Foam metal material production system based on array pulsating airflow

Through the bubble generation system controlled by array pulsation air flow and PLC, the problems of bubble unevenness and merger rate in the existing blowing method are solved, precise control of bubble pore size and distribution uniformity are achieved, and the production efficiency and quality of foam aluminum are improved.

CN120290929APending Publication Date: 2025-07-11CHONGQING QINGHONG NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202510522361.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

When the existing blowing method prepares foam aluminum, the bubble sizes are different, the pore size is difficult to control, and the bubble separation speed is slow, resulting in low production efficiency and uneven bubble distribution. Especially in the rotary blowing method and reciprocating blowing method, vibration interference causes serious bubble merging.

Method used

The foam metal material production system adopts an array of pulsating airflow. The multiple nozzles arranged in the array are intermittently injected gas in the melt pool. The PLC controller is used to control the on-off frequency and phase difference of the nozzle to form uniform bubbles. The bubble size and merge rate are adjusted in real time by monitoring the system to achieve bubble size control and distribution uniformity.

Benefits of technology

It realizes precise control of bubble pore size, reduces bubble merge rate, improves the uniformity of bubble distribution and production efficiency, and improves the forming quality and mechanical properties of foam aluminum.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a foam metal material production system based on array pulsating airflow, comprising: a melt pool, the upper end of which is open and which is used for accommodating molten metal; the bubble generating device is used for generating bubbles; the discharging guide device is arranged above the melt pool and is used for guiding the formed foam metal material to be continuously discharged; the bubble generating device comprises a bubble generator and a bubble control system; the bubble generator is mounted in the molten liquid pool, the bubble generator comprises a plurality of nozzles arranged in an array, and the nozzles are used for intermittently spraying gas in the vertically upward direction; the nozzle is connected with a high-pressure air pipe, and the high-pressure air pipe is provided with an electromagnetic valve used for controlling the nozzle to be opened and closed; the bubble control system comprises a PLC used for controlling the on-off frequency and the duty ratio of the electromagnetic valves, and the PLC controls the adjacent nozzles to spray gas according to the set phase difference so as to form bubbles.
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Description

Technical Field

[0001] The present invention belongs to the technical field of porous foam materials, and specifically relates to a production system for metallic foam materials based on array pulsating air flow. Background Art

[0002] Aluminum foam is made by adding additives to pure aluminum or aluminum alloy and then through a foaming process, and it has both metallic and bubble characteristics at the same time. Aluminum foam has the advantages of low density, strong high-impact absorption ability, high temperature resistance, strong fire resistance, corrosion resistance, sound insulation and noise reduction, low thermal conductivity, high electromagnetic shielding performance, strong weather resistance, filtering ability, easy processing, easy installation, high forming accuracy, and can be surface coated, etc., and has great market application potential in the fields of railway passenger cars, military, construction, automobiles, decoration, aerospace, aviation, ships, etc. Aluminum foam can be divided into open-cell aluminum foam and closed-cell aluminum foam from the pore structure, among which closed-cell aluminum foam has a wider application. The main preparation method of closed-cell aluminum foam is the melt blowing method.

[0003] In the melt blowing process, gas is directly injected into liquid aluminum or aluminum alloy through a blowing head, which has the advantages of low cost and continuous production. However, in the existing blowing method, all bubbles are generated in one or more groups of planar pores, and the gas outlet is uneven and uncontrollable, resulting in different bubble sizes and difficult to precisely control the pore diameter, and finally the pore diameter distribution of the product is uneven.

[0004] The biggest problem of the planar pores in the existing blowing method is that the bubble detachment speed is slow, which greatly affects the production efficiency and the control of bubble pore diameter. In order to control the bubble pore diameter and improve the production efficiency, the rotary spraying method and the reciprocating spraying method are proposed. The rotary spraying method drives the blowing head to rotate to achieve gas dispersion, and the reciprocating spraying method disperses bubbles by driving the blowing head to reciprocate. However, the rotary spraying method and the reciprocating spraying method cause greater disturbance to the melt, and the bubble detachment conditions are quite different, and the pore uniformity of the prepared aluminum foam is poor. In particular, the interference caused by vibration makes a large number of bubbles merge, further exacerbating the bubble non-uniformity and control difficulty.

