A heat-resistant aluminum alloy material and a preparation method and application thereof
By optimizing the raw material ratio and preparation method of aluminum alloy powder, heat-resistant aluminum alloy materials were prepared, solving the problems of hot cracking and cracking of traditional aluminum alloys in additive manufacturing. Excellent mechanical properties at high temperatures were achieved, meeting the requirements of high-strength, heat-resistant, lightweight, and complex structure aluminum alloys.
Patent Information
- Application Number
- CN202511300583.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-12
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2045-09-12
AI Technical Summary
In the existing technology, traditional aluminum alloy materials have problems such as hot cracking or macroscopic cracking during the additive manufacturing process, which cannot meet the requirements of additive manufacturing. These are technical problems that the existing technology cannot effectively solve.
A heat-resistant aluminum alloy material and its preparation method are proposed. By optimizing the process conditions such as the ratio of aluminum alloy powder raw materials, the preparation method of powder raw materials, and the preparation method of aluminum alloy material, the aluminum alloy powder raw materials can be matched with the additive manufacturing requirements at 300-400℃, and an aluminum alloy material with no cracks and cracking and excellent high-temperature mechanical properties is prepared.
It achieves tensile strength >260MPa, yield strength >220MPa, and elongation ≥10% at 300℃; and tensile strength >180MPa, yield strength >160MPa, and elongation ≥10% at 350℃, meeting the requirements for high-strength, heat-resistant, lightweight, and complex structure aluminum alloys.
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Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of additive manufacturing of aluminum alloys, and particularly relates to a heat-resistant aluminum alloy material and a preparation method and application thereof. BACKGROUND
[0002] Aluminum alloy is favored by the industry as a representative of lightweight structural materials. Additive manufacturing can realize net shaping of parts according to digital models, and thus becomes the preferred preparation process for lightweight structure manufacturing. At present, the low-altitude economy is increasingly developed, and aircraft are constantly pursuing performance improvement, and the demand for small high-performance engines is increasingly strong, and there is an urgent need for heat-resistant aluminum alloys for additive manufacturing that can serve at 300-400℃ for a long time to replace high-density traditional metal materials.
[0003] At present, the additive manufacturing aluminum alloys that have achieved wide commercial application are limited to a few aluminum-silicon alloys such as AlSi12 and AlSi10Mg, while traditional high-strength aluminum alloys such as 2-series and 7-series are prone to serious thermal cracking under the complex thermal stress environment of additive manufacturing due to their wide solidification interval. In addition, traditional high-strength aluminum alloys rely on nano-precipitated phase aging strengthening, and at 300-400℃ high temperature, the precipitated phase coarsens due to rapid diffusion of solute atoms and Ostwald ripening effect, resulting in a sharp decrease in strength. In addition, the thermal influence zone caused by layer-by-layer solidification in additive manufacturing leads to phase coarsening, and the high temperature gradient brings about a large thermal stress, so the traditional heat-resistant aluminum alloy material usually has poor formability, and when it is used for additive manufacturing, it is prone to metallurgical defects such as thermal cracking or macroscopic cracking, resulting in very poor mechanical properties, which cannot be directly applied to additive manufacturing technology, which also causes the predicament that there is no lightweight additive manufacturing aluminum alloy material available at 300-400℃ temperature range. Therefore, it is urgent to develop high-strength heat-resistant aluminum alloy powder suitable for additive manufacturing to improve the performance of aluminum alloy formed products.
[0004] Chinese patent CN118880132A discloses a high-ductility Al-Mg alloy powder material for additive manufacturing and a preparation method and application thereof. The Al-Mg alloy powder material uses elements such as Mg, Mn, Zr, Ti, Ce, and Si, and forms Al3Zr, Al3Ti, and Al3(Ce,Zr) nano-dispersed phases and Mg2Si strengthening phases in combination with the laser additive manufacturing process. The prepared aluminum alloy has a yield strength of 500 MPa or more and an elongation of 12.5%. Chinese patent CN118773489A discloses a heat-resistant high-strength aluminum alloy and a preparation method thereof. The aluminum alloy is prepared by combining gas atomization screening and additive manufacturing, and uses elements such as Mn, Sc, Zr, and Nd to form intermetallic compounds, thereby improving the high-temperature mechanical properties of the aluminum alloy. However, the mechanical properties of the above aluminum alloys at high temperature still have a large room for improvement. SUMMARY
[0005] The application aims to provide a heat-resistant aluminum alloy material and a preparation method thereof, so as to solve the problems of thermal cracks or macroscopic cracks, and poor mechanical properties of the formed product when the conventional aluminum alloy material is used for additive manufacturing.
[0006] To solve the above problems, the application is realized by the following scheme:
[0007] Firstly, the application provides a heat-resistant aluminum alloy material, and the components of the heat-resistant aluminum alloy material include, in mass percentage, 0.5-6% of Fe, 0.5-6% of Cr, 0.5-3% of Ti, ≤2% but not 0 of Mn, ≤2% but not 0 of Sc, ≤2% but not 0 of Zr, the balance of Al and inevitable impurities.
