A Critical Review on Improving the Fatigue Life and Corrosion Properties of Magnesium Alloys via the Technique of Adding Different Elements
Abstract
:Index | Sections | Tables | Figures | Pages |
AM60 | 1, 2, 3.1, 3.2, 8 | 1, 2 | 1, 2, 3, 4 | 3, 4, 5, 6, 7, 8, 28 |
AM50 | 1, 2, 3.2, 8 | 1, 3 | 5, 6 | 3, 4, 5, 8, 9, 10, 28 |
AZ31 | 1, 2, 4.1, 4.2, 8 | 1, 4, 5 | 7, 8, 9 | 3, 4, 5, 10, 11, 12, 13, 14, 15, 28 |
AZ61 | 1, 2, 4.2 | 1, 6, 7 | 10, 11 | 3, 4, 5, 15, 16, 17, 18 |
AZ80 | 1, 2, 4.3, 8 | 1, 8, 9 | 12 | 3, 4, 5, 18, 19, 20, 28 |
AZ91 | 1, 2, 4.4, 8 | 1, 10, 11 | 13 | 3, 4, 5, 21, 22, 23, 24, 28 |
ZK60 | 1, 2, 5, 8 | 1, 12, 13 | 14 | 3, 4, 5, 24, 25, 26, 28 |
WE43 | 1, 2, 6, 8 | 1, 14 | 15 | 4, 5, 27, 28 |
1. Introduction
2. A Brief Overview of the Mg Alloys Studied in this Study
3. Effect of Simultaneous Addition of Aluminum and Magnesium Elements (Mg-Al-Mn)
3.1. AM60
3.2. AM50
4. Effect of Simultaneous Addition of Aluminum and Zinc Elements (Mg-Al-Zn)
4.1. AZ31
4.2. AZ61
4.3. AZ80
4.4. AZ91
5. Effect of Simultaneous Addition of Zinc and Zirconium Elements (Mg-Zn-Zr)
6. Effect of Simultaneous Addition of Yttrium and Rare Earth Elements (Mg-W-REE)
7. Future Recommendations
8. Conclusions
- Corrosion is a serious and common issue having been considered for most magnesium alloys. Despite much research, a complete and accurate understanding of these alloys’ behavior subject to adverse environmental conditions has not yet been provided, and the proposed solutions and methods have worked for a specific alloy or condition.
- Contrary to many studies on fatigue life and crack behavior of aluminum alloys and steels under various loading conditions, the investigation of these concepts for Mg alloys have not been comprehensively and accurately explained, and most of mentioned works have repeated the similar procedure or presented approaches for a limited range of Mg alloys.
- The use of numerical and modeling methods in recent research is rarely seen, though these methods can help increase the speed of research and provide a more reliable explanation under different working conditions.
- A series of the methods and techniques proposed to improve the fatigue life and other mechanical properties should be carefully considered depending on the type of alloy, and one setting or approach cannot be used for all kinds of Mg alloys.