[0005] In addition, the pore size plays an important role in the performance of metallic foam materials. Research has found that when the pore size decreases, the pores tend to be spherical and the structure is more uniform; the liquid film area of small-pore aluminum foam decreases, thus increasing the liquid film stability, the pores are more stable, and it is more likely to flow and deform during hot processing, which is beneficial to the secondary processing of aluminum foam; its mechanical properties will also be greatly improved; the phenomenon of pore collapse during the forming process will also be improved, which is beneficial to the increase of foaming height, so that large-sized aluminum foam can be prepared, further promoting the industrialization of aluminum foam. Summary of the Invention

[0006] In view of this, the purpose of the present invention is to provide a production system for foamed metal materials based on array pulsating airflows. By using pulsating airflows arranged in an array to generate bubbles, it can not only achieve control of cell size, but also reduce the bubble coalescence rate and improve the uniformity of bubble distribution.

[0007] To achieve the above object, the present invention provides the following technical solutions:

[0008] A production system for foamed metal materials based on array pulsating airflows, comprising:

[0009] A molten liquid pool, the upper end of the molten liquid pool is open and is used for accommodating molten metal liquid;

[0010] A bubble generating device for generating bubbles;

[0011] A discharging guiding device, arranged above the molten liquid pool and used for guiding the continuous discharging of the formed foamed metal materials;

[0012] The bubble generating device includes a bubble generator and a bubble control system; the bubble generator is installed in the molten liquid pool, and the bubble generator includes a plurality of nozzles arranged in an array, the nozzles are used for intermittently injecting gas in a vertically upward direction; a high-pressure air pipe is connected to the nozzles, and a solenoid valve for controlling the opening and closing of the nozzles is installed on the high-pressure air pipe; the bubble control system includes a PLC controller for controlling the on-off frequency and duty cycle of the solenoid valve, and the PLC controller controls the adjacent nozzles to inject gas according to a set phase difference to form bubbles.

[0013] Furthermore, the distance between two adjacent nozzles is equal to 1.5 - 2 times the target bubble diameter.

[0014] Furthermore, the phase difference between the gas injection of two adjacent nozzles is 90° - 180°.

[0015] Furthermore, the bubble generator includes an isolation chamber and a gas channel, the nozzle array is installed on the top surface of the isolation chamber, and the solenoid valve is installed in the isolation chamber; the gas channel extends from the upper opening of the molten liquid pool and extends into the molten liquid pool and is connected to the isolation chamber; a ventilation channel corresponding to each high-pressure air pipe is provided in the gas channel; or, the gas channel is used for introducing high-pressure gas into the isolation chamber, and the high-pressure air pipe is connected to the isolation chamber;

[0016] A first cooling water jacket for controlling the temperature is provided in the isolation chamber and the gas channel.

[0017] Furthermore, the bubble generator includes a mounting seat fixedly installed on the bottom surface of the molten pool. The nozzle is installed in the mounting seat, and a perforation for passing through the high-pressure gas pipe is provided on the bottom surface of the molten pool. The solenoid valve is installed on the high-pressure gas pipe and is located outside the molten pool. A second cooling water jacket for controlling the temperature is provided outside the solenoid valve housing.

[0018] Furthermore, a buffer tank is provided on the high-pressure gas pipe, and the buffer tank is used to suppress the pressure oscillation caused by the air pressure fluctuation.

[0019] Furthermore, the discharge guiding device includes a first guiding part and a second guiding part arranged oppositely. A discharge guiding channel for the forming and discharging of the foam metal material is formed between the first guiding part and the second guiding part. A bubble guiding plate for guiding the floating direction of the bubbles is provided below the discharge guiding channel.