[0008] Further, in the microstructure of the heat-resistant aluminum alloy material, the internal part presents a bimodal grain structure, the melt pool boundary is mainly equiaxed crystal, the melt pool center is columnar crystal, and the melt pool boundary and the melt pool center are also dispersedly distributed with quasicrystal and intermetallic compound strengthening phase. Further, the elongation of the heat-resistant aluminum alloy material is ≥10% at 300-400℃.
[0009] Further, the tensile strength of the heat-resistant aluminum alloy material is >260MPa, and the yield strength is >220MPa at 300℃; the tensile strength of the heat-resistant aluminum alloy material is >180MPa, and the yield strength is >160MPa at 350℃.
[0010] Further, the components of the heat-resistant aluminum alloy material further include 0.2-4.0% of Ce.
[0011] Further, the components of the heat-resistant aluminum alloy material include 0.2-2.0% of Mn, 0.2-1.5% of Sc, and 0.2-1.5% of Zr.
[0012] Preferably, the microstructure of the heat-resistant aluminum alloy material contains 20-40vol% of dispersedly distributed icosahedral nanometer quasicrystal phase.
[0013] Further, the application provides a preparation method of the heat-resistant aluminum alloy material, including the following steps:
[0014] S1, putting the heat-resistant aluminum alloy raw material powder into a 3D printing device for laser melting printing process;
[0015] S2, high-temperature stress annealing.
[0016] Further, the laser power in the laser melting printing process is 200-400W, the scanning speed is 600-2000mm / s, and the scanning interval is 0.06-0.18mm.
[0017] Further, the heating rate in the stress relief annealing process is 5-15℃ / min, the holding temperature is 200-400℃, and the holding time is 2-10h.
[0018] Further, the Hall flow rate of the heat-resistant aluminum alloy raw powder is ≤130s / 50g, and the sphericity is ≥0.85.
[0019] Further, the preparation process of the heat-resistant aluminum alloy raw powder is: (1) raw material smelting; (2) atomization powder preparation; (3) powder screening; wherein the raw material smelting temperature is 1000-1300℃, and the atomization gas pressure is 2.0-3.0MPa.
[0020] Further, the particle size range of the heat-resistant aluminum alloy raw powder is 15-53μm.
[0021] Further, the application also provides the application of the heat-resistant aluminum alloy material in additive manufacturing.
[0022] The beneficial effects of the application are:
[0023] (1) The Al alloy composition designed by the application is mainly alloyed with transition group (Fe, Cr, Ti, etc.) elements and rare earth (Sc, Zr, Ce, etc.) elements, the rapid solidification characteristics of additive manufacturing are used to inhibit the coarse AlFe needle-shaped precipitated phase, the limit solid solubility of alloy elements is improved, and a sufficient number of high-temperature heat-resistant dispersion strengthening phases are formed in the aluminum matrix, such as Al 13 (Cr,Fe) 2-4 intermetallic compound; the Al(Sc,Zr) coherent nano precipitated phase is precipitated on the surface of the primary strengthening phase by using the rare earth elements Sc and Zr, the coarsening and dissolution of the structure at high temperature are inhibited, and the cracking, poor mechanical strength and other problems of traditional aluminum alloy in the additive manufacturing process are fundamentally solved.
[0024] (2) The aluminum alloy material obtained by the specific component formula and specific preparation method has a refined bimodal grain structure inside, the melt pool boundary is equiaxed crystal, and the melt pool center is columnar crystal, the fine equiaxed crystal inhibits crack propagation and cooperates with the columnar crystal to improve the strength and plasticity of the alloy; a large number of quasicrystal and intermetallic compound strengthening phases are dispersedly distributed in the melt pool boundary and center, which endows the heat-resistant alloy material with excellent high-temperature performance.
[0025] (3) The heat-resistant alloy material of the present application has a tensile strength > 260 MPa, a yield strength > 220 MPa, and an elongation ≥ 10% at 300℃, a tensile strength > 180 MPa, a yield strength > 160 MPa, and an elongation ≥ 10% at 350℃, and low performance anisotropy.
[0026] (4) The additive manufacturing aluminum alloy material of the present application has excellent forming property, no cracks, high strength, high heat resistance, and other excellent mechanical properties, and can meet the needs of the industry for high-strength heat-resistant, lightweight, and complex-structure aluminum alloys. BRIEF DESCRIPTION OF DRAWINGS
[0027] Figure 1 : Scanning electron microscope image of the heat-resistant aluminum alloy raw material powder of Example 2.
[0028] Figure 2 : Optical microscope image of the heat-resistant aluminum alloy material of Example 2.
[0029] Figure 3 : Scanning electron microscope image of the heat-resistant aluminum alloy material of Example 2.
[0030] Figure 4 : Phase distribution diagram of the aluminum alloy material of Example 2.
[0031] Figure 5 : High-temperature tensile test stress-strain curve of the aluminum alloy material of Example 3.
[0032] Figure 6 : High-temperature tensile test stress-strain curve of the aluminum alloy material of Example 4.
[0033] Figure 7 : Heat-resistant strengthening phase morphology and distribution diagram of the aluminum alloy material of Example 2. DETAILED DESCRIPTION
[0034] The technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of protection of the present application.
