Ziyue Yang's scientific contributions

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Publications (5)


Figure 9. Tensile properties of the rolled graphene/Cu composites at various temperatures: (a) tensile curves, (b) normalized strain hardening rate (Θ) against true strain, (c) ultimate tensile strength, (d) tensile yield strength and (e) elongation.
Effects on the Microstructure Evolution and Properties of Graphene/Copper Composite during Rolling Process
  • Article
  • Full-text available

August 2023

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46 Reads

Materials

Ziyue Yang

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Fan Deng

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Zhang Tao

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[...]

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Rolling treatments have been identified as a promising fabrication and deformation processing technique for graphene/metal composites with high performance. However, it is still a challenge to choose appropriate rolling parameters to achieve high strength, ductility and electrical conductivity of the composite simultaneously. In this study, graphene/Cu composites were prepared with an in situ growth method and rolling treatment. The effects of rolling deformation and temperature on the microstructural evolution of graphene and Cu grains, interface bonding between graphene and the matrix, mechanical and electrical properties were systemically investigated. The cold-rolled composite with 85% deformation displayed a maximum ultimate strength of 548 MPa, a high elongation of 8.8% and a good electrical conductivity of 86.2% IACS. This is attributed to oriented graphene arrangement and matrix grain refinement. Our research provides a comprehensive understanding for the rolling behavior of graphene/Cu composites, and can promote the development of graphene-based composites with high performance.

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Figure 3. SEM images of macroporous rGO aerogels (image (a-d) represent rGA-6, rGA-7, rGA-8, and rGA-9, respectively); FT-IR spectra of rGO aerogels and GO (e); XRD patterns of rGO aerogel samples (f). (The inset of d is a digital photograph of rGA-9 aerogel resting stably above the flower buds of the epiphyllum).
Figure 6. (a) Peak temperature at phase-transition period of rGA/PW and PW. (b) Enthalpy histogram of melting and solidifying process. (c) TGA curves of samples. (d) The digital photos of leak test. (e) Infrared thermal images of PW, rGA-6/PW, rGA-7/PW, rGA-8/PW, and rGA-9/PW that are heated on a hot stage of 90 °C.
Pore size and surface area parameter of rGO aerogels by mercury intrusion method.
Phase-change parameters of PW and rGA/PW.
Melting enthalpy change parameters of samples before and after circulation.
Three-Dimensional Macroporous rGO-Aerogel-Based Composite Phase-Change Materials with High Thermal Storage Capacity and Enhanced Thermal Conductivity

July 2023

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26 Reads

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1 Citation

Materials

Three-dimensional porous network encapsulation strategy is an effective means to obtain composite phase-change materials (PCMs) with high heat storage capacity and enhanced thermal conductivity. Herein, macroporous reduced graphene oxide (rGO) aerogels with adjustable pore size are prepared by the emulsion template method and hydrothermal reduction process. Further, the shape-stabilized rGO-aerogel-based composite PCMs are constructed after the combination of 3D porous rGO supports and paraffin wax (PW) through vacuum melting infiltration. By regulating the pore structure of the rGO aerogel network, the rGO-based composite PCMs achieve excellent energy storage properties with a phase-change enthalpy of 179.94 J/g for the loading amount of 95.61 wt% and an obvious enhancement in thermal conductivity of 0.412 W/m-1·K-1, which is 54.89% higher than pristine PW and enduring thermal cycling stability. The obtained macroporous rGO-aerogel-based composite PCMs with high thermal storage and heat transfer performance effectively broaden the application of PCMs in the field of thermal energy storage.


Fitting results of the relation of normalized strength with the matrix strength and the particle size.
Strengthening and Weakening Effects of Particles on Strength and Ductility of SiC Particle Reinforced Al-Cu-Mg Alloys Matrix Composites

March 2021

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48 Reads

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13 Citations

Materials

The strengthening and weakening effects of SiC particles on composite strength and ductility were studied. Al-Cu-Mg alloys matrices with three different mechanical properties were used. Their yield strength, ultimate strength, and elongation range from 90 to 379 MPa, 131 to 561 MPa, and 18% to 31%, respectively. SiC particles with sizes of 4, 8, 12, 15, 20, and 30 μm were used to reinforce these three matrices, separately, and the composites of eighteen combinations of the particle sizes and matrix strengths were manufactured. Yield strength, ultimate strength, elongation, and fracture morphology of these composites were characterized. Based on the analysis, the strengthening to weakening behavior on strength and ductility were comprehensively discussed. The critical particle size having the best ductility was obtained. The strengthening limit and match range of the particle and the matrix to achieve effective strengthening were defined as a function of the particle size and matrix strength. This work offers an important reference for optimization of mechanical properties of the particle-reinforced metal matrix composites.