[0020] Furthermore, first guiding rollers and second guiding rollers are respectively arranged at intervals on the opposite sides of the first guiding part and the second guiding part facing each other. A first guiding belt is sleeved on the first guiding rollers, and a second guiding belt is provided on the second guiding rollers.

[0021] Furthermore, the distance between the first guiding part and the second guiding part is adjustable.

[0022] Furthermore, a third water cooling jacket for cooling and forming the foam metal material is provided in the first guiding part and the second guiding part. The water cooling jacket controls the cooling rate of the foam metal material to be 10 - 50 °C / s.

[0023] Furthermore, a monitoring system for monitoring the bubble size is provided on the discharge guiding device. The monitoring system includes a host computer and a camera. The camera collects the surface image of the foam metal material in the discharge guiding channel. The host computer statistically analyzes the size distribution and bubble coalescence rate of the bubbles according to the collected surface image of the foam metal material. The judgment method for bubble coalescence is as follows: If the bubble diameter is greater than 125% of the target bubble diameter, it indicates that the bubble is obtained by the coalescence of at least two bubbles, and then the bubble coalescence rate is calculated.

[0024] Furthermore, the host computer is connected to the PLC controller, and:

[0025] When the proportion of bubbles with diameters exceeding the set threshold range is greater than or equal to the set first threshold, the PLC controller controls the time interval of each excitation of the nozzle through the solenoid valve to adjust the volume of gas injected into the molten metal until the proportion of bubbles with diameters exceeding the set threshold range is less than the set first threshold;

[0026] When the bubble coalescence rate exceeds the set second threshold, the PLC controller controls the solenoid valve to increase the pulsation frequency of the nozzle to suppress bubble coalescence.

[0027] Furthermore, at least one of the first guiding portion and the second guiding portion is provided with a high-temperature resistant window, and the camera collects the surface image of the foam metal material in the discharge guiding channel through the high-temperature resistant window; the bottoms of the first guiding portion and the second guiding portion are respectively provided with a first base and a second base, and the high-temperature resistant window is provided on at least one of the first base and the second base.

[0028] The beneficial effects of the present invention are as follows:

[0029] The foam metal material production system based on array pulsating air flow of the present invention arranges a plurality of nozzles in an array in the bubble generator, and uses the nozzles to intermittently eject gas in the vertically upward direction. The gas intermittently ejected by the nozzles forms a pulsating air flow in the molten liquid pool, and after the ejected gas enters the molten liquid pool, bubbles are formed in the molten metal; thus, by supplying high-pressure gas to the corresponding nozzles through high-pressure gas pipes respectively, it can ensure that the air pressure and air flow of the high-pressure gas ejected by each nozzle are more stable. By controlling the time interval of each ejection of the nozzles, the amount of gas ejected into the molten liquid pool each time can be accurately controlled, and finally bubbles with uniform size are formed in the molten metal; in addition, the bubbles are formed by the air flows ejected by different nozzles, and the distance between the bubbles is large, which can effectively reduce the bubble coalescence rate. In summary, the foam metal material production system based on array pulsating air flow of the present invention uses the pulsating air flow arranged in an array to generate bubbles, which can not only control the cell size, but also reduce the bubble coalescence rate and improve the uniformity of bubble distribution. Description of the Drawings

[0030] In order to make the objectives, technical solutions and beneficial effects of the present invention clearer, the present invention provides the following drawings for illustration:

[0031] Figure 1 It is a schematic structural diagram of Embodiment 1 of the foam metal material production system based on array pulsating air flow of the present invention;

[0032] Figure 2 It is Figure 1 An enlarged view of Area A of

[0033] Figure 3 It is a schematic structural diagram of Embodiment 2 of the foam metal material production system based on array pulsating air flow of the present invention;

[0034] Figure 4 It is Figure 3 An enlarged view of Area B of

[0035] Figure 5 It is the surface image of the foam metal material collected.