[0035] A heat-resistant aluminum alloy material, the components of the heat-resistant aluminum alloy material include, in mass percentage: 0.5-6% of Fe, 0.5-6% of Cr, 0.5-3% of Ti, ≤2% but not 0 of Mn, ≤2% but not 0 of Sc, ≤2% but not 0 of Zr, the balance being Al and unavoidable impurities.
[0036] The heat-resistant aluminum alloy material of the present application is an Al-Fe-Cr-Ti system aluminum alloy, and the effects of each element are as follows: Fe: cooperates with Cr to form a quasi-crystal phase, which is the core element of the quasi-crystal structure in the Al-Fe-Cr-Ti system aluminum alloy, improves the high-temperature strength of the alloy, inhibits grain coarsening, and maintains the stability of the quasi-crystal phase at high temperatures; but is limited to solid solution in the Al matrix, and excessive use will precipitate coarse needle-shaped Al 13 Fe4 phase, causing cracks in the alloy, increasing porosity and reducing density. Within the content range of 0.5-6%, Fe and Cr can form a good match, balancing the strength and density of the aluminum alloy.
[0037] Cr: cooperates with Fe to stabilize the quasi-crystal structure and reduce lattice distortion. Low diffusion rate slows down phase transformation at high temperatures and delays the decomposition of quasi-crystals into stable intermetallic compounds. Cr can form a dense chromium oxide layer in a high-temperature environment, improving oxidation resistance. When the amount is too small, the grain boundary segregation is weak, and 0.5-6% is the best dosage range of Cr.
[0038] Ti: as a strong nucleating agent, generates Al3Ti intermetallic compounds with excellent high-temperature stability, promotes non-uniform nucleation of Al, significantly refines quasi-crystal phase particles, reduces thermal cracks, improves strength and toughness, and improves the high-temperature strength and hardness of the alloy. However, when the amount is too much, it will lead to coarsening of Al3Ti particles and thus reduce the strength of the alloy.
[0039] The above three elements in the aluminum alloy interact with each other, collectively affecting the microstructure of the Al-Fe-Cr-Ti system aluminum alloy matrix, and improving its mechanical strength.
[0040] Further, in the microstructure of the heat-resistant aluminum alloy material, the internal structure presents a bimodal grain structure, the melt pool boundary is mainly equiaxed crystal, the melt pool center is columnar crystal, and the melt pool boundary and melt pool center are also dispersedly distributed with icosahedral quasi-crystals and intermetallic compound strengthening phases.
[0041] The bimodal grain structure in the heat-resistant aluminum alloy material has excellent strength and plasticity synergy; the columnar crystal can reduce the number of grain boundaries, reduce the probability of pores or un-melted defects, and provide higher tensile strength. The equiaxed crystal has higher hardness, can synergize with the soft columnar crystal to delay strain localization and improve the elongation of the alloy. In addition, the staggered distribution of columnar crystals and equiaxed crystals can hinder crack propagation and improve the fatigue performance of the alloy. A multi-level defense strengthening system is constructed in the aluminum alloy material of the present application, the equiaxed crystal acts as a crack barrier, the columnar crystal is a load channel, the icosahedral quasicrystal improves the high-temperature performance of the alloy, and the dispersion strengthening hinders the movement of dislocations to improve the yield strength, and also plays a role with intermetallic compound strengthening phase to provide extreme environmental stability and mechanical strengthening. The existence and distribution of the above structure can ensure that the elongation of the aluminum alloy is ≥10%, the tensile strength of the heat-resistant aluminum alloy material is >260 MPa at 300℃, and the yield strength is >220 MPa; the tensile strength of the heat-resistant aluminum alloy material is >180 MPa at 350℃, and the yield strength is >160 MPa.
[0042] Preferably, the heat-resistant aluminum alloy material contains 20-40vol% of dispersed icosahedral nanometer quasicrystal phase in the microstructure. The icosahedral nanometer quasicrystal phase is a hard phase that hinders the movement of dislocations, and the coherent interface between the quasicrystal and the matrix has high coherence, which can effectively delay crack initiation and is beneficial to the mechanical strength of the alloy; and due to its high nucleation rate, it forms a dispersed distribution and has high thermal stability (decomposition at 430℃), which is a very excellent high-temperature strengthening phase. The formation of icosahedral nanometer quasicrystal depends on the composition design and preparation process of the Al-Fe-Cr-Ti system aluminum alloy. The relative amount of Fe, Cr and Ti elements in Al described above can form a specific stoichiometric ratio range to promote the formation of nanometer quasicrystals. If the stoichiometric ratio deviates, too many crystal phases (such as Al 13 Fe4) will be precipitated; and on the preparation process side, specific melt holding temperature and cooling process must be matched to ensure that the alloy contains dispersed nanometer quasicrystal phase.
[0043] Further, the tensile strength of the heat-resistant aluminum alloy material is >260 MPa at 300℃, and the yield strength is >220 MPa; the tensile strength of the heat-resistant aluminum alloy material is >180 MPa at 350℃, and the yield strength is >160 MPa.
[0044] Further, the composition of the heat-resistant aluminum alloy material further includes 0.2-4.0% of Ce. Adding Ce element can remove O / S impurities and reduce alloy surface pores on the one hand; on the other hand, it can be adsorbed on the grain boundary to reduce the interface energy and promote the growth of equiaxed crystals; and can also form high-melting-point intermetallic compounds such as AlCe with Al matrix to improve high-temperature strength.
