown discloses an explosion simulation device, including: a smoke generating module 10, an explosion generating module 20, and a high-pressure gas generating module 30; the explosion generating module 20 includes a housing 21, a partition 22, a baffle 23, and a lamp ring component 24. The housing 21 is provided with a smoke inlet 25 and a high-pressure gas inlet 26 located below the smoke inlet 25. The smoke inlet 25 is connected to the smoke generating module 10, and the high-pressure gas inlet 26 is connected to the high-pressure gas generating module 30. The partition 22 is installed inside the housing 21 and is located between the smoke inlet 25 and the high-pressure gas inlet 26. The partition 22 is provided with a high-pressure gas outlet 221. The lamp ring component 24 is located in the area adjacent to the high-pressure gas outlet 221. The baffle 23 is located on the top of the housing 21 so that the high-pressure gas outlet 221 and the baffle 23 form an annular outlet.
[0028] Specifically, the housing 21 is cylindrical, and the baffle 23 is installed at the top of the housing 21. The baffle 23 and the high-pressure gas outlet 221 form an annular outlet. The baffle 23 is the outer ring, and the high-pressure gas outlet 221 is the inner ring. The baffle 23 divides the interior of the housing 21 into an upper smoke space and a lower high-pressure gas space. The smoke generated by the smoke generation module 10 simulates the smoke effect after an explosion. The smoke enters the interior of the housing 21 through the smoke inlet 25. When the smoke is about to overflow the baffle 23, high-pressure gas is rapidly ejected from the high-pressure gas outlet 221, carrying the fog from the upper space out of the annular outlet, forming a swirling and rising fog. This dynamic effect more realistically simulates the diffusion and rising process of smoke after an explosion. Combined with the lighting effect of the light ring 24, it can further enhance the visual impact of the explosion, making the entire simulation device visually closer to a real explosion scene. In addition, the high-pressure gas collides with the housing 21 during the ejection process, producing a cracking sound. This sound effect is part of the explosion simulation, allowing the audience to feel the shock of the explosion through hearing, thus enhancing the experience of playing.
[0029] In one embodiment, the high-pressure gas outlet 221 is cylindrical and located at the center of the baffle 23.
[0030] Specifically, designing the high-pressure gas outlet 221 as a cylinder and placing it at the center of the baffle 23 ensures that the high-pressure gas has a clear direction when ejected. This design helps the gas form a stable flow field after ejection, allowing the gas to carry smoke particles more effectively. Furthermore, the annular outlet formed by the high-pressure gas outlet 221 and the baffle 23 helps the gas and smoke form a specific diffusion pattern after ejection. The inner ring contains the gas and smoke ejected from the high-pressure gas outlet 221, while the outer ring contains the smoke that diffuses outward after being blocked by the baffle 23. This design enhances the smoke diffusion effect, making the explosion simulation more realistic. Additionally, when the high-pressure gas is ejected from the cylindrical high-pressure gas outlet 221, it creates an upward thrust. This thrust causes the carried smoke particles to swirl and rise after ejection, thus enhancing the visual effect of the explosion simulation. Furthermore, the light ring 24 is located in the area adjacent to the high-pressure gas outlet 221. When high-pressure gas and smoke are ejected, the lighting effect can be combined with the movement trajectory of the smoke and gas to create a more realistic explosion scene. This design not only enhances the visual effect but also improves the audience's immersion. In addition, by precisely designing the shape and position of the high-pressure gas outlet 221, effective airflow control can be achieved. This control helps ensure that the gas and smoke move along a predetermined trajectory after being ejected, thereby improving the stability and reliability of the device.
[0031] In one embodiment, the lamp ring 24 is disposed on the outer periphery of the high-pressure gas outlet 221.
[0032] Specifically, the light emitted by the lamp ring 24 is projected between the baffle 23 and the high-pressure gas outlet 221 to illuminate the smoke and gas ejected from the annular outlet. This design not only makes the diffusion and rising process of the smoke more clearly visible, but also further highlights the dynamism and layering of the smoke through the dynamic changes of the light.
[0033] In one embodiment, the housing 21 is further provided with a guide plate 27 at the position of the smoke inlet 25.