[0036] Description of the Reference Numerals:

[0037] 10 - Melting bath; 11 - Bubble; 12 - Molten metal; 13 - Foamed metal material; 21 - Nozzle; 22 - High-pressure gas pipe; 23 - Solenoid valve; 24 - PLC controller; 25 - Isolation chamber; 26 - Gas channel; 27 - Mounting seat; 28 - Second cooling water jacket; 31 - First guiding part; 311 - First base; 32 - Second guiding part; 321 - Second base; 33 - Discharge guiding channel; 34 - First guiding roller; 35 - First guiding belt; 36 - Second guiding roller; 37 - Second guiding belt; 38 - Tool holder; 39 - Cutting tool; 40 - Bubble guiding plate; 41 - High-temperature resistant window; 51 - Host computer; 52 - Camera. Detailed implementation mode

[0038] The present invention will be further described below in conjunction with the accompanying drawings and specific embodiments, so that those skilled in the art can better understand the present invention and be able to implement it, but the exemplified embodiments are not intended to limit the present invention.

[0039] Embodiment 1

[0040] As Figure 1 shown, the foamed metal material production system of this embodiment based on array pulsating air flow includes a melting bath 10, a bubble generating device and a discharge guiding device. Specifically, the upper end of the melting bath 10 is open and used to accommodate molten metal 12; the bubble generating device is used to generate bubbles 11; the discharge guiding device is arranged above the melting bath 10 and used to guide the continuous discharge of the formed foamed metal material.

[0041] In this embodiment, the bubble generating device includes a bubble generator and a bubble control system. Specifically, the bubble generator is installed in the molten pool 10, and the bubble generator includes a plurality of nozzles 21 arranged in an array. The nozzles 21 are used to intermittently eject gas in the vertically upward direction. In this embodiment, the nozzles 21 are arranged in a honeycomb array, and of course, in some other embodiments, the nozzles 21 can also be arranged in a rectangular array, which will not be elaborated here. A high-pressure gas pipe 22 is connected to the nozzles 21 of this embodiment, and a solenoid valve 23 for controlling the opening and closing of the nozzles 21 is installed on the high-pressure gas pipe 22. In this way, by using the opening and closing action of the solenoid valve 23, the amount of gas ejected into the molten pool 10 by each nozzle 21 can be accurately controlled, and thus bubbles 11 with a uniform size distribution can be formed in the molten metal. Correspondingly, the bubble control system of this embodiment includes a PLC controller 24 for controlling the on-off frequency and duty cycle of the solenoid valve 23. The PLC controller 24 controls the adjacent nozzles 21 to eject gas according to the set phase difference to form bubbles 11. The PID controller adjusts the bubble diameter by controlling the air pressure and flow rate of the high-pressure gas. That is, in this embodiment, on the one hand, the PLC controller 24 controls the duty cycle of each solenoid valve 23 to accurately control the amount of gas ejected into the molten pool 10 by each nozzle 21; on the other hand, it also needs to control the phase difference of the gas ejection between different nozzles 21, so that different nozzles 21 eject gas in sequence according to the set order, which can not only enable the continuous formation of bubbles, but also increase the interval between the bubbles 11 and reduce the merging rate of the bubbles 11.

[0042] In this embodiment, the nozzles are made of materials with high temperature resistance, corrosion resistance, and non-affinity with aluminum liquid, such as nickel-based superalloys, tungsten alloys, or ceramics, to ensure reliable long-term use in aluminum liquid. The nozzles are designed in a pointed shape to ensure that the detachment time of the ejected bubbles is significantly less than one pulse period (such as less than or equal to 25% of the period).

[0043] In the preferred embodiment of this embodiment, the distance between two adjacent nozzles 21 is equal to 1.5 - 2 times the target bubble diameter, which can not only increase the distance between bubbles to reduce the merging rate, but also improve the concentration of the bubble generation area, so as to facilitate guiding the bubbles to the position of the discharge guiding device.

[0044] In the preferred embodiment of this embodiment, the phase difference of the gas ejection between two adjacent nozzles 21 is 90° - 180°, which can increase the distance between the bubbles formed by the gas ejection of two adjacent nozzles 21 in the vertical direction and further reduce the merging rate of the bubbles.

