CN201693175U - Selective laser melting and forming device for medical magnesium alloy metal parts - Google Patents
Selective laser melting and forming device for medical magnesium alloy metal parts Download PDFInfo
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- CN201693175U CN201693175U CN2010202283765U CN201020228376U CN201693175U CN 201693175 U CN201693175 U CN 201693175U CN 2010202283765 U CN2010202283765 U CN 2010202283765U CN 201020228376 U CN201020228376 U CN 201020228376U CN 201693175 U CN201693175 U CN 201693175U
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Abstract
The utility model provides a selective laser melting and forming device for medical magnesium alloy metal parts, which comprises a control device, a powder feeding and spreading device, a laser transmission mechanism, a gas purification device and a closed forming chamber, wherein the powder feeding and spreading device comprises a funnel and powder spreading brushes mounted on two lower sides of the funnel, the upper part of the funnel is arranged corresponding to a material filling port at the upper part of the forming chamber, and the lower parts of the powder spreading brushes horizontally correspond to the upper surface of a formation cylinder; the laser transmission mechanism is arranged at the outer upper part of the forming chamber corresponding to the formation cylinder; an air inlet and an air outlet convenient for the inlet and outlet of gas are formed on the side walls of the forming chamber, and the gas purification device is respectively connected with the air inlet and the air outlet; and the control device is respectively connected with the powder feeding and spreading device, the laser transmission mechanism, the formation cylinder and the gas purification device. The utility model can be used for directly manufacturing parts in complicated shapes satisfying the requirements of medical field, and has the advantages of high forming efficiency.
Description
Technical field
The utility model belongs to magnesium alloy parts manufacturing technology field, particularly a kind of selective laser melting forming device of medical magnesium alloy metal part.
Background technology
At present, the metallic biomaterial that generally uses comprises stainless steel, titanium or titanium alloy, cochrome etc. clinically, though these metallic biomaterials are easy to manufacture, but has the use weak point: promptly may discharge poisonous metal ion or metallic particles, thereby cause tissue defect and reduce biocompatibility in corrosion or in wear process.And the elastic modelling quantity and the normal bone tissues of these metallic biomaterials extremely do not match, and cause stress-shielding effect, make the stability decreases that is implanted into body, and must it be taken out second operation after the patient fully fully recovers.
Magnesium is a kind of special metal material, and density is 1.74g/cm3, and the density of aluminium and steel is 1.6 and 4.5 times of magnesium.The fracture toughness of magnesium is stronger than the ceramic material that comprises hydroxyapatite, than existing metallic biomaterial (stainless steel, titanium or titanium alloy, cochrome etc.), have following advantage: elastic modelling quantity of (1) magnesium and pressure yield strength are more near normal bone tissues; (2) but magnesium is a kind of light metal, degradable load-bearing orthopaedics implant, be allowed to condition at the action time that keeps 12~18 weeks of mechanical integrity in the body, treat can be replaced by normal structure after the normal healing of bone tissue, do not need second operation to take out; (3) magnesium alloy can be degraded in human body, be because magnesium alloy has lower corrosion potential, easily corrode containing under the internal milieu of chlorion, and degrade fully in vivo in the mode of slow corrosion, its corrosion product is to organism nonhazardous effect, and can participate in the human homergy.Therefore, along with science and technology development, often pay the utmost attention to use magnesium at the metallic biomaterial that medical domain uses.
Though; magnesium and magnesium alloy are significant in the application of medical domain; but because the manufacturing of magnesium exists following defective: the chemism of magnesium is very strong; easily oxidation in air; under high-temperature condition, can burn; therefore must adopt complicated safeguard measure in the fusion process; and main flux protection method and the gas protection method of adopting in the industry; present industrial application magnesium alloy parts generally adopts the die casting production technology; though this mode of production can make magnesium alloy parts; but at medical domain; because the part that needs generally is implanted into object or operation aid as what customize at the individual patient information acquisition; that is, medical magnesium alloy parts need be the complex space Shape Parts that requirement obtains high-freedom degree, if adopt the technology of die casting then be difficult to reach requirement.Therefore, magnesium alloy then is very restricted in the application of medical domain, can only be used for the part of simple shape, can not extensive use, so, need seek a kind of technology that its complicated shape is produced that satisfies at medical magnesium alloy parts.
Precinct laser fusion technology (SLM, Selective laser melting) is the Rapid Manufacturing Technology that at home and abroad developed rapidly in recent years, can moulding on the principle solderable metal material arbitrarily, part that can any complex geometric shapes of moulding.And at present, the precinct laser fusion technology is not also seen and is used for the medical magnesium alloy parts of processing.