- Despite the development of artificial intelligence and a variety of optimization methods, the lack of these methods can be clearly realized in the discussion of production and prediction of Mg alloys’ characteristics in the presence of different amounts of elements and environmental and working conditions.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Elements | Al | Mn | Zn | Si | Ce | Cu | Y | Re | Nd | Zr | Other | Mg |
---|---|---|---|---|---|---|---|---|---|---|---|---|
AM60 [22] | 6.29 | 0.28 | 0.05 | 0.02 | - | - | - | - | - | - | 0.0026 | Bal. |
AM50 [23] | 4.70 | 0.32 | 0.13 | 0.03 | - | 0.004 | - | - | - | - | 0.0094 | Bal. |
AZ31 [24] | 3.1 | 0.54 | 1.05 | 0.1 | - | - | - | - | - | - | 0.045 | Bal. |
AZ61 [25] | 6.0 | 0.34 | 0.67 | 0.01 | - | 0.002 | - | - | - | - | 0.002 | Bal. |
AZ80 [26] | 8.24 | 0.20 | 0.67 | 0.012 | - | - | - | - | - | - | 0.0065 | Bal. |
AZ91 [27] | 8.7 | 0.25 | 0.65 | 0.006 | - | - | - | - | - | - | 0.0045 | Bal. |
ZK60 [28] | 0.001 | 0.005 | 5.693 | 0.008 | 0.027 | 0.002 | - | - | 0.062 | 0.860 | 0.008 | Bal. |
WE43 [29] | - | 0.13 | 0.20 | - | - | - | 4.16 | 3.80 | - | 0.36 | - | Bal. |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 225–240 |
Yield stress | YS | MPa | 130 |
Elastic modulus | E | GPa | 45 |
Hardness (Brinell) | HB | ---- | 65 |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 210–230 |
Yield stress | YS | MPa | 125 |
Elastic modulus | E | GPa | 45 |
Hardness (Brinell) | HB | ---- | 60 |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 260 |
Yield stress | YS | MPa | 200 |
Elastic modulus | E | GPa | 44.8 |
Hardness (Brinell) | HB | ---- | 49 |
Author | Year | Method | Results |
---|---|---|---|
Jamali et al. [64] | 2022 | - Analysis of the deformation and crack initiation mechanisms - Fully-reversed, strain controlled cyclic deformation along the rolling direction after 50 cycles | 1- Distinct deformation bands were found in more than one out of four grains due to tensile twins or pyramidal slip. 2- Cracking has occurred in large grains caused by Transgranular cracks parallel to the pyramidal slip bands or twin boundaries. |
Kim et al. [65] | 2022 | - LCF properties of AZ31 sheets with different thicknesses - Twin-roll casting and subsequent hot rolling and fully reversed strain-controlled fatigue tests | 1- Tensile yield strength and texture intensity increase by decrease in the thickness of the sheet. 2- In-plane isotropic fatigue properties. 3- Total strain energy density is a proper fatigue damage parameter for predicting fatigue life. |
Guo et al. [66] | 2021 | - Fatigue performance evaluation based on self-heating | 1- A new fatigue limit assessment method has been proposed based on the statistical analysis of self-heating data. |
Yamada et al. [67] | 2021 | - Equal-Channel Angular Pressing (ECAP) | 1- The efficiency of ECAP on fatigue life depends on the value of stress amplitude. 2- Strength is more efficient than ductility to improve fatigue life. |
Nischler et al. [68] | 2021 | - Fatigue behavior of hot-bent | 1- A novel uniaxial hot-bent specimen. 2- The texture was changed. 3- Increase in the Schmid factor. 4- Observations of Macroscopic bands of twinned grains due to tension twins even in compression tests of the hot-bent specimens. |
Guo et al. [69] | 2020 | - Infrared thermography - Utilizing data processing method to compensate the temperature rise of the fixture | 1- AZ31 magnesium alloy had undergone cyclic hardening during fatigue phenomenon. 2- A special thermal model has been proposed that can estimate the fatigue limit. |
Lei et al. [70] | 2021 | - The uniaxial ratcheting-fatigue interaction - The influences of stress level and stress rate | 1- The compressive ratcheting will occur in the whole-life cycles. 2- The effect of stress rate on the whole-life ratcheting depended on the mechanism that controls the plastic deformation. 3- Reduction in the fatigue life occurs during the asymmetric stress-controlled cyclic deformation by the ratcheting deformation. |
Yang et al. [71] | 2018 | - The relationship between microstructure and tensile behaviors | 1- Twinning−detwinning was the main deformation mechanism. 2- Decrease in the average grain size after fatigue test. |
