Reduced ferrotitanium powder high-temperature sintering material block collecting device

Through the design of combining material throwing and cooling mechanism, the blockage and temperature accumulation of high-temperature sintered material blocks during the collection process is solved, and the crushing and cooling of material blocks are achieved to ensure production safety and environmental protection.

CN120517871AInactive Publication Date: 2025-08-22TIANJIN XINDETAI IRON POWDER
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Patent Information

Application Number
CN202510643799.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-19
Publication Date
2025-08-22
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, high-temperature sintered material blocks are prone to melt or blockage due to temperature accumulation during the collection process, and the air flowability is poor, which poses safety hazards.

Method used

The material block is broken through the material throwing plate and the linkage plate, and the atomization head is sprayed with water mist to cool down. The roller distance and spray angle are adjusted in combination with the driving mechanism to achieve crushing and cooling of the material blocks.

Benefits of technology

Effectively prevent blockage of material blocks, improve air circulation, reduce temperature, prevent powder bonding, reduce environmental pollution, and ensure safe production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a reduced ferrotitanium powder high-temperature sintered material block collecting device, and relates to the technical field of ferrotitanium powder block collection. The device comprises a collecting body, and a material throwing mechanism and a matching mechanism are arranged in the collecting body; the material throwing mechanism comprises a moving plate arranged in the collecting body, material throwing plates are rotationally installed on the two sides of the moving plate, the material throwing plates are used for crushing the material into small blocks, and the situation that during accumulation, large sintering material blocks are accumulated, so that air circulation in the inner space is poor, heat is difficult to dissipate, heat accumulation is caused, and the service life of the sintering material blocks is prolonged can be effectively prevented. Meanwhile, the small sintered material blocks crushed into small blocks can make contact with air when being thrown up, so that simple cooling treatment is conducted on the sintered material blocks, meanwhile, water mist can be sprayed to the surfaces of the sintered material blocks and the interior of the collecting body when the sintered material blocks are thrown up through an arranged atomizing head, powder bonding and clustering caused by high temperature are prevented, and meanwhile the phenomenon that the sintered material blocks are broken due to the high temperature can be reduced. And the influence on the device body is avoided.
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Description

Technical Field

[0001] The invention relates to the technical field of titanium-ferromagnetic powder agglomerate collection equipment, and in particular to a device for collecting reduced titanium-ferromagnetic powder high-temperature sintered material agglomerates. Background Art

[0002] At present, reduced ferrotitanium powder is one of the main auxiliary materials for the production of welding rods. The main production process for reduced ferrotitanium powder is to use a rotary kiln. Ilmenite, reduced coal powder, and desulfurizer are calcined and reduced using a rotary kiln as smelting equipment, and then the reduced product is placed in a cooling kiln for cooling. During the process, sintering residue is easily generated in the rotary kiln. The falling of the high-temperature residue causes production inconvenience and also poses a threat to the safety of workers.

[0003] The patent (application number: CN202021038149.6) discloses a device for collecting high-temperature sintered blocks of reduced titanium iron powder, comprising a barrel, wherein support frames are fixedly installed vertically downward on the left and right side walls of the barrel, a top cover is fixedly covered on the upper part of the barrel, a rectangular opening is horizontally opened in the middle of the left side of the barrel, a partition is horizontally passed through the rectangular opening, and the partition is inserted into the inner cavity of the barrel; an electric push rod is fixedly installed horizontally to the left in the upper middle part of the support frame on the left side of the barrel. The utility model has a cylinder fixedly installed vertically upward at the bottom of the two support frames, and the upper end of the piston rod of the cylinder fits on the left and right sides of the collection vehicle. When the barrel injects blocks into the collection vehicle, as the blocks are continuously collected, the cylinder works to drive the collection vehicle to slowly descend, thereby minimizing the noise when the blocks fall into the collection vehicle.

[0004] This patent and the prior art have the following technical problems in actual use:

[0005] Since sintered blocks are blocks produced during calcination, they have a certain temperature and the sizes of the blocks produced are also different. When collecting, when larger blocks accumulate inside the collection device, the gaps are small, resulting in poor air circulation, which in turn leads to temperature accumulation. Due to the continuous accumulation of temperature, it is very easy for the collection body to melt and other problems to occur. Summary of the Invention

[0006] The purpose of the present invention is to solve the above problems and provide a device for collecting high-temperature sintered blocks of reduced ferrotitanium powder.