And, in the existing selective laser melting forming device, the general two-cylinder type structure that adopts powder cylinder and moulding cylinder to form, this structure exists following defective: even (1) has increased the volume (2) of complete equipment greatly the very tiny part of moulding, also need to pour a large amount of powder into, cause a large amount of wasting phenomenons; (3) powder sending and laying device needs to backhaul row on twin-tub, and shaping efficiency is low.And, in the existing technology, generally all there are not preheating apparatus and structure, often be easy to generate warpage and crackle in the forming process, powder melts input to laser energy fully and requires also to need to consume bigger energy than higher; Be used for the processing magnesium alloy part simultaneously,, then can't satisfy the forming temperature and the condition of magnesium alloy powder if there is not preheating apparatus.
The utility model content
The shortcoming that the purpose of this utility model is to overcome prior art provides a kind of selective laser melting forming device that can directly produce the medical magnesium alloy metal part that satisfies medical domain complicated shape part with not enough.
The purpose of this utility model is achieved through the following technical solutions:
The selective laser melting forming device of medical magnesium alloy metal part, the forming room that comprises control device, powder sending and laying device, laser transmission mechanism, gas cleaning plant and sealing, be provided with the moulding cylinder in the described forming room and reclaim cylinder, reclaim the side that cylinder is located at the moulding cylinder; Described powder sending and laying device is located in the forming room, and the shop that comprises hopper and be installed on both sides, hopper below is whitewashed, the corresponding setting of feeding port of described hopper top and forming room top, and it is corresponding with the upper surface level of moulding cylinder to spread the below of whitewashing; Described laser transmission mechanism is located at the outer top of forming room, and corresponding moulding cylinder is provided with; The sidewall of described forming room is provided with air inlet and the gas outlet of being convenient to the gas turnover, and described gas cleaning plant is connected with the gas outlet with air inlet respectively; Described control device connects powder sending and laying device, laser transmission mechanism, moulding cylinder and gas cleaning plant respectively.
The brush sheet into several stacks is whitewashed in described shop, and each brush sheet constitutes by several brush blade units, and each brushes the setting of staggering between the brush blade unit of sheet; The 316L or 304 stainless steel substrates of preferred 30~100 μ m thickness of brush sheet that the shop is whitewashed, each brush blade unit of brushing sheet forms by the mode cutting that optical fibre optical fibre laser instrument or UV fiber laser instrument cut, and the gap between the brush blade unit is that the seam of laser cutting is wide.
Before the brush sheet of front side, described hopper below scraper plate is installed also, its effect is with thicker being preset at earlier on the moulding cylinder of metal dust, the brush sheet can not promote these powder and moves ahead when avoiding powder too much, even the situation that causes brushing the sheet overflexing takes place, and makes the brush sheet damage; The low side of scraper plate is than the low side height of brush sheet.
Gap between the described brush blade unit of respectively brushing sheet is 0.05~0.15mm, and width of each brush blade unit is 3mm~5mm; The low side of described scraper plate is than high 50~200 μ m of low side of brush sheet.
Described laser transmission mechanism comprises optical fiber laser, optic path element, scanning galvanometer, focusing lens and the transmissive mirror of light path connection successively, and described focusing lens and transmissive mirror are arranged at the top of forming room, and corresponding moulding cylinder is provided with; Described optical fiber laser all is connected with control device with scanning galvanometer.Preferred focusing lens of described focusing lens or telecentric lens, field focusing lens or telecentric lens can be selected the focus lenses of 100mm, 163mm or 254mm for use, simultaneously the coupling pad of scanning galvanometer and transmissive mirror focal length respectively with the focal length coupling of focusing lens, to satisfy the sweep limits of laser.Described focusing lens adopts telecentric lens, its effect has guaranteed that not only the laser power density of diverse location equates, can guarantee that also the light beam after laser focuses on impinges perpendicularly on powder surface, guarantee the stable moulding in molten bath, improve magnesium alloy molded surface quality.The utility model device is adding man-hour, can obtain different sweep limits and focused spot size, to satisfy magnesium alloy molded the bigger requirement of Volume Changes.When magnesium alloy molded part little, and when requiring magnesium alloy molded surface quality and formed precision requirement high, focusing lens uses the 100mm focal length, adjust simultaneously the coupling pad of scanning galvanometer and transmissive mirror focal length make the focal length coupling of itself and focusing lens, to obtain less sweep limits and meticulous focused spot size; And when magnesium alloy molded part bigger, focusing lens uses the 254mm focal length, adjust simultaneously the coupling pad of scanning galvanometer and transmissive mirror focal length make the focal length coupling of itself and focusing lens, though follow the increase of sweep limits this moment, the strain of laser focal beam spot diameter phase is big.