[0045] Further, the heat-resistant aluminum alloy material comprises 0.2-2.0% of Mn, 0.2-1.5% of Sc, and 0.2-1.5% of Zr.
[0046] Mn participates in the formation of icosahedral quasicrystal phase, improves the heat resistance and corrosion resistance of the alloy, and can also form AlMnCe high-melting-point intermetallic compounds with Ce, but too high content of Mn will lead to a decrease in the density of the alloy. Sc and Zr can both refine the grain size of the structure, promote the coherent nanometer precipitates such as Al3(Sc, Zr), inhibit dynamic recrystallization, and improve the high-temperature strength of the alloy; however, too high content of Sc will cause coarse Al3Sc to easily gather into crack sources, thereby reducing the plasticity of the alloy; and too high content of Zr will cause the brittle Al3Zr phase to coarsen, with the size reaching the micron level, which is not conducive to the elongation of the alloy. In the alloy material of the present application, there are multiple element interactions and synergistic regulation effects, such as the formation of Al3(Sc, Zr) by Sc / Zr, the promotion of Al3(Ti, Zr) precipitation by Ti, and the common refinement of the grain size; the addition of Ti in combination with Sc can take into account the grain refinement and strengthening effects and reduce the amount of Sc, but too high content of Ti will increase the proportion of Ti in Al3(Sc, Ti), reduce the pinning ability, and decrease the tensile strength of the alloy. Therefore, controlling the content of Sc to be 0.2-1.5%, the content of Zr to be 0.2-1.5%, and the content of Ti to be 0.5-3% can exhibit the most optimal synergistic effect, effectively refine the grain size, inhibit harmful phases, optimize precipitated strengthening phases, and the like to improve the mechanical properties of the aluminum alloy.
[0047] Further, the present application provides a preparation method of a heat-resistant aluminum alloy material, comprising the following steps:
[0048] S1, placing heat-resistant aluminum alloy raw material powder into a 3D printing device for laser melting printing process;
[0049] S2, high-temperature stress annealing.
[0050] Further, in the laser melting printing process, the preheating temperature of the substrate is 50-200°C, the laser power is 200-400W, the scanning speed is 600-2000mm / s, and the scanning interval is 0.06-0.18mm.
[0051] The addition of Sc, Zr, Mn, Ce and other elements in Al-Fe-Cr-Ti aluminum alloy matrix can optimize alloy performance through grain refinement, harmful phase inhibition and high-temperature stability improvement. However, the effect of these elements is highly dependent on the additive manufacturing process parameters, as they directly affect the thermal behavior of the molten pool (temperature gradient, cooling rate, thermal cycle) and element distribution. Among them, laser power directly affects the molten pool temperature and heat input, thereby regulating the solubility of elements and phase formation kinetics. At low power, due to the high reflectivity of aluminum alloy powder to infrared laser, Sc / Zr cannot fully dissolve and diffuse, the amount of Al3(Sc, Zr) precipitates decreases and the distribution is uneven, and Mn is difficult to fully diffuse, resulting in an increase in coarse Al6Mn phase. At high power, Al3(Sc, Zr) precipitates coarsen, and the evaporation of some elements leads to a deviation from the designed value. Scanning speed affects element segregation tendency and grain morphology by dominating the cooling rate and temperature gradient of the molten pool; at low scanning speed, the temperature gradient is large, columnar crystal epitaxial growth dominates, the heterogeneous nucleation of Sc / Zr is inhibited, and the thermal crack sensitivity is high; at a proper high scanning speed, the cooling rate increases, promoting the synergistic deformation of the bimodal grain structure and improving the elongation of the alloy; but too high scanning speed will exacerbate the non-equilibrium solidification of the melt, leading to element segregation and reducing the overall performance of the alloy. The scanning interval determines the thermal accumulation effect of the interlayer remelting area, thereby affecting the diffusion uniformity of elements and the size, number and distribution of strengthening phases in different regions of the molten pool. A scanning interval of 0.06-0.18 mm can maximize the forming efficiency of the aluminum alloy while ensuring the dimensional accuracy and density of the formed parts.
[0052] Further, the heating rate in the stress relief annealing process is 5-15℃ / min, the holding temperature is 200-400℃, and the holding time is 2-10h. Low heating rate will lead to grain coarsening of Al3(Sc, Zr), Al3Ti, etc., becoming a crack source, but at high heating rate, the residual stress in the alloy is not completely eliminated, increasing the risk of service deformation. The holding temperature determines the phase equilibrium state and grain boundary structure reconstruction. If the holding temperature is too low, the residual stress cannot be completely eliminated, and the alloy part is prone to deformation; if the temperature is too high, the strengthening phase will coarsen and the grain structure will grow, reducing the strength of the alloy. Only with appropriate heating rate, holding temperature and time can residual stress elimination and nanophase stability be achieved simultaneously.
[0053] Further, the Hall flow rate of the heat-resistant aluminum alloy raw powder is ≤130s / 50g, and the sphericity is ≥0.85. A Hall flow rate of ≤130s / 50g can ensure efficient powder laying and high density, avoiding un-melted defects; a sphericity of ≥0.85 can improve laser absorption rate and composition uniformity, and inhibit cracks and pores.