[0007] In order to achieve the above-mentioned purpose, the present invention specifically adopts the following technical solutions:

[0008] A device for collecting reduced titanium iron powder high-temperature sintered material blocks, comprising a collecting body, wherein a throwing mechanism and a matching mechanism are provided inside the collecting body;

[0009] The throwing mechanism includes a movable plate arranged inside the collecting body, with throwing plates rotatably mounted on both sides of the movable plate, and a plurality of discharge slots are provided on the surface of the throwing plate. A fixing seat is fixedly mounted on the inner wall of the collecting body, and two groups of fixing seats are symmetrically arranged.

[0010] The matching mechanism includes a matching plate arranged below the movable plate, linkage plates are rotatably mounted on both sides of the matching plate, the linkage plates are rotatably connected to the fixed seat, a plurality of through slots are provided at the bottom of the matching plate, the movable plate and the matching plate can slide vertically inside the collecting body, a cooling mechanism is provided at the bottom of the throwing plate, and extension plates are rotatably mounted at both ends of the fixed seat, and the extension plates are slidably connected to the movable plate and the matching plate;

[0011] The cooling mechanism comprises a cooling plate fixedly mounted on the bottom of the movable plate, and an atomizing head is rotatably mounted on the bottom of the cooling plate.

[0012] Furthermore, a sliding groove is provided inside the throwing plate, and a sealing plate is slidably installed inside the throwing plate through the sliding groove, and the sealing plate is used to seal the discharge trough. A linkage box is fixedly installed on both sides of the throwing plate, and a slide is slidably installed inside the linkage box. The sealing plate is fixedly connected to the slide, and a connecting piece is fixedly installed on the surface of the extension plate, and the connecting piece passes through and extends inside the linkage box and is fixedly connected to the slide.

[0013] Furthermore, fixed boxes are fixedly installed on both sides of the cooling plate, slide rails are fixedly installed inside the fixed box, push plates are slidably installed on the surface of the slide rails, and the push plates have a certain toughness. Both sides of the atomizing head pass through the cooling plate and extend to the inside of the fixed box. The inner wall of the fixed box is rotatably connected with a push plate, and a return spring is fixedly installed between the inner wall of the fixed box and the push plate. The push plate can cooperate with each other, and a linkage is fixedly installed between the slide plate and the push plate.

[0014] Furthermore, water storage tanks are fixedly installed on both sides of the collecting body, a driving water pump is provided inside the water storage tank, a delivery pipe is fixedly installed on the output end of the driving water pump, and the delivery pipe is fixedly connected to the atomizing head.

[0015] Furthermore, a slot is provided on the top of the matching plate, and a rolling block is fixedly installed on the bottom of the movable plate.

[0016] Furthermore, a driving mechanism is provided on one side of the collecting body, and the driving mechanism includes a support frame fixedly installed on one side of the collecting body, a first driving disk is rotatably installed on the side of the support frame close to the collecting body, a second driving disk is fixedly installed on one side of the first driving disk, and an electric telescopic rod is fixedly installed on the side of the first driving disk close to the second driving disk, and the output end of the electric telescopic rod is fixedly connected to one side of the second driving disk.

[0017] Furthermore, a groove is provided on the surface of the second driving disk, a groove is provided on the side of the collecting body close to the second driving disk, and a sliding rod is fixedly installed on the side of the movable plate and the matching plate close to the second driving disk, and the sliding rod is slidably connected to the second driving disk through the groove.

[0018] Furthermore, a driving motor is fixedly mounted on one side of the support frame, an output end of the driving motor is fixedly connected to the first driving disk, and two groups of the driving mechanisms are symmetrically arranged.

[0019] Furthermore, the top of the collecting body is fixedly connected to a feeding hopper, and two groups of the feeding hoppers are symmetrically arranged.

[0020] Furthermore, the bottom of the collecting body is fixedly connected to a discharge barrel, and a sealing strip is fixedly installed inside the groove opened in the collecting body.