Preferred 50~the 400W of the power of described optical fiber laser, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
Described optic path element comprises optical fiber transmission line and is installed in collimator and extender mirror, optoisolator and optical fiber coupling head on the optical fiber transmission line successively, is provided with water-cooling structure outer the putting of optical fiber transmission line;
Described scanning galvanometer is provided with air-cooled structure;
One side of described focusing lens and transmissive mirror is provided with air knife, and described air knife is the argon gas of 0.15Mpa~0.2Mpa.
The quality of optic path element is big to forming process stability and quantity of sintered parts influence, will guarantee that not only each optics in the optic path element is in the totally sealed environment, to prevent the pollution of extraneous dust to lens surface.
Described gas cleaning plant comprises interconnective vavuum pump and filter, and vavuum pump is connected with the air inlet of control device, forming room respectively, and filter is connected with the gas outlet of forming room; The external inert gas feeding mechanism of described vavuum pump.
Place, gas outlet in forming room is provided with the oxygen content monitor.
Be provided with heater strip in the hopper of described powder sending and laying device; Perhaps, the below of described moulding cylinder is provided with heater strip.
The described forming room outside also is provided with the moulding cover.Because of the ideal temperature of the preheating of magnesium alloy is close to the solid-state phase changes point, the solid-state phase changes point of magnesium alloy is 565 degrees centigrade, and so high temperature makes the lucite of moulding cover in the forming room outside take place softening easily.Therefore, before the scanning of magnesium alloy metal powder laser, by heater strip the magnesium alloy powder preheat temperature is controlled at 110 ℃~130 ℃ earlier, has dropped to general 60~80 ℃ when thermal diffusion is to the moulding cover so, reach the purpose of preheating substantially by heater strip.
In the device of the present utility model, its control device is responsible for coordinating the calling in real time etc. of sweep speed, process scan-data of laser switch light, laser power, the motion of shop powder, the operation of moulding cylinder Z-direction, scanning galvanometer.Because bigger in the forming process to the deal with data amount, can finish rapidly after requiring each layer information to machine the data of next formable layer face processing, call, system real time is required high.Therefore, the preferred embedded dsp control system of control device, multithreading is handled simultaneously, has avoided the signal interference.
Said apparatus specifically comprises the steps: the selective laser melting (SLM) molding process of medical magnesium alloy metal part
(1) set up the CAD geometrical model of part, and it is discrete to carry out layering, generates scanning path data; Described scanning path data is imported in the control device;
(2) inert gas injecting in forming room, and the oxygen concentration in the forming room is controlled in the finite concentration scope;
(3) fill out in the feeding port and send metal dust, metal dust falls in the forming room along hopper, and the shop is whitewashed and preset the layer of metal powder to the moulding cylinder, simultaneously unnecessary metal dust is sent in the recovery cylinder;
(4) adopt the laser scanning metal dust, laser forms focal beam spot by laser transmission mechanism emission transmission on the processing plane of metal dust, with fusion of metal powder, forms part individual layer cross section;
(5) judge whether medical magnesium alloy metal part is molded,, then take out profiled member, otherwise carry out next step if molded;
(6) moulding cylinder decline one deck; According to the scanning pattern that step (1) generates, repeating step (3)~(5) are successively melted metal dust, up to piling up moulding, obtain the medical magnesium alloy metal part of moulding.
Can adopt different conditions of molding with geometric properties according to the instructions for use of part, when density requires when high (more than 95%): in the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and the outline crisperding to part scans simultaneously, the sweep speed of laser crisperding is 100~150mm/s, sweep speed when the laser interlayer staggers scanning is 200~400mm/s, and sweep span is 60~80 μ m; The power of described laser is 150~200W, and the diameter of described focal beam spot is 70~100 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 20~50 μ m;
When density is less demanding (about 90%): in the described step (4), laser carries out interlayer to metal dust and staggers or be " it " font scanning, and the sweep speed of laser is 600~1000mm/s, and sweep span is 80~120 μ m; The power of described laser is 50W~150W, and the diameter of described focal beam spot is 70~200 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 50~100 μ m.