[0034] Specifically, the design of the guide plate 27 can guide the smoke from the smoke inlet 25 into the interior of the housing 21 and diffuse it according to a predetermined path and direction. With the guidance of the guide plate 27, the smoke can be more evenly distributed in the upper space, avoiding the situation where the smoke is excessively concentrated in a certain area or insufficiently distributed in certain areas. This design can ensure that the smoke forms a good distribution effect throughout the entire housing 21, so that the smoke can more realistically simulate the smoke effect in the real scene when it is subsequently ejected.
[0035] In one embodiment, the area of the guide plate 27 facing the inner wall of the housing 21 is provided with a plurality of bends (not shown in the figure).
[0036] Specifically, the bend design on the guide plate 27 alters the flow path of smoke after it enters the housing 21, preventing it from moving in a straight line and instead causing it to make multiple turns along the designated bends. This design ensures that the smoke diffuses more fully within the housing 21, avoiding excessive concentration or insufficient distribution of smoke in certain areas. Through multiple turns, the smoke is more evenly distributed throughout the upper space, improving its diffusion effect and coverage. Furthermore, the multiple turns not only optimize the smoke's diffusion path but also enhance its diffusion effect within the housing 21. When the smoke turns at the bends, its flow speed and direction change, allowing it to mix more thoroughly with the air inside the housing 21, creating a finer smoke effect. Simultaneously, the multiple turns extend the residence time of the smoke within the housing 21, giving it sufficient time to diffuse throughout the upper space, further enhancing the smoke's emission effect.
[0037] In one embodiment, the smoke generating module 10 is connected to the smoke inlet 25 via a smoke pipe 40.
[0038] Specifically, the smoke generated by the smoke generating module 10 needs to be transported to the interior of the housing 21 through a specific path to simulate the smoke effects in explosions or other scenarios. Connecting the smoke generating module 10 and the smoke inlet 25 via the smoke pipe 40 ensures that the smoke is transported directionally along a predetermined path, preventing leakage and diffusion, thereby improving the accuracy and realism of the smoke simulation. Furthermore, the design of the smoke pipe 40 allows for adjustments to its length, diameter, and material parameters to control the concentration and stability of the smoke during transport. A well-designed smoke pipe 40 maintains a high concentration and stability of the smoke during transport, preventing dilution and dissipation, thus enhancing the smoke simulation effect.
[0039] In one embodiment, a smoke solenoid valve 50 is also provided in the middle section of the smoke pipe 40.
[0040] Specifically, the introduction of the smoke solenoid valve 50 allows for precise control of the smoke transmission process. When a smoke effect needs to be simulated, the smoke generation module 10 is activated, and the smoke solenoid valve 50 automatically opens, allowing smoke to enter the housing 21 through the smoke pipe 40. This design ensures that the smoke can be quickly and accurately transmitted to the designated location when needed, avoiding smoke leakage and unnecessary waste. Furthermore, by controlling the opening and closing of the smoke solenoid valve 50, the smoke transmission time and duration can be flexibly adjusted. This flexibility allows the smoke simulation device to simulate smoke effects of different concentrations and diffusion ranges according to different scenarios and needs. For example, in film and television production, the opening time of the solenoid valve can be controlled to simulate smoke effects of different intensities, depending on the needs of the plot.
[0041] In one embodiment, the high-pressure gas generating module 30 is connected to the high-pressure gas inlet 26 via a high-pressure pipe 60.
[0042] Specifically, the high-pressure gas generated by the high-pressure gas generating module 30 needs to be transported to the required location via a specific path to fulfill its function. Connecting the high-pressure gas generating module 30 and the high-pressure gas inlet 26 via the high-pressure pipe 60 ensures that the high-pressure gas is transported directionally along the predetermined path, avoiding leakage and unnecessary waste. This design guarantees the accuracy and reliability of high-pressure gas transmission. Furthermore, the design of the high-pressure pipe 60 allows for adjustments to its length, diameter, and material parameters to optimize high-pressure gas transmission efficiency. By selecting a suitable high-pressure pipe 60, pressure loss and energy consumption during transmission can be reduced, thereby improving transmission efficiency. This design enables the high-pressure gas to reach the required location more efficiently and fulfill its intended function.
[0043] In one embodiment, a high-pressure solenoid valve 70 is also provided in the middle section of the high-pressure pipe 60.
