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Room C-4-B002, 4th Floor, Building 1, No.10 Junying South Street, Shunyi District, Beijing (Shunchuang)
Edison (Beijing) Technology Co., Ltd
Room C-4-B002, 4th Floor, Building 1, No.10 Junying South Street, Shunyi District, Beijing (Shunchuang)
1、 Product Usage
Rapid Burning TesterIt is a method used to evaluate energetic materials or HGP The key testing equipment for thermal safety performance in sudden and severe high-temperature thermal stimulation environments is mainly used to simulate instantaneous extreme thermal threat scenarios such as fire, high-speed thermal radiation, or high-energy thermal fragment impact that may be encountered in real accidents. The sample is quickly heated to a set high temperature state in a very short time scale (usually seconds to minutes), and the response behavior and severity of the reaction of energetic materials are observed and recorded in real time (such as pressure rise rate, peak pressure, possibility of combustion to detonation, etc.), so as to quantitatively analyze their thermal stimulation sensitivity, thermal safety, thermal response threshold, and potential hazards, providing key experimental data for evaluating the transportation safety, storage risk, accidental ignition sensitivity, and thermal protection design of materials. Optimize the formulation of energetic materials and improve HGP Structural design, formulation of safety operating procedures, and establishment of emergency response standards play an important supporting role.
2、 Product application
The rapid burning test has irreplaceable core value for the safe application of energetic materials and HGP, and its necessity runs through the entire life cycle of material research and development, production control, product design, storage and transportation management, and accident prevention. In the process of transforming energetic materials from the laboratory to practical application scenarios, the rapid burning test simulates an extreme and sudden high-temperature thermal threat environment. This environment is not a theoretical assumption, but actually exists in accident scenarios such as fires, mechanical friction overheating, and accidental radiation from nearby high heat sources. The inherent high energy density characteristics of energetic materials make them highly susceptible to transition from a stable state to a violent exothermic reaction state under uncontrolled thermal stimulation. Once an ignition or explosion chain reaction is triggered, it will release enormous destructive force, and its shock waves, fragments, and high-temperature jets not only destroy equipment and facilities, but also pose a devastating threat to human life. Therefore, evaluating its response behavior under sudden high temperatures is the primary technical means to predict potential accident risks and quantify hazard intensity, directly determining the scientificity and effectiveness of safety protection strategies.