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Article summary:

1. A 3D SHPB device was designed to meet the experiments need of split Hopkinson pressure bar (SHPB) experiment equipment with three-dimensional different prestressed impact.

2. A formula of wave propagation law was deduced for the changeover portion based on the theory of stress wave and the method of numerical simulation.

3. The result indicates that 500 mm is the reasonable minimum length of the changeover portion.

Article analysis:

The article provides a detailed description of the design and principle research of a 3D SHPB device, which is used to meet the experiments need of split Hopkinson pressure bar (SHPB) experiment equipment with three-dimensional different prestressed impact. The article includes references from various sources, such as journal articles, books, and Chinese sources, which adds credibility to its claims. Furthermore, it also provides numerical simulations and results that support its claims.

However, there are some potential biases in this article that should be noted. For example, it does not provide any counterarguments or alternative solutions to the problem being discussed. Additionally, it does not explore any possible risks associated with using this device or discuss any potential drawbacks or limitations that may arise from its use. Furthermore, it does not present both sides equally; instead, it focuses solely on presenting evidence in favor of its claims without exploring any opposing views or arguments. Finally, there is a lack of detail regarding how exactly this device works and what materials are used in its construction; this could lead to confusion among readers who are unfamiliar with this type of technology.

In conclusion, while this article provides an informative overview of the design and principle research behind a 3D SHPB device, there are some potential biases that should be taken into consideration when evaluating its trustworthiness and reliability.