[0045] In the preferred embodiment of this embodiment, a buffer tank (not shown in the figure) is provided on the high-pressure gas pipe 22, and the buffer tank is used to suppress the pressure oscillation caused by the air pressure fluctuation.

[0046] In this embodiment, the bubble generator includes an isolation chamber 25 and a gas channel 26. The nozzle 21 array is installed on the top surface of the isolation chamber 25, and the solenoid valve 21 is installed inside the isolation chamber 25. The isolation chamber 25 mainly provides a relatively independent space for the installation and operation of components such as the solenoid valve 21 to isolate the molten metal in the molten metal pool 10. The gas channel 26 of this embodiment extends from the upper opening of the molten metal pool 10 into the molten metal pool 10 and is connected to the isolation chamber 25. In this embodiment, a ventilation channel (not shown in the figure) is provided in the gas channel 26 corresponding to each high-pressure gas pipe 22 one by one, that is, each high-pressure gas pipe 22 is connected to the corresponding ventilation channel to independently supply high-pressure gas to each high-pressure gas pipe 22. Of course, in some other embodiments, the gas channel 26 is used to introduce high-pressure gas into the isolation chamber 25, and the high-pressure gas pipe 22 is connected to the isolation chamber 25. That is, the isolation chamber 25 at this time also serves as a pressure vessel and stores high-pressure gas. When the solenoid valve 21 is opened, the high-pressure gas is introduced into the nozzle 21 through the high-pressure gas pipe 22 and sprayed into the molten metal pool 10. Of course, the isolation chamber 25 can also play the role of a buffer tank at this time and can balance the pressure fluctuation.

[0047] Specifically, in order to avoid the influence of the high-temperature environment on the solenoid valve 21 and the bubble control system, a first cooling water jacket for controlling the temperature is provided in the isolation chamber 25 and the gas channel 26 in this embodiment. In this embodiment, the nozzle 21 is made of silicon carbide or alumina ceramic, which can meet the usage requirements of the high-temperature environment. Preferably, a water-cooled jacket can be provided on the outer wall of each nozzle 21 to further control the temperature of the nozzle 21. In this embodiment, the solenoid valve 21 adopts a high-temperature solenoid valve, which can meet the usage requirements of the high-temperature environment.

[0048] The discharge guiding device of this embodiment includes a first guiding portion 31 and a second guiding portion 32 arranged oppositely. A discharge guiding channel 33 for the forming and discharging of the foam metal material is formed between the first guiding portion 31 and the second guiding portion 32. A bubble guiding plate 40 for guiding the floating position of the bubbles is provided below the discharge guiding channel. In this embodiment, first guiding rollers 34 and second guiding rollers 36 are respectively arranged at intervals on the opposite sides of the first guiding portion 31 and the second guiding portion 32. A first guiding belt 35 is sleeved on the first guiding roller 34, and a second guiding belt 37 is provided on the second guiding roller 36. In this embodiment, the distance between the first guiding portion 31 and the second guiding portion 32 is adjustable to control the thickness of the formed foam metal material.

[0049] In this embodiment, a cutting device for cutting the foam metal material is provided on the discharge guiding device. The cutting device is above the discharge guiding device in the vertical direction. The cutting device can be arranged at the outlet of the discharge guiding channel 33. After the foam metal material comes out of the outlet of the discharging device, the cutting device can cut the foam metal material. In some embodiments, the cutting device includes a tool holder 38 and a cutter 39. The tool holder 38 is installed on the top surface of the first guiding portion 31, and when the cutter 39 works, it moves horizontally relative to the first guiding portion 31 to cut the foam metal material. In addition, during the process of the cutter 39 cutting the foam metal material, a driving mechanism arranged in the tool holder 38 also drives the cutter 39 to move synchronously with the foam metal material, so as to make the cut surface smoother, and the cutter 39 will not affect the continuous discharging of the foam metal material.