[0021] The beneficial effects of the present invention are as follows:

[0022] 1. The present invention can throw up the sintered material blocks transported to the inside of the collecting body through the provided throwing mechanism and the matching mechanism, so that the thrown up sintered material blocks contact the throwing plate and the linkage plate when falling downward due to gravity, thereby effectively breaking up these sintered material blocks and reducing the size of the particles, avoiding the situation where the material blocks are too large and cause blockage during discharge, and at the same time breaking them into small pieces, and can also effectively prevent the large sintered material blocks from accumulating when they are piled up, resulting in poor air circulation in the internal space thereof, making it difficult for heat to dissipate and causing heat accumulation, and at the same time, the sintered material blocks broken into small pieces can contact with the air when being thrown up, thereby performing a simple cooling treatment on them, and at the same time, through the provided atomizing head, water mist can be sprayed on the surface of the sintered material blocks and the collecting body when they are thrown up, preventing the powder from sticking together due to high temperature, and at the same time reducing the possibility of the high temperature of the sintered material blocks affecting the device body.

[0023] 2. The cooling mechanism provided in the present invention can enable the sintered material blocks to contact the cooling plate when they fall after being broken, and to be initially cooled. At the same time, when the sintered material blocks are broken due to being thrown up, they can be sprayed with atomized water to cool them down. The temperature of the sintered material blocks can be quickly reduced by evaporation and heat absorption, preventing the sintered blocks from overreacting due to excessive temperature. At the same time, the sprayed atomized water can suppress the dust generated by the broken sintered material blocks, thereby reducing environmental pollution.

[0024] 3. The present invention can adjust the distance of the sintered material blocks by setting a driving mechanism, and can make corresponding adjustments according to different types of sintered material blocks. If the distance between the movable plate and the matching plate is too large, the inclination angle of the atomizing head will become larger, and the spraying time of the sintered material blocks will also be longer. If the distance is too small, the opposite will happen. It can be adjusted according to the actual needs of the sintered material blocks. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 It is a schematic diagram of the collection body of the present invention;

[0026] Figure 2 This is a schematic diagram of the interior of the collection body of the present invention;

[0027] Figure 3 It is the main view of the collection body of the present invention;

[0028] Figure 4 It is a schematic diagram of the matching mechanism of the present invention;

[0029] Figure 5 Schematic diagram of the throwing mechanism of the present invention;

[0030] Figure 6 Schematic diagram of the driving mechanism of the present invention;

[0031] Figure 7 Schematic diagram of the driving mechanism of the present invention;

[0032] Figure 8 is a cross-sectional view of the device body of the present invention;

[0033] Figure 9 This invention Figure 9 Schematic diagram at point A in the middle;

[0034] Figure 10 Schematic diagram of the cooling plate of the present invention.

[0035] 1. The collecting body is provided with a collecting box, and the collecting box is provided with a collecting box. The collecting box is provided with a collecting box, and the collecting box is provided with a collecting box. DETAILED DESCRIPTION

[0036] To make the objectives, technical solutions and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0037] A device for collecting high-temperature sintered blocks of reduced ferrotitanium powder according to a preferred embodiment of the present invention will be described in detail below.

[0038] Example 1, as Figures 1-10 As shown, it includes a collecting body 1, and a throwing mechanism 2 and a matching mechanism 3 are provided inside the collecting body 1;

[0039] The throwing mechanism 2 includes a movable plate 201 disposed inside the collecting body 1. The two sides of the movable plate 201 are rotatably mounted with throwing plates 202. The surfaces of the throwing plates 202 are provided with a plurality of discharge slots 203. The inner wall of the collecting body 1 is fixedly mounted with a fixing seat 204. The fixing seat 204 is symmetrically arranged in two groups.

[0040] The matching mechanism 3 includes a matching plate 301 arranged below the movable plate 201, and linkage plates 302 are rotatably mounted on both sides of the matching plate 301. The linkage plates 302 are rotatably connected to the fixed seat 204. A plurality of through slots 303 are provided at the bottom of the matching plate 301. The movable plate 201 and the matching plate 301 can slide vertically inside the collecting body 1. A cooling mechanism 4 is provided at the bottom of the throwing plate 202. Extension plates 304 are rotatably mounted at both ends of the fixed seat 204. The extension plates 304 are slidably connected to the movable plate 201 and the matching plate 301.