In the described step (2), after by gas cleaning plant forming room being found time, inert gas injecting in forming room again; The inert gas that injects is an argon gas; Oxygen concentration in the forming room is controlled in the concentration range of 5~10ppm;
In the described step (3), before presetting the tiling metal dust, on the moulding cylinder, place substrate earlier; Metal dust earlier through described heater strip heating, makes its temperature reach 110 ℃~130 ℃ before being preset to the moulding cylinder;
The operation of moulding cylinder is by control device control realization in powder sending and laying device and the step (6) in the described step (3), and the laser scanning in the step (4) is realized by control device control laser transmission mechanism;
The powder shape of described magnesium alloy metal dust is spherical, and granularity is in 300~500 order scopes.
The utility model device has requirement to the composition range of the magnesium alloy materials of processing, require material chemical composition (mass fraction) to be: Mg 95.0%~97.0%, Al 2.50%~3.50%, and Zn 0.60%~1.40%, and Mn 0.20%~1.0%, Si<0.1%, Fe<0.1%, Cu<0.05% has strict demand to the physical characteristic of Mg alloy powder: comprise that powder shape is spherical, granularity is in 300~500 order scopes, and it is low etc. that powder oxygen content and impurity content are tried one's best.
This device can obtain controlled body density as required, i.e. moulding obtains the micropore of mutual UNICOM, makes profiled member have lower volume density and also can obviously change its mechanical performance and deformability.The shape of micropore, size and space geometry relation can be designed by the designer, and by this device control machine-shaping.The shape of micropore has appreciable impact with big or small mechanical performance to the porous magnesium alloy part.
The utility model can be widely used in medical domain with the magnesium alloy parts of manufacturing the complicated shape of using medical domain.
The utility model compared with prior art has following advantage and beneficial effect:
1, with respect to the die casting production of prior art, the utility model can satisfy the complex space shape need of medical domain high-freedom degree, can moulding the magnesium alloy parts of complex geometric shapes arbitrarily, promoted the application of magnesium alloy greatly, the restriction of not produced at medical domain.
2, the density of the magnesium alloy parts that makes by the utility model can be suitable with cast member, and dimensional accuracy is 0.1~0.2mm, and surface roughness is 0.1mm, has high dimension precision and surface smoothness; The magnesium alloy parts that is worth by the utility model has the microstructure of rapid solidification feature, makes the mechanical property of magnesium alloy parts be higher than cast member.
3, powder sending and laying device of the present utility model adopts the structure of hopper in conjunction with the brush sheet, preset by the hopper powder feeding and by brush sheet shop powder, the two-cylinder type shaped device structure of forming by powder cylinder and profiled member cylinder with respect to prior art, reduced the volume of package unit greatly, and be not subjected to the part limitation in height, can be according to the volume adjustment powder amount of forming part, can also realize the moulding of functionally gradient material (FGM) part, and control by control device, powder in the hopper is spreading on the moulding cylinder of timing quantitatively, and can guarantee that shop powder effect is smooth enough thin with bed thickness, has the shaping efficiency height, reduce the advantages such as waste of powder.
4, the brush sheet of powder sending and laying device of the present utility model adopts flexible structure, constitute by several brush blade units that are split to form, and use in conjunction with scraper plate, can avoid collision that rigidity powder sending and laying device and forming surface projection caused etc., effectively guarantee its service life and spread the powder effect.
5, the utility model is provided with heater strip, metal dust is first through described heater strip preheating before the substrate that is preset to the moulding cylinder, make its temperature reach 110 ℃~130 ℃, can prevent warpage and crackle in the forming process, also can reduce powder and melt input requirement to laser energy fully, under same laser can input condition, preheating can obtain shaping efficiency faster, preheating can reduce the moisture in the magnesium alloy powder, guarantees that laser is incident on dry powder surface.Because of the ideal temperature of preheating is close to the solid-state phase changes point, the solid-state phase changes point of magnesium alloy is 565 degrees centigrade, and so the high temperature forming room that makes lucite make easily takes place softening.So, the magnesium alloy powder preheat temperature is controlled at 110 ℃~130 ℃, dropped to general 60~80 ℃ when thermal diffusion is to the periphery of forming room like this, reach the purpose of preheating substantially.
6, the utility model adopts the heater strip preheating, has the heat insulation good reliability of conducting heat, can accurately control advantage such as temperature error.
7, the utility model is controlled powder sending and laying device, laser transmission mechanism etc. by control device, has advantages such as real-time, that processing speed is fast.