[0050] In the preferred embodiment of this embodiment, a third water-cooling jacket (not shown in the figure) for cooling and shaping the foam metal material is provided in the first guiding portion 31 and the second guiding portion 32. In this embodiment, the third water-cooling jacket controls the cooling rate of the foam metal material to be 10 - 50 °C / s, which can accelerate the rate of the foam metal material and improve production efficiency.

[0051] A monitoring system for monitoring the bubble size is provided on the discharge guiding device of this embodiment. The monitoring system includes a host computer 51 and a camera 52. The camera 52 collects the surface image of the foam metal material 13 in the discharge guiding channel 33, as Figure 5 shown. The host computer 51 statistically analyzes the size distribution of the bubbles and the bubble coalescence rate based on the collected surface image of the foam metal material 13. Specifically, the method for judging bubble coalescence is as follows: If the diameter of the bubble 11 is greater than 125% of the target bubble diameter, it indicates that the bubble is obtained by the coalescence of at least two bubbles, and then the bubble coalescence rate is calculated.

[0052] The host computer 51 is connected to the PLC controller 24. After obtaining the size distribution of the bubbles and the bubble coalescence rate through the host computer 51, the bubble size is dynamically adjusted through the PLC controller 24. Specifically:

[0053] When the proportion of bubbles with diameters exceeding the set threshold range is greater than or equal to the set first threshold, the PLC controller 24 controls the time interval of each excitation of the nozzle 21 through the solenoid valve 23 to adjust the volume of gas injected into the molten metal until the proportion of bubbles with diameters exceeding the set threshold range is less than the set first threshold; specifically, when the proportion of bubbles with diameters greater than the set threshold range is greater than or equal to the set first threshold, the PLC controller 24 controls the nozzle 21 through the solenoid valve 23 to reduce the time interval of each excitation to adjust the volume of gas injected into the molten metal until the proportion of bubbles with diameters exceeding the set threshold range is less than the set first threshold; when the proportion of bubbles with diameters less than the set threshold range is greater than or equal to the set first threshold, the PLC controller 24 controls the nozzle 21 through the solenoid valve 23 to increase the time interval of each excitation to adjust the volume of gas injected into the molten metal until the proportion of bubbles with diameters exceeding the set threshold range is less than the set first threshold; ultimately, the size of the bubbles 11 is maintained within the set threshold range.

[0054] When the merging rate of the bubbles 11 exceeds the set second threshold, the PLC controller 24 controls the nozzle 21 through the solenoid valve 23 to increase the pulsation frequency to inhibit the merging of bubbles.

[0055] Specifically, at least one of the first guiding portion 311 and the second guiding portion 32 is provided with a high-temperature resistant window 41, and the camera 52 collects the surface image of the foamed metal material 13 in the discharge guiding channel 33 through the high-temperature resistant window 41. In a preferred embodiment of the present embodiment, the bottoms of the first guiding portion 31 and the second guiding portion 32 are respectively provided with a first base 311 and a second base 321, and at least one of the first base 311 and the second base 321 is provided with a high-temperature resistant window 41. In this embodiment, the high-temperature resistant window 41 is arranged on the first base 311, that is, the high-temperature resistant window 41 is arranged on the first guiding portion 31. By arranging the high-temperature resistant window 41 on the first base 311 and / or the second base 321, the monitoring position can be closer to the bubble generator 20, and the detection response speed can be improved.

[0056] Embodiment 2

[0057] As Figure 2 shown, the foamed metal material production system based on the array pulsating air flow of this embodiment includes a molten pool 10, a bubble generating device, and a discharge guiding device. Specifically, the upper end of the molten pool 10 is open and used to accommodate molten metal; the bubble generating device is used to generate bubbles; the discharge guiding device is arranged above the molten pool 10 and is used to guide the continuous discharge of the formed foamed metal material.