Effect of the Particle Size and Matrix Strength on Strengthening and Damage Process of the Particle Reinforced Metal Matrix Composites

February 2021

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253 Reads

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21 Citations

Materials

Roles of the particle, strengthening, and weakening during deformation of the particle reinforced metal matrix composite, were studied using in situ technique. Composites with three different strengths Al-Cu-Mg alloy matrices reinforced by three sizes SiC particles were manufactured and subjected to in situ tensile testing. Based on in situ observation, damage process, fraction and size distribution of the cracked particles were collected to investigate the behavior of the particle during composite deformation. The presence of the particle strengthens the composite, while the particle cracking under high load weakens the composite. This strengthening to weakening transformation is controlled by the damage process of the particle and decided by the particle strength, size distribution, and the matrix flow behavior together. With a proper match of the particle and matrix, an effective strengthening can be obtained. Finally, the effective match range of the particle and the matrix was defined as a function of the particle size and the matrix strength.


Effect of combination variation of particle and matrix on the damage evolution and mechanical properties of particle reinforced metal matrix composites

January 2021

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31 Reads

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8 Citations

Materials Science and Engineering A

In this article, Sipco/Al composites with matrices of different strengths reinforced by three sizes particles were manufactured by powder metallurgy process. The yield strength and ultimate strength of these composites ranged from 95 MPa to 379 MPa and 131 MPa to 561 MPa respectively. In particular, in addition to the expected strengthening behavior, a weakening of the composite’s yield strength and ultimate strength was found. This abnormal phenomenon was correlated with the effects of the combination variation of the particle and matrix. To study the mechanisms driving these effects, images and statistical data describing the evolution of the whole damage process were analyzed through in situ tensile testing. Two major types of damage, particle cracking and matrix slippage, were identified by the particle cracking rate fc and the slip band density ρs. Based on the growth characteristics of these two major damage types, three stages of damage evolution were defined, and the effect of these stages on the strengthening limit of the composites’ mechanical properties was discussed. Furthermore, through the analysis of the microstructures and fracture morphologies of the composites, a damage factor Q was defined to describe the different failure mechanism and the strengthening limits of the composites. This work provides a better understanding of the relation between the composite components and the mechanical properties.

Citations (3)


... Several studies are concerned with the fatigue properties of the composite material based on aluminum alloys, which depend on the volume fraction of the reinforcement particles, most of which are supported by (SiC) [23,24]. In a recent study on the effect of the volume fraction of (SiC) particles on the failure cycles of (2124\Al -Si -Cu) alloy prepared by powder metallurgy technique and AS7G \ Al-Si -Mg alloy prepared by casting technology, a decrease in fatigue resistance was observed. of the matrix composite AS7G compared to the fatigue strength of the matrix 2124. ...

Reference:

FATIGUE AND HARDNESS BEHAVIOR OF AL-2CU-2MG ALLOY DUE TO TITANIUM DIOXIDE AND SILICON CARBIDE NANOADDITIVES
Strengthening and Weakening Effects of Particles on Strength and Ductility of SiC Particle Reinforced Al-Cu-Mg Alloys Matrix Composites

Materials

... Therefore, during high strain rates deformation, the blockage of dislocation movements by the particles can be further enhanced, which is positive for obtaining high strength. Meanwhile, high strain rate promotes the accumulation of dislocations around the particles, which preferentially accelerates premature formation of micro-voids, and eventually resulting softening [26,27]. The combination of these two factors may determines mechanical behavior of alloys deformed at high strain rates. ...

Effect of the Particle Size and Matrix Strength on Strengthening and Damage Process of the Particle Reinforced Metal Matrix Composites

Materials

... These observations are consistent with previous findings that a higher ceramic content in composites is correlated with more defects during mechanical tests [12,[60][61][62]. To be more specific, Yang et al. [17] experimentally found that PR-MMCs with larger particle sizes tend to fracture due to significant particle cracking, resulting in a lower working hardening and ultimate strength compared to the case without particles. However, from a validated simulation analysis, Chiu et al. [23] found that the overall stress level decreased significantly due to traction-free zones around interfacial cracks, despite stress concentration at the crack tips, which implies a reduction in work hardening behavior during macro-deformation. ...

Effect of combination variation of particle and matrix on the damage evolution and mechanical properties of particle reinforced metal matrix composites
  • Citing Article
  • January 2021

Materials Science and Engineering A