[0041] The cooling mechanism 4 includes a cooling plate 41 fixedly mounted on the bottom of the movable plate 201, and an atomizing head 42 is rotatably mounted on the bottom of the cooling plate 41;

[0042] The staff transports the sintered material blocks to the inside of the collecting body 1 through a conveyor belt or other device. At this time, the staff controls the movable plate 201 to move relative to or opposite to the matching plate 301. When the sintered material blocks fall onto the surface of the throwing plate 202, the movable plate 201 continues to reciprocate up and down, and the fixed seat 204 restricts the throwing plate 202. At this time, the movement of the movable plate 201 will drive the throwing plate 202 to tilt. In this process, the sintered material blocks on the surface of the throwing plate 202 will be thrown up by the force, and the thrown up sintered material blocks will fall due to gravity, and thus contact the throwing plate 202, thereby initially crushing the sintered material blocks, and the crushed sintered material blocks will fall from the discharge trough 203 on the surface of the throwing plate 202, thereby falling. The sintered material blocks are then crushed to the surface of the linkage plate 302. At this time, the linkage plate 302 and the movable plate 201 make the same movement to crush the sintered material blocks again. At the same time, when the matching plate 301 moves downward, the linkage plate 302 will tilt downward under the restriction of the extension plate 304. At this time, the sintered material blocks will fall into the surface of the matching plate 301. When the movable plate 201 and the matching plate 301 move relative to each other, the sintered material blocks on its surface will be squeezed and crushed, and the sintered material blocks will be further crushed. The crushed sintered material blocks will fall from the through groove 303 to the bottom of the collecting body 1 for collection. At the same time, when the sintered material blocks are thrown up, the atomizing head 42 can spray water atomization onto the surface of the sintered material blocks to cool them down. This process is repeated until all the sintered material blocks are collected.

[0043] By means of the provided throwing mechanism 2 and the matching mechanism 3, the sintered material blocks transported to the interior of the collecting body 1 can be thrown up, so that the thrown up sintered material blocks come into contact with the throwing plate 202 and the linkage plate 302 when falling downward due to gravity, thereby effectively breaking up these sintered material blocks and reducing the size of the particles, thereby avoiding the situation where the material blocks are too large and cause blockage during discharge, and breaking them into small pieces, and also effectively preventing the large sintered material blocks from accumulating when stacking, resulting in poor air circulation in the internal space thereof, making it difficult for heat to dissipate and causing heat accumulation, and at the same time, the sintered material blocks broken into small pieces can come into contact with the air when being thrown up, thereby performing a simple cooling treatment on them, and at the same time, through the provided atomizing head 42, water mist can be sprayed on their surface and inside the collecting body 1 when they are thrown up, thereby preventing the powder from sticking together due to high temperature, and at the same time reducing the possibility of the high temperature of the sintered material blocks affecting the device body.

[0044] Example 2, as Figures 1-10As shown, a sliding groove 205 is provided inside the ejection plate 202, and a sealing plate 206 is slidably installed inside the ejection plate 202 through the sliding groove 205. The sealing plate 206 is used to seal the discharge chute 203. Linkage boxes 207 are fixedly installed on both sides of the ejection plate 202, and a slide plate 208 is slidably installed inside the linkage box 207. The sealing plate 206 is fixedly connected to the slide plate 208. A connecting piece 209 is fixedly installed on the surface of the extension plate 304. The connecting piece 209 passes through and extends inside the linkage box 207 and is fixedly connected to the slide plate 208. Fixed boxes 43 are fixedly installed on both sides of the cooling plate 41, and a sliding plate 206 is fixedly installed inside the fixed box 43. Rail 44, the surface of the slide rail 44 is slidably installed with a push plate 45, the push plate 45 has a certain toughness, both sides of the atomizing head 42 pass through the cooling plate 41 and extend to the inside of the fixed box 43, the inner wall of the fixed box 43 is rotatably connected with a push plate 46, a return spring 47 is fixedly installed between the inner wall of the fixed box 43 and the push plate 46, the push plate 45 can cooperate with the push plate 46, a linkage 48 is fixedly installed between the slide plate 208 and the push plate 45, a water storage tank 5 is fixedly installed on both sides of the collecting body 1, a driving water pump is provided inside the water storage tank 5, a delivery pipe 6 is fixedly installed on the output end of the driving water pump, and the delivery pipe 6 is fixedly connected to the atomizing head 42;