[0054] Further, the preparation process of the heat-resistant aluminum alloy raw material powder is: (1) raw material smelting; (2) atomization powder preparation; (3) powder screening; wherein the raw material smelting temperature is 1000-1300℃, and the atomization gas pressure is 2.0-3.0MPa.
[0055] Further, the particle size of the heat-resistant aluminum alloy raw material powder ranges from 15 to 53μm.
[0056] Further, the application also provides the application of the heat-resistant aluminum alloy material in additive manufacturing.
[0057] Embodiment 1
[0058] The embodiment provides a heat-resistant aluminum alloy material, the components of the heat-resistant aluminum alloy material include, in percentage by mass: 0.5-6% of Fe, 0.5-6% of Cr, 0.5-3% of Ti, the balance of Al and inevitable impurities.
[0059] Preferably, it also includes 0.2-4.0% of Ce, 0.2-2.0% of Mn, 0.2-1.5% of Sc and 0.2-1.5% of Zr.
[0060] The embodiment also provides a preparation method of the heat-resistant aluminum alloy material, including the following steps:
[0061] S1, drawing a part model needing printing on a three-dimensional design software, adding support to the three-dimensional model, slicing, putting the heat-resistant aluminum alloy raw material powder into a 3D printing equipment to perform a selective laser melting (SLM) printing process; wherein the SLM laser is 1000nm-1100nm infrared light, the substrate preheating temperature is 50-200℃, the laser power is 200-400W, the scanning speed is 600-2000mm / s, the scanning interval is 0.06-0.18mm, and the layer thickness is 0.03-0.06mm.
[0062] S2, high-temperature stress annealing, specifically, heating at a heating rate of 5-15℃ / min to 200-400℃ and keeping for 2-10h, and then performing furnace cooling or air cooling.
[0063] The preparation process of the heat-resistant aluminum alloy raw material powder is:
[0064] (1) raw material smelting: putting all the component metal raw materials of the heat-resistant aluminum alloy material into a crucible of a vacuum induction furnace to perform smelting, and the smelting temperature is 1000-1300℃;
[0065] (2) atomization powder preparation: transferring the smelted metal melt into an atomization barrel, replacing the air in the atomization barrel with argon, and performing atomization powder preparation, and the gas pressure is 2.0-3.0Mpa;
[0066] (3) Powder screening: The atomized metal powder is subjected to ultrasonic vibration screening grading treatment with 250 mesh and 550 mesh screens to obtain alloy raw powder with a powder particle size range of 15-53 μm;
[0067] The Hall flow rate of the heat-resistant aluminum alloy raw powder is ≤130 s / 50g, and the sphericity is ≥0.85.
[0068] Example 2
[0069] The heat-resistant aluminum alloy material provided in the embodiment includes, in mass percentage, 1% of Fe, 4% of Cr, 3% of Ti, the balance of Al, and unavoidable impurities.
[0070] The embodiment also provides a preparation method of the heat-resistant aluminum alloy material, including the following steps:
[0071] S1, drawing a part model to be printed on a three-dimensional design software, adding support to the three-dimensional model, slicing, and putting the heat-resistant aluminum alloy raw powder into a 3D printing device for selective laser melting (SLM) printing process; wherein the SLM laser is 1000 nm infrared light, the substrate preheating temperature is 130 DEG C, the laser power is 330 W, the scanning speed is 1400 mm / s, the scanning interval is 0.09 mm, and the layer thickness is 0.03 mm.
[0072] S2, high-temperature stress annealing, specifically heating to 260 DEG C at a heating rate of 10 DEG C / min and keeping for 3 h, and then air cooling; the density of the prepared heat-resistant aluminum alloy material is 99.2%.
[0073] The preparation process of the heat-resistant aluminum alloy raw powder is:
[0074] (1) Raw material smelting: placing all component metal raw materials of the heat-resistant aluminum alloy material in a crucible of a vacuum induction furnace for smelting, and the smelting temperature is 1100 DEG C;
[0075] (2) Atomization powdering: transferring the smelted metal melt into an atomization barrel, replacing the air in the atomization barrel with argon, and atomizing and powdering, and the gas pressure is 2.6 Mpa;
[0076] (3) Powder screening: The atomized metal powder is subjected to ultrasonic vibration screening grading treatment with 250 mesh and 550 mesh screens to obtain alloy raw powder with a powder particle size range of 15-53 μm(D10 is 20.09 μm; D50 is 35.63 μm; D90 is 56.17 μm);
[0077] The Hall flow rate of the heat-resistant aluminum alloy raw powder is 121 s / 50g, and the sphericity is 0.87.
[0078] Fig. 1 is a scanning electron microscope image of the raw material powder of the present application. Figure 1 Fig. 1 is a scanning electron microscope image of the raw material powder of the present application.
[0079] Fig. 1 is a scanning electron microscope image of the raw material powder of the present application. Figure 2 Fig. 1 is a scanning electron microscope image of the raw material powder of the present application. Figure 3 Fig. 1 is a scanning electron microscope image of the raw material powder of the present application.