Meng et al. [72] | 2019 | - The effect of precompression along the extrusion direction | 1- Decrease in the tensile yield strength rapidly after applying precompression. Moreover, the ultimate tensile strength is increased with the rise of precompression deformation. |
Srivatsan et al. [73] | 2012 | - Effects of nanoparticles of aluminum oxide and micron size nickel particles | 1- The elastic modulus, yield strength, and ductility were increased. |
Wang et al. [74] | 2012 | - The effects of zirconate and phosphate chemical liquids | 1- This method can reduce the stress-intensity factor and the fatigue crack growth rate. 2- The zirconate liquid was more effective than phosphate liquid. |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 310 |
Yield stress | YS | MPa | 230 |
Elastic modulus | E | GPa | 44.8 |
Hardness (Brinell) | HB | ---- | 60 |
Author | Year | Method | Results |
---|---|---|---|
Huang et al. [83] | 2021 | - Effects of different values of micro-silicon carbide (m-SiC) particles on the mechanical and fatigue properties - The homogenization heat treatment | 1- m-SiC particles led to improve Yield Strength (YS) and Ultimate Tensile Strength (UTS). 2- The increase in m-SiC particles makes the fatigue strength decrease. |
Jain et al. [84] | 2017 | - Study of fatigue behavior using Nano indentation - Aged and solution treated conditions | 1- Cyclic hardening occurred in the aged case. 2- Slip lines and twins appeared in the solution treated case. |
Kakiuchi et al. [25] | 2015 | - The effect of hydrogen on Fatigue Crack Propagation (FCP) | 1- The hydrogen increased FCP rates compared to air condition. 2- The acceleration of the FCP can be related to hydrogen embrittlement and diffusion. |
Němcová et al. [85] | 2014 | - Impact of Plasma Electrolytic Oxidation (PEO) on the fatigue life | 1- Reduction in fatigue life by 38% and 56% in the presence of air and NaCl, respectively. |
Hwang et al. [86] | 2013 | - Samples reinforced with Silicon Carbide particles (SiCp) | 1- Higher tensile strength and hardness. 2- The smaller grain size. |
Bhuiyan and Mutoh [87] | 2011 | - Conversion coated and painted AZ61 magnesium alloy - Various corrosive environments | 1- The remarkable effect of the coating and painting layer to enhance corrosion in counter with high humidity and NaCl environments. |
Kakiuchi et al. [88] | 2011 | - Effect of film elastic modulus on fatigue life | 1- Diamond-Like Carbon (DLC) film improved the fatigue strength. 2- Cracks originated near the boundary of DLC film and base metal. |
Jordon et al. [89] | 2011 | - Effects of twinning, slip, and inclusions - MultiStage Fatigue (MSF) model | 1- The extrusion direction of AZ61 magnesium alloy had higher yield strength, Taylor factor, and fatigue life than the extrusion transverse direction because the extrusion transverse direction has the low Critical Resolved Shear Stress (CRSS) for basal slip activation. 2- The particle size is more important than the anisotropy to evaluate the number cycles. |
Zeng et al. [90] | 2009 | - The impacts of the artificial ageing heat treatment and loading frequency on Fatigue Crack Propagation (FCP) | 1- Reducing the loading frequency caused to increase the FCP rate. 2- The FCP velocity is facilitated by the artificial aging heat treatment. |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 380 |
Yield stress | YS | MPa | 275 |
Elastic modulus | E | GPa | 44.8 |
Hardness (Brinell) | HB | ---- | 82 |
Author | Year | Method | Results |
---|---|---|---|
et al. [96] | 2021 | - Different forging temperatures | 1- Strain Energy Density (SED) was a proper fatigue damage parameter because was less sensitive to the changes of yield strength due to texture-induced anisotropy in the forging process. |
Zhao et al. [97] | 2021 | - The effects of precipitates and aging treatments on low-cycle fatigue | 1- Aging treatments improved the hardness by about 20%. 2- The T5 (direct-aging treatment) treatment was more effective than T6 (solution + aging treatment) in terms of compression and tension yield strength. |