[0044] Specifically, the introduction of the high-pressure solenoid valve 70 allows for precise control of the release timing of the high-pressure gas. When the mist is about to overflow the baffle 23, the high-pressure solenoid valve 70 automatically opens, allowing the high-pressure gas to be rapidly ejected from the high-pressure gas outlet 221. This design ensures that the high-pressure gas can be released quickly and accurately when needed, avoiding waste and unnecessary energy consumption. Furthermore, the rapid ejection of the high-pressure gas from the high-pressure gas outlet 221 creates a strong pushing effect on the mist in the upper space. This pushing effect not only allows the mist to be smoothly ejected from the annular outlet but also creates a swirling, rising mist effect. This special mist shape not only enhances the visual effect but also allows the mist to be more evenly distributed in the space, improving the utilization rate and coverage area of the mist. In addition, the swirling mist effect is not only aesthetically pleasing, but also enhances the audience's visual experience and immersion. In film and television production, stage performances, theme parks and other scenarios, this special mist effect can create a more realistic and vivid atmosphere, making the audience feel as if they are in a real scene. At the same time, this mist effect can also be combined with other visual effects (such as lighting, music and so on) to create a more colorful audio-visual feast.
[0045] In one embodiment, the housing 21 is made of metal.
[0046] Specifically, the cracking sound generated by the collision of high-pressure gas with the metal casing 21 during ejection can realistically reproduce the sound effects of an explosion. This design is particularly important in film and television production, stage performances, and virtual reality, providing audiences with a more realistic and immersive auditory experience. Furthermore, sound effects often play a crucial role in simulating explosions and battles. The cracking sound produced by this design greatly enhances the realism and immersion of the scene, making the audience feel as if they are actually at the explosion site. This design not only improves entertainment value but also enhances emotional resonance and audience participation. In addition, compared to traditional methods of creating explosion sound effects (such as using explosives or recording), this technology offers lower costs and higher safety. By precisely controlling the timing and intensity of the high-pressure gas ejection, it can simulate explosion sound effects of different scales and types without using real explosives or complex post-production recording. This not only reduces production costs but also improves production efficiency and safety.
[0047] Specifically, the smoke generating module 10 and the high-pressure gas generating module 30 adopt existing publicly available technologies, which will not be elaborated on here.
[0048] The above embodiments are preferred implementations of this utility model. In addition, this utility model can also be implemented in other ways. Any obvious substitutions without departing from the concept of this technical solution are within the protection scope of this utility model.
Claims
1. An explosion simulation device, characterized by, The utility model relates to a smoke generator, which comprises: a smoke generating module, an explosion generating module and a high-pressure gas generating module; the explosion generating module comprises a shell, a partition, a baffle and a lamp ring, the shell is provided with a smoke inlet and a high-pressure gas inlet below the smoke inlet, the smoke inlet is communicated with the smoke generating module, the high-pressure gas inlet is communicated with the high-pressure gas generating module, the partition is installed inside the shell and located between the smoke inlet and the high-pressure gas inlet, the partition is provided with a high-pressure gas outlet, the lamp ring is arranged in the adjacent area of the high-pressure gas outlet, and the baffle is arranged on the top of the shell to form a ring-shaped outlet with the high-pressure gas outlet.
2. The explosion simulation device of claim 1, wherein, The high-pressure gas outlet is in a cylindrical shape and located at the center of the baffle.
3. The explosion simulation device of claim 2, wherein, The lamp ring is arranged on the outer periphery of the high-pressure gas outlet.
4. The explosion simulation device of claim 1, wherein, The shell is also provided with a guide plate at the position of the smoke inlet.
5. The explosion simulation device of claim 4, wherein, The area of the guide plate facing the inner wall of the shell is provided with a plurality of turning parts.
6. The explosion simulation apparatus according to claim 1, wherein The smoke generating module is connected to the smoke inlet through a smoke pipe.
7. The explosion simulation apparatus according to claim 6, wherein The middle section of the smoke pipe is also provided with a smoke electromagnetic valve.
8. The explosion simulation apparatus according to claim 1, wherein The high-pressure gas generating module is connected to the high-pressure gas inlet through a high-pressure pipe.
9. The explosion simulation device of claim 8, wherein, The middle section of the high-pressure pipe is also provided with a high-pressure electromagnetic valve.
10. The explosion simulation apparatus according to claim 1, wherein The shell is made of metal.