[0080] Fig. 1 is a scanning electron microscope image of the raw material powder of the present application. Figure 4 Fig. 1 is a scanning electron microscope image of the raw material powder of the present application.
[0081] Figure 7 Fig. 1 is a scanning electron microscope image of the raw material powder of the present application.
[0082] The high-temperature tensile mechanical properties of the aluminum alloy material of the present example were tested at 300℃ and 350℃, and the results are shown in Table 1 below. In Table 1, X represents the direction parallel to the substrate, and Z represents the deposition direction, i.e., the direction perpendicular to the substrate.
[0083] Table 1: High-temperature tensile mechanical properties test results of the aluminum alloy material of Example 2 at 300℃ and 350℃
[0084] Example 3
[0085] The present example provides a heat-resistant aluminum alloy material, which comprises, by mass percentage: 1% of Fe, 4% of Cr, 1% of Ti, 1% of Ce, 0.5% of Mn, 0.3% of Sc, 0.5% of Zr, and the balance of Al and unavoidable impurities.
[0086] The present example also provides a preparation method of the heat-resistant aluminum alloy material, comprising the following steps:
[0087] S1, drawing the part model to be printed on a three-dimensional design software, adding support to the three-dimensional model, slicing, and placing the heat-resistant aluminum alloy raw material powder into a 3D printing device for selective laser melting (SLM) printing process; wherein the SLM laser is 1000nm infrared light, the substrate preheating temperature is 130℃, the laser power is 350W, the scanning speed is 1600mm / s, the scanning interval is 0.09mm, and the layer thickness is 0.03mm.
[0088] S2, high-temperature stress annealing, specifically, heating at a heating rate of 10℃ / min to 260℃ and keeping for 3h, and then air cooling; the prepared heat-resistant aluminum alloy material has a density of 99.5%.
[0089] The preparation process of the heat-resistant aluminum alloy raw powder is as follows:
[0090] (1) Raw material smelting: place all component metal raw materials of the heat-resistant aluminum alloy material in a crucible of a vacuum induction furnace for smelting, and the smelting temperature is 1050℃;
[0091] (2) Atomization powdering: transfer the smelted metal melt into an atomization barrel, replace the air in the atomization barrel with argon, and perform atomization powdering, and the gas pressure is 2.7Mpa;
[0092] (3) Powder screening: adopt 250-mesh and 550-mesh screens to perform ultrasonic vibration screening and grading treatment on the atomized metal powder, and obtain alloy powder with a particle size range of 15-53μm (D10 is 19.52μm; D50 is 33.83μm; D90 is 57.21μm);
[0093] The Hall flow rate of the heat-resistant aluminum alloy raw powder is 115s / 50g, and the sphericity is 0.88.
[0094] The aluminum alloy material of the present embodiment is subjected to high-temperature tensile mechanical property tests at 300℃ and 350℃, and the results of parallel measurement twice are shown in Table 2 below.
[0095] Table 2 High-temperature tensile mechanical property test results of the aluminum alloy material of Example 3 at 300℃ and 350℃
[0096] Appendix Figure 5 The stress-strain curves of the corresponding high-temperature tensile tests of the aluminum alloy material of the present embodiment are shown in the following figures.
[0097] Example 4
[0098] The present embodiment provides a heat-resistant aluminum alloy material, and the components of the heat-resistant aluminum alloy material include, in mass percentage: 1% of Fe, 4% of Cr, 1% of Ti, 3% of Ce, 0.5% of Mn, 0.3% of Sc, 0.5% of Zr, and the balance of Al and unavoidable impurities.
[0099] The present embodiment also provides a preparation method of the heat-resistant aluminum alloy material, which includes the following steps:
[0100] S1, draw the part model that needs to be printed on the three-dimensional design software, add support to the three-dimensional model, slice, put the heat-resistant aluminum alloy raw material powder into the 3D printing equipment for selective laser melting (SLM) printing process; wherein the SLM laser is 1000nm infrared light, the substrate preheating temperature is 130℃, the laser power is 350W, the scanning speed is 1600mm / s, the scanning interval is 0.09mm, and the layer thickness is 0.03mm.
[0101] S2, high-temperature stress annealing, specifically heating to 260℃ at a heating rate of 10℃ / min, holding for 3h, and then air cooling after the end; the density of the prepared heat-resistant aluminum alloy material is 99.5%.
[0102] The preparation process of the heat-resistant aluminum alloy raw material powder is:
[0103] (1) raw material smelting: place all component metal raw materials of the heat-resistant aluminum alloy material in the crucible of the vacuum induction furnace for smelting, and the smelting temperature is 1050℃;
[0104] (2) atomization powdering: transfer the smelted metal melt into an atomization barrel, replace the air in the atomization barrel with argon gas, and perform atomization powdering, and the gas pressure is 2.7Mpa;
[0105] (3) powder screening: adopt 250 mesh and 550 mesh screens to perform ultrasonic vibration screening and grading treatment on the atomized metal powder, and obtain alloy powder with a powder particle size range of 15-53μm (D10 is 19.68μm; D50 is 34.35μm; D90 is 56.63μm);
[0106] The Hall flow rate of the heat-resistant aluminum alloy raw material powder is 126s / 50g, and the sphericity is 0.88.