8, the utility model is provided with air knife near focusing lens and transmissive mirror, can be in time laser and magnesium alloy materials being made black smoke, vaporized product that the time spent produces blows away, in order to avoid polluted focusing lens and transmissive mirror surface, the heat absorption of focusing lens and transmissive mirror is many when causing laser incident, the laser energy input is not enough, it is damaged that black smoke also may cause the eyeglass heating to be expanded, and air knife also has the effect of cooling simultaneously.
9, the diameter range of laser focal beam spot of the present utility model is wider, can make the power density that focuses on the forming surface enough melt any metal dust, and its use steady in a long-term is almost non-maintaining.
10, the utility model can inject argon shield gas by gas cleaning plant in forming room, can make black smoke, gaseous impurity in the forming process in time to discharge on the one hand, significantly reduced the argon gas use amount on the other hand, help improving the gas flow in the forming room, make black smoke to flow towards the exhaust outlet direction; Simultaneously, gas in the forming room can use in the gas purge system inner loop, advantage with environmental protection, and the place establishes the oxygen content monitor in the forming room gas outlet, can monitor the oxygen concentration in the forming room in real time, remain in the scope of 5~10ppm, can effectively guarantee the environmental requirement that the magnesium alloy manufacturing is produced.
Description of drawings
Fig. 1 is a general structure schematic diagram of the present utility model.
Fig. 2 is the structural representation of powder sending and laying device shown in Figure 1.
Fig. 3 is the schematic diagram that powder sending and laying device shown in Figure 1 presets metal dust.
Fig. 4 is the schematic flow sheet of the utility model device work.
The specific embodiment
Below in conjunction with embodiment and accompanying drawing the utility model is described in further detail, but embodiment of the present utility model is not limited thereto.
As shown in Figure 1, the selective laser melting forming device of this medical magnesium alloy metal part, the forming room 21 that comprises control device 18, powder sending and laying device, laser transmission mechanism, gas cleaning plant and sealing, be provided with moulding cylinder 14 in the described forming room 21 and reclaim cylinder 16, reclaim the side that cylinder 16 is located at moulding cylinder 14; Described powder sending and laying device is located in the forming room 21, and the shop that comprises hopper 9 and be installed on both sides, hopper 9 below is whitewashed, the feeding port 8 corresponding settings of described hopper 9 tops and forming room 21 tops, and it is corresponding with the upper surface level of moulding cylinder 14 to spread the below of whitewashing; Described laser transmission mechanism is located at the outer top of forming room 21, and corresponding moulding cylinder 14 is provided with; The sidewall of described forming room 21 is provided with air inlet 17 and the gas outlet 11 of being convenient to the gas turnover, and described gas cleaning plant is connected with gas outlet 11 with air inlet 17 respectively; Described control device 18 connects powder sending and laying device, laser transmission mechanism, moulding cylinder 14 and gas cleaning plant respectively.
As shown in Figure 2, it is two brush sheets 19 that described shop is whitewashed, and lays respectively at both sides, hopper 9 below; Each brush sheet 19 constitutes by several brush blade units 20, and each brushes the setting of staggering between the brush blade unit 20 of sheet 19; The brush sheet 19 that the shop is whitewashed adopts the 316L stainless steel substrates of 30 μ m thickness, and each brush blade unit of brushing sheet forms by the mode cutting that the optical fibre optical fibre laser instrument cuts, and the gap between the brush blade unit is that the seam of laser cutting is wide.
Before the brush sheet 19 of front side, described hopper 9 below scraper plate is installed also, the low side of scraper plate is than the low side height of brush sheet 19.
Gap between the described brush blade unit 20 of respectively brushing sheet 19 is 0.05mm, and width of each brush blade unit 20 is 3mm; The low side of described scraper plate is than the high 50 μ m of low side of brush sheet 19.
Described laser transmission mechanism comprises optical fiber laser 1, optic path element 2, scanning galvanometer 3, focusing lens and the transmissive mirror 5 of light path connection successively, and described focusing lens and transmissive mirror 5 are arranged at the top of forming room 21, and corresponding moulding cylinder 14 is provided with; Described optical fiber laser 1 all is connected with control device 18 with scanning galvanometer 3.
Described focusing lens adopts the field focusing lens of 100mm focal length, adjusts the coupling pad of scanning galvanometer and the focal length of transmissive mirror simultaneously its focal length with focusing lens is mated, to obtain meticulous focused spot size.