[0058] In this embodiment, the bubble generating device includes a bubble generator and a bubble control system. Specifically, the bubble generator is installed in the molten pool 10, and the bubble generator includes a plurality of nozzles 21 arranged in an array, and the nozzles 21 are used to intermittently eject gas in the vertically upward direction. In this embodiment, the nozzles 21 are arranged in a honeycomb array as a plurality. Of course, in some other embodiments, the nozzles 21 can also be arranged in a rectangular array as a plurality, which will not be elaborated here. A high-pressure air pipe 22 is connected to the nozzle 21 in this embodiment, and a solenoid valve 23 for controlling the opening and closing of the nozzle 21 is installed on the high-pressure air pipe 22. Thus, by using the opening and closing action of the solenoid valve 23, the amount of gas ejected into the molten pool 10 by the nozzle 21 each time can be accurately controlled, and then bubbles with a uniform size distribution can be formed in the molten metal. Correspondingly, the bubble control system in this embodiment includes a PLC controller 24 for controlling the on-off frequency and duty cycle of the solenoid valve 23, and the PLC controller 24 controls adjacent nozzles 21 to eject gas to form bubbles according to the set phase difference. That is, in this embodiment, the PLC controller 24 controls the duty cycle of each solenoid valve 23 on the one hand to accurately control the amount of gas ejected into the molten pool 10 by the nozzle 21 each time; on the other hand, it also needs to control the phase difference of gas ejection between different nozzles 21 so that different nozzles 21 eject gas in sequence according to the set order, which can not only make the bubbles form continuously, but also increase the interval between bubbles and reduce the bubble coalescence rate.

[0059] In this embodiment, the bubble generator includes a mounting seat 27 fixedly installed on the bottom surface of the molten pool, the nozzle 21 is installed in the mounting seat 27, and a perforation for passing through the high-pressure air pipe 22 is provided on the bottom surface of the molten pool 10. The solenoid valve 23 is installed on the high-pressure air pipe 22 and is located outside the molten pool 10. That is, at this time, except for the nozzle 21, the high-pressure air pipe 22, the solenoid valve 23, and the bubble control system, etc. can all be arranged outside the molten pool 10, which can effectively reduce the influence of the high-temperature environment in the molten pool 10 on these components. Of course, in order to accurately control the pulsating air flow ejected by the nozzle 21, the solenoid valve 23 should be arranged close to the nozzle 21, and at this time, a second cooling water jacket 28 for controlling the temperature is provided outside the solenoid valve 21. In this embodiment, the material of the nozzle 21 is silicon carbide or alumina ceramic, which can meet the use requirements of the high-temperature environment. Preferably, a water-cooled jacket can be further provided on the outer wall of each nozzle 21 to further control the temperature of the nozzle 21. In this embodiment, the solenoid valve 21 is a high-temperature solenoid valve, which can meet the use requirements of the high-temperature environment.

[0060] Other specific implementation manners of this embodiment are the same as or equivalent to those of Embodiment 1, and will not be repeated one by one.

[0061] The above-described embodiments are merely preferred embodiments given to fully illustrate the present invention, and the protection scope of the present invention is not limited thereto. Equivalent substitutions or transformations made by those skilled in the art on the basis of the present invention are all within the protection scope of the present invention. The protection scope of the present invention is subject to the claims.

Claims

1. A production system for foamed metal materials based on array pulsating airflows, characterized in that: Comprising: A molten liquid pool, the upper end of the molten liquid pool is open and is used for containing molten metal liquid; A bubble generating device, which is used for generating bubbles; A discharging guiding device, which is arranged above the molten liquid pool and is used for guiding the continuous discharging of the formed foam metal material; The bubble generating device includes a bubble generator and a bubble control system; the bubble generator is installed in the molten liquid pool, and the bubble generator includes a plurality of nozzles arranged in an array, and the nozzles are used for intermittently injecting gas in the vertically upward direction; a high-pressure gas pipe is connected to the nozzle, and a solenoid valve for controlling the opening and closing of the nozzle is installed on the high-pressure gas pipe; the bubble control system includes a PLC controller for controlling the on-off frequency and duty cycle of the solenoid valve, and the PLC controller controls the adjacent nozzles to inject gas according to a set phase difference to form bubbles.