[0107] The aluminum alloy material of the present embodiment was subjected to high-temperature tensile mechanical property tests at 300℃ and 350℃, and the results are shown in Table 3.
[0108] Table 3 High-temperature tensile mechanical property test results of the aluminum alloy material of Example 4 at 300℃ and 350℃
[0109] The stress-strain curve corresponding to the high-temperature tensile test of the aluminum alloy material of the present embodiment is shown in the following figure. Figure 6
[0110] Example 5
[0111] The embodiment provides a heat-resistant aluminum alloy material, and components of the heat-resistant aluminum alloy material include the following in percentage by mass: 6% of Fe, 4% of Cr, 1% of Ti, 0.2% of Ce, 0.5% of Mn, 0.3% of Sc, 0.5% of Zr, the balance of Al and inevitable impurities.
[0112] The embodiment further provides a preparation method of the heat-resistant aluminum alloy material, and the method comprises the following steps:
[0113] S1, a part model to be printed is drawn on a three-dimensional design software, a three-dimensional model is supported and sliced, and heat-resistant aluminum alloy raw material powder is put into a 3D printing device to perform a selective laser melting (SLM) printing process; wherein the SLM laser is 1000nm infrared light, the substrate preheating temperature is 130 DEG C, the laser power is 200W, the scanning speed is 600mm / s, the scanning interval is 0.06mm, and the layer thickness is 0.03mm.
[0114] S2, high-temperature stress annealing is performed, specifically, the temperature is raised to 200 DEG C at a temperature rising rate of 5 DEG C / min, the temperature is kept for 10h, and then air cooling is performed.
[0115] The preparation process of the heat-resistant aluminum alloy raw material powder is as follows:
[0116] (1) raw material smelting: all component metal raw materials of the heat-resistant aluminum alloy material are placed in a crucible of a vacuum induction furnace to perform smelting, and the smelting temperature is 1000 DEG C;
[0117] (2) atomization powder making: the metal melt after smelting is transferred into an atomization barrel, argon gas is used to replace air in the atomization barrel, and atomization powder making is performed, and the gas pressure is 2.5Mpa;
[0118] (3) powder screening: the metal powder after atomization is subjected to ultrasonic vibration screening grading treatment by using 250-mesh and 550-mesh screens, and the alloy raw material powder with a powder particle size range of 15-53mu is obtained;
[0119] The Hall flow rate of the heat-resistant aluminum alloy raw material powder is 129s / 50g, and the sphericity is 0.88.
[0120] Embodiment 6
[0121] The embodiment provides a heat-resistant aluminum alloy material, and components of the heat-resistant aluminum alloy material include the following in percentage by mass: 6% of Fe, 1% of Cr, 1% of Ti, 0.2% of Ce, 2.0% of Mn, 1.0% of Sc, 0.5% of Zr, the balance of Al and inevitable impurities.
[0122] The embodiment further provides a preparation method of the heat-resistant aluminum alloy material, and the method comprises the following steps:
[0123] S1, drawing a part model needing printing on a three-dimensional design software, adding support to the three-dimensional model, slicing, and putting heat-resistant aluminum alloy raw powder into a 3D printing device for selective laser melting (SLM) printing process; wherein the SLM laser is 1100 nm infrared light, the substrate preheating temperature is 200 DEG C, the laser power is 400 W, the scanning speed is 2000 mm / s, the scanning interval is 0.18 mm, and the layer thickness is 0.06 mm.
[0124] S2, high-temperature stress annealing, specifically, heating to 400 DEG C at a heating rate of 15 DEG C / min, and holding for 2 h, and then furnace cooling.
[0125] The preparation process of the heat-resistant aluminum alloy raw powder is:
[0126] (1) raw material smelting: placing all component metal raw materials of the heat-resistant aluminum alloy material in a crucible of a vacuum induction furnace for smelting, and the smelting temperature is 1300 DEG C;
[0127] (2) atomization powdering: transferring the smelted metal melt into an atomization barrel, replacing the air in the atomization barrel with argon, and atomizing and powdering, and the gas pressure is 3.0 Mpa;
[0128] (3) powder screening: using 250 mesh and 550 mesh screens to ultrasonically vibrate and screen the atomized metal powder for classification treatment, and obtaining alloy raw powder with a powder particle size range of 15-53 μm;
[0129] The Hall flow rate of the heat-resistant aluminum alloy raw powder is 127 s / 50 g, and the sphericity is 0.87.
[0130] Comparative Example 1
[0131] The same as Example 3, except that the components of the heat-resistant aluminum alloy material include, by mass percentage, 1% of Mg, 4% of Cr, 1% of Ti, 1% of Ce, 0.5% of Mn, 0.3% of Sc, 2% of Zr, the balance of Al and inevitable impurities.
[0132] Comparative Example 2
[0133] The same as Example 3, except that the components of the heat-resistant aluminum alloy material include, by mass percentage, 1% of Fe, 4% of Cr, 1% of Ti, 1% of Ce, 3% of Mn, 0.3% of Sc, 2% of Zr, the balance of Al and inevitable impurities.