et al. [98] | 2020 | - Consideration of multiaxial and proportional loading | 1- The non-proportionality in multiaxial loading is destructive for the fatigue life, while the impact of proportionality is just on the shear response. 2- Along the plane of maximum normal stress, the pure axial cracking behavior is dominated by transverse cracks. |
Zhao et al. [99] | 2020 | - Disc and rim samples of the extruded AZ80 automotive wheel - Strain controlled fatigue tests | 1- Rim samples have slightly better mechanical properties compared to the disc samples. 2- Increasing the strain amplitude caused to rise the activation of twinning and detwinning. |
et al. [100] | 2018 | - The effects of microstructure/texture and thermo-mechanical history | 1- Strain energy density is an appropriate parameter to predict the fatigue damage. 2- The cast-forged and extruded-forged showed an increase in fatigue life. |
Huo et al. [101] | 2017 | - Effects of cyclic torsion and low-temperature annealing | 1- The tensile and compressive yield stresses rose with the increase in grain refinement. 2- The cyclic torsion and low-temperature annealing enhanced fatigue strength by 70% (70 to 120 MPa). |
Zhang and Lindemann [102] | 2005 | - The effect of roller burnishing | 1- The optimum condition could enhance fatigue life by 110%. |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 240–250 |
Yield stress | YS | MPa | 160 |
Elastic modulus | E | GPa | 45 |
Hardness (Brinell) | HB | ---- | 63 |
Author | Year | Method | Results |
---|---|---|---|
Ahmadian and SallakhNiknezhad [109] | 2021 | - Effect of shot peening treatment on corrosion properties | 1- Improvement of corrosion resistance. |
Fintová et al. [27] | 2021 | - Mechanisms of the fatigue crack initiation | 1- Slip markings were crack initiation sites. 2- There was a direct relation between the size and number of slip stress amplitude. |
Anandan and Ramulu [110] | 2020 | - Effects of surface conditions on fatigue life under various machining conditions | 1- The higher feed rate of machining (1 μm) caused higher surface roughness and to create voids on the surface. 2- The feed rate of 0.1 mm/rev showed the highest fatigue life. |
Azadi et al. [111] | 2014 | - Thermo-mechanical fatigue (TMF) - Low-Cycle Fatigue (LCF) at different temperatures | 1- Cyclic hardening behavior occurred. 2- The higher temperature caused the alloy to have a brittle fracture. 3- LCF at high temperature had higher lifetime than LCF at the room temperature. |
Lin et al. [112] | 2013 | - Uniaxial LCF failure behavior of hot-rolled AZ91 | 1- The fatigue life increased by increasing and decreasing the stress ratio and the peak stress, respectively. 2- A modified Basquin model is presented to evaluate fatigue life of AZ91 alloys. |
Chen et al. [113] | 2013 | - Uniaxial asymmetric stress-controlled cyclic loading | 1- Cracks started from the surface. 2- The fatigue life increased by increasing and decreasing the stress ratio and the peak stress, respectively. 3- The stress ratio and peak stress affected twinning deformation mechanism and the stress intensity factor range. |
Korzynski et al. [114] | 2011 | - Influence of turning and dynamic bearing ball peening on the surface condition and fatigue life | 1- The fatigue strength improvement due to compressive stress and surface hardening by ball peening. |
Ishihara et al. [115] | 2010 | - Effects of defect-sizes in the diecast AZ91 magnesium alloy | 1- Defects inside diecast AZ were the origin of crack initiate. 2- Distributions of the sizes and densities for defects in diecast AZ were presented. |
Murugan et al. [116] | 2009 | - Impact of transverse load on the HCF behavior of low-pressure cast AZ91 | 1- Pores were places for emerging cracks. 2- The fatigue life of the transversely loaded low-pressure cast AZ91 samples were higher than the gravity cast samples. |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 365 |
Yield stress | YS | MPa | 305 |
Elastic modulus | E | GPa | 44.8 |
Hardness (Brinell) | HB | ---- | 88 |
Author | Year | Method | Results |
---|---|---|---|