The power of described optical fiber laser is 50W, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
Described optic path element 2 comprises optical fiber transmission line and is installed in collimator and extender mirror, optoisolator and optical fiber coupling head on the optical fiber transmission line successively, is provided with water-cooling structure outer the putting of optical fiber transmission line;
Described scanning galvanometer 3 is provided with air-cooled structure;
One side of described focusing lens and transmissive mirror 5 is provided with air knife 6, and described air knife is the argon gas of 0.15Mpa.
Described gas cleaning plant comprises interconnective vavuum pump and filter, and vavuum pump is connected with the air inlet 17 of control device 18, forming room 21 respectively, and filter is connected with the gas outlet 11 of forming room 21; The external inert gas feeding mechanism of described vavuum pump.
11 places, gas outlet in forming room 21 are provided with the oxygen content monitor.
Be provided with heater strip in the hopper 9 of described powder sending and laying device.Described forming room 21 outsides also are provided with the moulding cover.Because of the ideal temperature of the preheating of magnesium alloy is close to the solid-state phase changes point, the solid-state phase changes point of magnesium alloy is 565 degrees centigrade, and so high temperature makes the lucite of moulding cover in the forming room outside take place softening easily.Therefore, before the scanning of magnesium alloy metal powder laser, by heater strip the magnesium alloy powder preheat temperature is controlled at 110 ℃ earlier, has dropped to general 60~80 ℃ when thermal diffusion is to the moulding cover so, reach the purpose of preheating substantially by heater strip.
In the device of the present utility model, its control device 18 is responsible for coordinating the calling in real time etc. of sweep speed, process scan-data of Z-directions operation, the scanning galvanometer 3 of laser switch light, laser power, the motion of shop powder, moulding cylinder 14.Because bigger in the forming process to the deal with data amount, can finish rapidly after requiring each layer information to machine the data of next formable layer face processing, call, system real time is required high.Therefore, control device 18 is embedded dsp control system, and multithreading is handled simultaneously, has avoided the signal interference.
As shown in Figure 4, said apparatus specifically comprises the steps: the forming process of medical magnesium alloy metal part
(1) set up the CAD geometrical model of part, and it is discrete to carry out layering, generates scanning path data; Described scanning path data is imported in the control device 18;
(2) inert gas injecting in forming room, and the oxygen concentrations in the forming room 21 are controlled in the finite concentration scope;
(3) fill out in the feeding port 8 and send metal dust, as shown in Figure 3, metal dust 10 falls in the forming room 21 along hopper 9, and the shop is whitewashed and preset the layer of metal powder to moulding cylinder 14, simultaneously unnecessary metal dust 15 is sent in the recovery cylinder 16;
(4) adopt the laser scanning metal dust, as shown in Figure 1, laser 4 forms focal beam spot 7 by laser transmission mechanism emission transmission on the processing plane of metal dust, with fusion of metal powder, forms part individual layer cross section 12;
(5) judge whether medical magnesium alloy metal part is molded,, then take out profiled member, otherwise carry out next step if molded;
(6) moulding cylinder decline one deck; According to the scanning pattern that step (1) generates, repeating step (3)~(5) are successively melted metal dust, up to piling up moulding, obtain the medical magnesium alloy metal part of moulding.
In the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and the sweep speed of laser is 600mm/s, and sweep span is 80 μ m; The power of described laser is 50W, and the diameter of described focal beam spot is 70 μ m; In the described step (6), moulding cylinder 14 every layer slippages are 50 μ m.
In the described step (2), after by gas cleaning plant forming room 21 being found time, inert gas injecting in forming room 21 again; The inert gas that injects is an argon gas; Oxygen concentration in the forming room 21 is controlled in the concentration range of 5ppm;
In the described step (3), before presetting the tiling metal dust, on moulding cylinder 14, place substrate 13 earlier; Metal dust earlier through described heater strip heating, makes its temperature reach 110 ℃ before being preset to moulding cylinder 14;
The operation of moulding cylinder 14 is by control device control realization in powder sending and laying device and the step (6) in the described step (3), and the laser scanning in the step (4) is realized by control device control laser transmission mechanism;
The powder shape of described magnesium alloy metal dust is spherical, and granularity is in 300~500 order scopes.
The utility model device has requirement to the composition range of the magnesium alloy materials of processing, require material chemical composition (mass fraction) to be: Mg 95.0%~97.0%, Al 2.50%~3.50%, and Zn 0.60%~1.40%, and Mn 0.20%~1.0%, Si<0.1%, Fe<0.1%, Cu<0.05% has strict demand to the physical characteristic of Mg alloy powder: comprise that powder shape is spherical, granularity is in 300~500 order scopes, and it is low etc. that powder oxygen content and impurity content are tried one's best.
