# Effect of Vibration Pretreatment–Microwave Curing Process Parameters on the Mechanical Performance of Resin-Based Composites

**Authors:** Dechao Zhang, Lihua Zhan, Bolin Ma, Jinzhan Guo, Wentao Jin, Xin Hu, Shunming Yao, Guangming Dai

PMC · DOI: 10.3390/polym16172518 · Polymers · 2024-09-04

## TL;DR

This study examines how vibration pretreatment and microwave curing affect the mechanical properties of resin-based composites, focusing on void content and strength.

## Contribution

The study identifies key process parameters influencing void formation and mechanical performance in resin composites using vibration pretreatment and microwave curing.

## Key findings

- Vibration acceleration is the primary factor affecting interlaminar shear strength.
- Fiber weight fraction has minimal impact on mechanical properties.
- Vibration energy influences void size and distribution in composite layers.

## Abstract

The vibration pretreatment–microwave curing process can achieve high-quality molding under low-pressure conditions and is widely used in the curing of resin-based composites. This study investigated the effects of the vibration pretreatment process parameters on the void content and the fiber weight fraction of T700/TRE231; specifically, their influence on the interlaminar shear strength and impact strength of the composite. Initially, an orthogonal experimental design was employed with interlaminar shear strength as the optimization target, where vibration acceleration was determined as the primary factor and dwell time as the secondary factor. Concurrently, thermogravimetric analysis (TGA) was performed based on process parameters that corresponded to the extremum of interlaminar shear strength, revealing a 2.17% difference in fiber weight fraction among specimens with varying parameters, indicating a minimal effect of fiber weight fraction on mechanical properties. Optical digital microscope (ODM) analysis identified interlaminar large-size voids in specimens treated with vibration energy of 5 g and 15 g, while specimens subjected to a vibration energy of 10 g exhibited numerous small-sized voids within layers, suggesting that vibration acceleration influences void escape pathways. Finally, impact testing revealed the effect of the vibration pretreatment process parameters on the impact strength, implying a positive correlation between interlaminar shear strength and impact strength.

## Full-text entities

- **Chemicals:** Resin (MESH:D012116)

## Full text

_Full body text omitted from this summary view._ Fetch the complete paper as Markdown: https://tomesphere.com/paper/PMC11397944/full.md

## Figures

11 figures with captions in the complete paper: https://tomesphere.com/paper/PMC11397944/full.md

## References

42 references — full list in the complete paper: https://tomesphere.com/paper/PMC11397944/full.md

---
Source: https://tomesphere.com/paper/PMC11397944