2. The foam metal material production system based on array pulsating air flow according to claim 1, wherein: The distance between two adjacent nozzles is equal to 1.5 - 2 times of the target bubble diameter.

3. The foam metal material production system based on array pulsating air flow according to claim 1, characterized in that: The phase difference between the gas injection of two adjacent nozzles is 90° - 180°.

4. The foam metal material production system based on array pulsating air flow according to claim 1, wherein: The bubble generator includes an isolation chamber and a gas channel, the nozzle array is installed on the top surface of the isolation chamber, and the solenoid valve is installed in the isolation chamber; the gas channel extends from the upper opening of the molten liquid pool into the molten liquid pool and is connected to the isolation chamber; a ventilation channel corresponding to each high-pressure gas pipe is provided in the gas channel; A first cooling water jacket for controlling the temperature is provided in the isolation chamber and in the gas channel.

5. The foam metal material production system based on array pulsating air flow according to claim 1, characterized in that: The bubble generator includes a mounting seat fixedly installed on the bottom surface of the molten liquid pool, the nozzle is installed in the mounting seat, and a perforation for passing through the high-pressure gas pipe is provided on the bottom surface of the molten liquid pool, and the solenoid valve is installed on the high-pressure gas pipe and is located outside the molten liquid pool; a second cooling water jacket for controlling the temperature is provided outside the solenoid valve; a buffer tank is provided on the high-pressure gas pipe, and the buffer tank is used for suppressing the pressure oscillation caused by the air pressure fluctuation.

6. The foam metal material production system based on array pulsating air flow according to claim 1, characterized in that: The discharging guiding device includes a first guiding part and a second guiding part arranged oppositely, a discharging guiding channel for the forming and discharging of the foam metal material is formed between the first guiding part and the second guiding part, and a bubble guiding plate for guiding the floating direction of the bubbles is provided below the discharging guiding channel.

7. The foam metal material production system based on array pulsating air flow according to claim 6, wherein: First guiding rollers and second guiding rollers are respectively arranged at intervals on the opposite sides of the first guiding part and the second guiding part facing each other, a first guiding belt is sleeved on the first guiding rollers, and a second guiding belt is provided on the second guiding rollers; the distance between the first guiding part and the second guiding part is adjustable; a third water cooling jacket for cooling and forming the foam metal material is provided in the first guiding part and the second guiding part; the water cooling jacket controls the cooling rate of the foam metal material to be 10 - 50 °C / s.

8. The foam metal material production system based on array pulsating air flow according to claim 6, characterized in that: The discharge guiding device is provided with a monitoring system for monitoring the bubble size. The monitoring system includes a host computer and a camera. The camera collects the surface images of the foam metal material in the discharge guiding channel. The host computer calculates the size distribution and bubble coalescence rate of the bubbles based on the collected surface images of the foam metal material. The method for judging bubble coalescence is as follows: If the bubble diameter is greater than 125% of the target bubble diameter, it indicates that the bubble is obtained by the coalescence of at least two bubbles, and then the bubble coalescence rate is calculated.

9. The foam metal material production system based on array pulsating air flow according to claim 8, characterized in that: The host computer is connected to the PLC controller, and: When the proportion of bubbles with diameters exceeding the set threshold range is greater than or equal to the set first threshold, the PLC controller controls the time interval of each excitation of the nozzle through the solenoid valve to adjust the volume of gas injected into the molten metal until the proportion of bubbles with diameters exceeding the set threshold range is less than the set first threshold; When the bubble coalescence rate exceeds the set second threshold, the PLC controller controls the nozzle to increase the pulsation frequency through the solenoid valve to inhibit bubble coalescence.

10. The foam metal material production system based on array pulsating air flow according to claim 9, characterized in that: At least one of the first guiding part and the second guiding part is provided with a high-temperature resistant window, and the camera collects the surface images of the foam metal material in the discharge guiding channel through the high-temperature resistant window; the bottoms of the first guiding part and the second guiding part are respectively provided with a first base and a second base, and at least one of the first base and the second base is provided with the high-temperature resistant window.