[0045] When the movable plate 201 moves, it will drive the ejection plate 202 to pull and rotate. In this process, one side of the ejection plate 202 will slide on the surface of the extension plate 304. During the sliding process of the ejection plate 202, the extension plate 304 will restrict the slide plate 208. When the ejection plate 202 is tilted, due to the pulling of the extension plate 304, the ejection plate 202 slides on the surface of the extension plate 304, and then the sealing plate 206 slides on the surface of the sliding groove 205, thereby sealing the discharge chute 203. When the ejection plate 202 is in a horizontal state, the extension plate 304 will completely enter the ejection plate 202, and at this time it will push the sealing plate 206 to the ejection plate 203. 06 Open the discharge chute 203, and the crushed sintered material blocks will fall through the opened discharge chute 203, thereby extending the crushing time of the sintered material blocks and improving the crushing effect. At the same time, when the slide plate 208 moves, it drives the connecting member 209 to move synchronously. When the connecting member 209 moves, it pushes the pushing plate 45 to move. The pushing plate 45 moves on the surface of the slide rail 44. At the same time, the pushing plate 45 pushes the pushing plate 46 to rotate inside the fixed box 43, thereby driving the atomizing head 42 to rotate and tilt. When the sintered material blocks are thrown up, the atomizing head 42 can spray atomized water onto the surface of the sintered material blocks. When it does not rotate, it sprays and cools the cooling plate 41.

[0046] Through the provided cooling mechanism 4, the sintered material block can contact the cooling plate 41 when it falls after being broken, and be initially cooled. At the same time, when the sintered material block is broken due to being thrown up, it can be sprayed with atomized water to cool it down. The temperature of the sintered material block is quickly reduced by evaporation and heat absorption, preventing the sintered block from over-reacting due to excessive temperature. At the same time, the sprayed atomized water can suppress the dust generated by the crushing of the sintered material block, thereby reducing environmental pollution.

[0047] Example 3, as Figures 1-8 As shown, the top of the matching plate 301 is provided with a slot, and the bottom of the movable plate 201 is fixedly provided with a rolling block 7;

[0048] The provided crushing blocks 7 can crush and break the sintered material blocks in the grooves on the surface of the linkage plate 302 when the matching plate 301 and the movable plate 201 move relative to each other.

[0049] Example 4, as Figures 1-8 As shown, a driving mechanism 8 is provided on one side of the collecting body 1, and the driving mechanism 8 includes a support frame 81 fixedly mounted on one side of the collecting body 1, a first driving disk 82 is rotatably mounted on the side of the support frame 81 close to the collecting body 1, a second driving disk 83 is fixedly mounted on one side of the first driving disk 82, an electric telescopic rod 84 is fixedly mounted on the side of the first driving disk 82 close to the second driving disk 83, and an output end of the electric telescopic rod 84 is fixedly connected to one side of the second driving disk 83, a groove is provided on the surface of the second driving disk 83, and a groove is provided on the side of the collecting body 1 close to the second driving disk 83, a sliding rod 85 is fixedly mounted on the side of the movable plate 201 and the matching plate 301 close to the second driving disk 83, and the sliding rod 85 is slidably connected to the second driving disk 83 through the groove, a driving motor 86 is fixedly mounted on one side of the support frame 81, and the output end of the driving motor 86 is fixedly connected to the first driving disk 82, and the driving mechanism 8 is symmetrically provided with two groups;

[0050] The staff starts the driving motor 86, and the output end of the driving motor 86 drives the first driving disc 82 to rotate. When the first driving disc 82 rotates, the second driving disc 83 is synchronously driven to rotate synchronously. When the second driving disc 83 rotates, the sliding rod 85 installed on one side of the movable plate 201 and the matching plate 301 will slide in the groove opened on the surface of the second driving disc 83. At the same time, as the second driving disc 83 is driven by the first driving disc 82 and rotates along the center ring of the first driving disc 82, the sliding rod 85 will reciprocate vertically downward through the groove, and at the same time drive the movable plate 201 and the matching plate 301 to move relative to each other. At the same time, the electric telescopic rod 84 is provided to drive the second driving disc 83 to slide on the surface of the first driving disc 82, thereby adjusting the relative movement distance of the movable plate 201 and the matching plate 301, thereby adjusting the particle size of the sintered material block.