This device can obtain controlled body density as required, i.e. moulding obtains the micropore of mutual UNICOM, makes profiled member have lower volume density and also can obviously change its mechanical performance and deformability.The shape of micropore, size and space geometry relation can be designed by the designer, and by this device control machine-shaping.The shape of micropore has appreciable impact with big or small mechanical performance to the porous magnesium alloy part.
Present embodiment can be widely used in medical domain with the magnesium alloy parts of manufacturing the complicated shape of using medical domain.
Present embodiment except that following characteristics other features with embodiment 1: it is four brush sheet 19 that described shop is whitewashed, two brush sheet mutual superposition wherein, and be positioned at hopper below one side, two other brush sheet mutual superposition, and be positioned at the opposite side of hopper 9 belows; Gap between the described brush blade unit 20 of respectively brushing sheet 19 is 0.15mm, and width of each brush blade unit 20 is 5mm; The low side of described scraper plate is than the high 200 μ m of low side of brush sheet 19.
The brush sheet 19 that the shop is whitewashed adopts 304 stainless steel substrates of 100 μ m thickness, and each brush blade unit 20 of brushing sheet forms by the mode cutting that the UV fiber laser instrument cuts, and the gap between the brush blade unit 20 is that the seam of laser cutting is wide.
The below of described moulding cylinder 14 is provided with heater strip.
Described air knife 6 is the argon gas of 0.2Mpa.
Described focusing lens is the telecentric lens of 254mm focal length.
The power of described optical fiber laser is 150W, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
In the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and the sweep speed of laser is 1000mm/s, and sweep span is 120 μ m; The power of described laser is 150W, and the diameter of described focal beam spot is 200 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 100 μ m.
In the described step (3), metal dust earlier through described heater strip heating, makes its temperature reach 120 ℃ before the substrate that is preset to the moulding cylinder.
In the described step (2), the oxygen concentration in the forming room is controlled in the concentration range of 10ppm.
Present embodiment except that following characteristics other features with embodiment 1: it is six brush sheet 19 that described shop is whitewashed, three brush sheet mutual superposition wherein, and be positioned at hopper below one side, other three brush sheet mutual superposition, and be positioned at the opposite side of hopper below; Gap between the described brush blade unit 20 of respectively brushing sheet is 0.1mm, and width of each brush blade unit 20 is 4mm; The low side of described scraper plate is than the high 100 μ m of low side of brush sheet.
Described air knife 6 is the argon gas of 0.18Mpa.
The brush sheet 19 that the shop is whitewashed adopts 304 stainless steel substrates of 50 μ m thickness, and each brush blade unit 20 of brushing sheet forms by the mode cutting that the UV fiber laser instrument cuts, and the gap between the brush blade unit 20 is that the seam of laser cutting is wide.
Described focusing lens is the telecentric lens of 163mm focal length.
The power of described optical fiber laser is 100W, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
In the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and the sweep speed of laser is 800mm/s, and sweep span is 100 μ m; The power of described laser is 100W, and the diameter of described focal beam spot is 100 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 80 μ m.
In the described step (3), metal dust earlier through described heater strip heating, makes its temperature reach 130 ℃ before the substrate that is preset to the moulding cylinder.
In the described step (2), the oxygen concentration in the forming room is controlled in the concentration range of 8ppm.
Embodiment 4
Present embodiment except that following characteristics other features with embodiment 1: in the described step (4), laser is the scanning of " it " font to metal dust.
Present embodiment except that following characteristics other features with embodiment 1: the power of described optical fiber laser is 150W, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
In the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and simultaneously to the outline crisperding scanning of part, the sweep speed of laser crisperding is 100mm/s, and the sweep speed when the laser interlayer staggers scanning is 200mm/s, and sweep span is 60 μ m; The power of described laser is 150W, and the diameter of described focal beam spot is 70 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 20 μ m.
Present embodiment except that following characteristics other features with embodiment 1: the power of described optical fiber laser is 200W, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
In the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and simultaneously to the outline crisperding scanning of part, the sweep speed of laser crisperding is 150mm/s, and the sweep speed when the laser interlayer staggers scanning is 400mm/s, and sweep span is 80 μ m; The power of described laser is 200W, and the diameter of described focal beam spot is 100 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 50 μ m.
Present embodiment except that following characteristics other features with embodiment 1: the power of described optical fiber laser is 180W, beam quality M2<1.1, laser energy presents Gaussian distribution, the power of optical fiber laser can satisfy the diameter requirement of focal beam spot, make the power density that focuses on the forming surface enough melt any metal dust, its use steady in a long-term is almost non-maintaining, and described laser is continuous mode laser.