[0134] Comparative Example 3
[0135] Consistent with Example 3, except that the components of the heat-resistant aluminum alloy material include, in mass percent: 1% Mg, 4% Cr, 1% Ti, 1% Ce, 0.5% Mn, 0.3% Sc, 0.5% Zr, the balance being Al and inevitable impurities.
[0136] Comparative Example 4
[0137] Consistent with Example 3, except that the components of the heat-resistant aluminum alloy material include, in mass percent: 1% Fe, 4% Cr, 1% Ti, 1% Nd, 0.5% Mn, 0.3% Sc, 0.5% Zr, the balance being Al and inevitable impurities.
[0138] Comparative Example 5
[0139] Consistent with Example 3, except that the laser power in S1 is 150 W and the scanning speed is 500 mm / s.
[0140] Comparative Example 6
[0141] Consistent with Example 3, except that in S2, the temperature is raised to 500°C at a rate of 3°C / min, the holding time is 10 h, and after the end, air cooling is performed.
[0142] Comparative Example 7
[0143] Consistent with Example 3, except that the melting temperature is 1350°C, the atomization pressure is 3.5 MPa, the Hall flow rate cannot be measured, and the sphericity is 0.8.
[0144] The mechanical properties of the above examples and comparative examples in the direction parallel to the substrate were tested, and the results are shown in Table 4.
[0145] Table 4: Mechanical properties of the aluminum alloy materials of the examples and comparative examples in the direction parallel to the substrate
[0146] Analysis: From the above table, it can be seen that the technical solutions of Examples 2-6 of the present application have excellent forming properties, no cracks, high strength, high heat resistance, and other excellent mechanical strengths by specific component design, aluminum alloy preparation process, and aluminum alloy raw material performance. It can well meet the demand of high-strength heat-resistant, lightweight, and complex structure aluminum alloy in industry, and solve the problems of cracks and poor strength of traditional aluminum alloy materials in the additive manufacturing process.
[0147] It is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting; it is not intended to exclude myriad other embodiments of the present application that other inventors can develop based on the same general inventive concepts embodied by the described embodiments. That is, although the present application is described in terms of particular embodiments and illustrative figures, it should be apparent that the scope of the present application is not limited to these specific embodiments.
[0148] While the embodiments of the application have been shown and described herein, it will be understood by those of ordinary skill in the art that various changes, modifications, alternatives, and variations can be made to the embodiments without departing from the spirit and scope of the application, which is defined by the claims and their equivalents.
Claims
1. A heat-resistant aluminum alloy material, characterized by comprising, The heat-resistant aluminum alloy material comprises, in percentage by mass, 0.5-6% of Fe, 0.5-6% of Cr, 0.5-3% of Ti, ≤2% but not 0 of Mn, ≤2% but not 0 of Sc, ≤2% but not 0 of Zr, the balance of Al and inevitable impurities; the microstructure of the heat-resistant aluminum alloy material is bimodal grain structure, the grain boundary of the melt pool is mainly equiaxed crystal, the center of the melt pool is columnar crystal, and the grain boundary and the center of the melt pool are also dispersedly distributed with quasicrystal and intermetallic compound strengthening phase; The preparation method of the heat-resistant aluminum alloy material comprises the following steps: S1, putting the heat-resistant aluminum alloy raw powder into a 3D printing device for laser melting printing process; wherein the laser power is 200-400 W, the scanning speed is 600-2000 mm / s, and the scanning interval is 0.06-0.18 mm; S2, high-temperature stress relief annealing; The heating rate in the stress relief annealing process is 5-15 ℃ / min, the holding temperature is 200-400 ℃, and the holding time is 2-10 h; The Hall flow rate of the heat-resistant aluminum alloy raw powder is ≤130 s / 50 g, and the sphericity is ≥0.
85.
2. The heat resistant aluminum alloy material according to claim 1, characterized by, At 300 ℃, the tensile strength of the heat-resistant aluminum alloy material is >260 MPa, the yield strength is >220 MPa, and the elongation is ≥10%; at 350 ℃, the tensile strength of the heat-resistant aluminum alloy material is >180 MPa, the yield strength is >160 MPa, and the elongation is ≥10%.
3. The heat resistant aluminum alloy material according to claim 1, characterized by, The component of the heat-resistant aluminum alloy material further comprises 0.2-4.0% of Ce.
4. The heat resistant aluminum alloy material of claim 1, wherein The component of the heat-resistant aluminum alloy material comprises 0.2-2.0% of Mn, 0.2-1.5% of Sc, and 0.2-1.5% of Zr, and the microstructure of the heat-resistant aluminum alloy material contains 20-40 vol% of dispersedly distributed icosahedral nanometer quasicrystal phase.
5. The heat resistant aluminum alloy material of claim 1, wherein The preparation process of the heat-resistant aluminum alloy raw powder is: (1) raw material smelting; (2) atomization powdering; (3) powder screening; wherein the raw material smelting temperature is 1000-1300 ℃, and the atomization gas pressure is 2.0-3.0 MPa.
6. The heat resistant aluminum alloy material of claim 5, wherein The particle size range of the heat-resistant aluminum alloy raw powder is 15-53 μm.
7. The heat-resistant aluminum alloy material according to any one of claims 1-6 in additive manufacturing.
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