Xiong et al. [122] | 2022 | - Influence of pre-corrosion on fatigue life of modified ZK60 magnesium alloy | 1- A total strain energy model was proposed to predict fatigue life of modified ZK60. 2- parameter was proposed to express the correlation between fatigue life and the cyclic deformation mechanism. 3- When twinning-detwinning dominated cyclic deformation, the fatigue life decreases by increasing the parameter. |
Xiong and Yu [123] | 2022 | - Effects of surface treatment methods | 1- Residual dislocation-retwining, dislocation slip, residual twins-dislocation slip interaction, and dislocation slip are the main reasons of the ratcheting deformation under various loading conditions. |
Liu et al. [124] | 2021 | - Impacts of different loading environments on fatigue life | 1- Various loading environments significantly affect fatigue life and the failure mode. |
Meng et al. [125] | 2020 | - Effects of phase difference and stress ratio | 1- The mechanism is wavy-slip for various phase and conditions. |
Morri et al. [126] | 2020 | - Influence of plasma electrolytic oxidation | 1- The plasma electrolytic oxidation caused to reduce fatigue strength by about 15%. |
Albinmousa [127] | 2021 | - Notch effect on ZK60 Magnesium alloys | 1- The Strain Energy Density (SDE) approach is a practical and reliable method to evaluate fatigue life. 2- It is stated that the notch geometry affects fatigue life. |
Pahlevanpour et al. [128] | 2019 | - The anisotropic fatigue behavior of extrusion (ED) and radial (RD) directions | 1- ED had higher fatigue strength than RD due to lower plastic strain energy. |
Pahlevanpour et al. [129] | 2018 | - Effects of different directions of ZK60 extrusion | 1- Twin lamellae and profuse twinned grains dominated extrusion direction (ED). 2- Slip bands dominated the radial direction (RD). 3- The quasi-static behaviors were dissimilar for various directions, while the cyclic behavior in LCF regime was dependent on direction. |
Karparvarfard et al. [130] | 2019 | - Influences of cast and cast-forging on ZK60 magnesium alloys | 1- Cast-forged samples had higher fatigue strength. 2- The Persistent Slip Bands (PSB) and intermetallic were the main places of crack initiation at high cycle fatigue state. |
Chang et al. [131] | 2016 | - Impact of thin film metallic glass | 1- The W-TFMG coating enhances fatigue life by approximately 4 times. 2- The Z-TFMG coating is enhanced fatigue life by about 250 times. |
Dong et al. [132] | 2014 | - The aging effects on cyclic deformation and fatigue life | 1- The aging process had significant impacts on the strain, fracture stress, and the stress–strain response under both monotonic compression and tension mode. 2- The aging process had slight effects on fatigue life and cyclic deformation. |
Yu et al. [133] | 2012 | - Cyclic deformation and LCF properties | 1- Under high strain amplitudes, the main reason for crack initiation is due to the twinning–detwinning process. 2- Under low strain amplitudes, dislocation slips or interaction between dislocation slips and residual twins has an important role in crack initiation. |
Properties | Symbol | Unit | Value |
---|---|---|---|
Ultimate tensile strength | UTS | MPa | 274 |
Yield stress | YS | MPa | 215 |
Elastic modulus | E | GPa | 44.2 |
Hardness (Brinell) | HB | ---- | 85–105 |
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Reza Kashyzadeh, K.; Amiri, N.; Maleki, E.; Unal, O. A Critical Review on Improving the Fatigue Life and Corrosion Properties of Magnesium Alloys via the Technique of Adding Different Elements. J. Mar. Sci. Eng. 2023, 11, 527. https://doi.org/10.3390/jmse11030527
Reza Kashyzadeh K, Amiri N, Maleki E, Unal O. A Critical Review on Improving the Fatigue Life and Corrosion Properties of Magnesium Alloys via the Technique of Adding Different Elements. Journal of Marine Science and Engineering. 2023; 11(3):527. https://doi.org/10.3390/jmse11030527
Chicago/Turabian StyleReza Kashyzadeh, Kazem, Nima Amiri, Erfan Maleki, and Okan Unal. 2023. "A Critical Review on Improving the Fatigue Life and Corrosion Properties of Magnesium Alloys via the Technique of Adding Different Elements" Journal of Marine Science and Engineering 11, no. 3: 527. https://doi.org/10.3390/jmse11030527