In the described step (4), laser carries out the interlayer scanning of staggering to metal dust, and simultaneously to the outline crisperding scanning of part, the sweep speed of laser crisperding is 130mm/s, and the sweep speed when the laser interlayer staggers scanning is 300mm/s, and sweep span is 70 μ m; The power of described laser is 180W, and the diameter of described focal beam spot is 80 μ m; In the described step (6), the slippage that the moulding cylinder is every layer is 30 μ m.
The various embodiments described above are the utility model preferred implementation; but embodiment of the present utility model is not restricted to the described embodiments; other any do not deviate from change, the modification done under spiritual essence of the present utility model and the principle, substitutes, combination, simplify; all should be the substitute mode of equivalence, be included within the protection domain of the present utility model.
Claims (10)
1. the selective laser melting forming device of medical magnesium alloy metal part, it is characterized in that: the forming room that comprises control device, powder sending and laying device, laser transmission mechanism, gas cleaning plant and sealing, be provided with the moulding cylinder in the described forming room and reclaim cylinder, reclaim the side that cylinder is located at the moulding cylinder; Described powder sending and laying device is located in the forming room, and the shop that comprises hopper and be installed on both sides, hopper below is whitewashed, the corresponding setting of feeding port of described hopper top and forming room top, and it is corresponding with the upper surface level of moulding cylinder to spread the below of whitewashing; Described laser transmission mechanism is located at the outer top of forming room, and corresponding moulding cylinder is provided with; The sidewall of described forming room is provided with air inlet and the gas outlet of being convenient to the gas turnover, and described gas cleaning plant is connected with the gas outlet with air inlet respectively; Described control device connects powder sending and laying device, laser transmission mechanism, moulding cylinder and gas cleaning plant respectively.
2. the selective laser melting forming device of medical magnesium alloy metal part according to claim 1, it is characterized in that: the brush sheet into several stacks is whitewashed in described shop, each brush sheet constitutes by several brush blade units, and each brushes the setting of staggering between the brush blade unit of sheet;
Before the brush sheet of front side, described hopper below scraper plate is installed also, the low side of scraper plate is than the low side height of brush sheet.
3. the selective laser melting forming device of medical magnesium alloy metal part according to claim 2 is characterized in that: the gap between the described brush blade unit of respectively brushing sheet is 0.05~0.15mm, and width of each brush blade unit is 3mm~5mm; The low side of described scraper plate is than high 50~200 μ m of low side of brush sheet.
4. the selective laser melting forming device of medical magnesium alloy metal part according to claim 1, it is characterized in that: described laser transmission mechanism comprises optical fiber laser, optic path element, scanning galvanometer, focusing lens and the transmissive mirror of light path connection successively, described focusing lens and transmissive mirror are arranged at the top of forming room, and corresponding moulding cylinder is provided with; Described optical fiber laser all is connected with control device with scanning galvanometer.
5. the selective laser melting forming device of medical magnesium alloy metal part according to claim 4, it is characterized in that: described optic path element comprises optical fiber transmission line and is installed in collimator and extender mirror, optoisolator and optical fiber coupling head on the optical fiber transmission line successively, is provided with water-cooling structure outer the putting of optical fiber transmission line;
Described scanning galvanometer is provided with air-cooled structure.
6. the selective laser melting forming device of medical magnesium alloy metal part according to claim 4, it is characterized in that: a side of described focusing lens and transmissive mirror is provided with air knife.
7. the selective laser melting forming device of medical magnesium alloy metal part according to claim 6, it is characterized in that: described air knife is the argon gas of 0.15Mpa~0.2Mpa.
8. the selective laser melting forming device of medical magnesium alloy metal part according to claim 1, it is characterized in that: described gas cleaning plant comprises interconnective vavuum pump and filter, vavuum pump is connected with the air inlet of control device, forming room respectively, and filter is connected with the gas outlet of forming room; The external inert gas feeding mechanism of described vavuum pump.
9. the selective laser melting forming device of medical magnesium alloy metal part according to claim 8 is characterized in that: the place, gas outlet in forming room is provided with the oxygen content monitor.
10. according to the selective laser melting forming device of each described medical magnesium alloy metal part of claim 1~9, it is characterized in that: be provided with heater strip in the hopper of described powder sending and laying device; Perhaps, the below of described moulding cylinder is provided with heater strip.
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