[0051] The driving mechanism 8 provided can adjust the distance of the crushing of the sintered material blocks, and can be adjusted accordingly according to different types of sintered material blocks. If the distance between the movable plate 201 and the matching plate 301 is too large, the inclination angle of the atomizing head 42 will become larger, and the spraying time of the sintered material blocks will also be longer. If the distance is too small, the opposite will happen. It can be adjusted according to the actual needs of the sintered material blocks.

[0052] Example 5, as Figures 1-10 As shown, the top of the collecting body 1 is fixedly connected to a feed hopper 9, and two groups of feed hoppers 9 are symmetrically arranged. The bottom of the collecting body 1 is fixedly connected to a discharge cylinder 10, and a sealing strip is fixedly installed inside the groove opened in the collecting body 1;

[0053] The sintered material blocks can be transported to the interior of the collecting body 1 through the provided feeding hopper 9 and can be discharged through the discharging cylinder 10 .

[0054] The above description of the disclosed embodiments is intended to enable one skilled in the art to implement or use the present invention. Various modifications to these embodiments will be readily apparent to one skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not limited to the embodiments shown herein but is intended to conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A device for collecting high-temperature sintered blocks of reduced ferrotitanium powder, comprising a collecting body (1), characterized in that: The collecting body (1) is provided with a throwing mechanism (2) and a matching mechanism (3) inside; The throwing mechanism (2) comprises a movable plate (201) arranged inside the collecting body (1), throwing plates (202) are rotatably mounted on both sides of the movable plate (201), a plurality of discharge slots (203) are provided on the surface of the throwing plates (202), and a fixing seat (204) is fixedly mounted on the inner wall of the collecting body (1), and two groups of fixing seats (204) are symmetrically arranged; The matching mechanism (3) includes a matching plate (301) arranged below the movable plate (201), linkage plates (302) are rotatably mounted on both sides of the matching plate (301), the linkage plates (302) are rotatably connected to the fixed seat (204), a plurality of through slots (303) are provided at the bottom of the matching plate (301), the movable plate (201) and the matching plate (301) can slide vertically inside the collecting body (1), a cooling mechanism (4) is provided at the bottom of the throwing plate (202), extension plates (304) are rotatably mounted at both ends of the fixed seat (204), and the extension plates (304) are slidably connected to the movable plate (201) and the matching plate (301); The cooling mechanism (4) comprises a cooling plate (41) fixedly mounted on the bottom of the movable plate (201), and an atomizing head (42) is rotatably mounted on the bottom of the cooling plate (41).

2. The device for collecting reduced ferrotitanium powder high-temperature sintered material blocks according to claim 1, characterized in that: A sliding groove (205) is provided inside the ejection plate (202), and a sealing plate (206) is slidably installed inside the ejection plate (202) through the sliding groove (205). The sealing plate (206) is used to seal the discharge trough (203). Linkage boxes (207) are fixedly installed on both sides of the ejection plate (202), and a slide plate (208) is slidably installed inside the linkage box (207). The sealing plate (206) is fixedly connected to the slide plate (208). A connecting piece (209) is fixedly installed on the surface of the extension plate (304), and the connecting piece (209) passes through and extends inside the linkage box (207) and is fixedly connected to the slide plate (208).

3. The device for collecting high-temperature sintered blocks of reduced ferrotitanium powder according to claim 1, characterized in that: A fixed box (43) is fixedly installed on both sides of the cooling plate (41), a slide rail (44) is fixedly installed inside the fixed box (43), a push plate (45) is slidably installed on the surface of the slide rail (44), and the push plate (45) has a certain toughness. Both sides of the atomizing head (42) pass through the cooling plate (41) and extend to the inside of the fixed box (43). The inner wall of the fixed box (43) is rotatably connected with a push plate (46), and a return spring (47) is fixedly installed between the inner wall of the fixed box (43) and the push plate (46). The push plate (45) can cooperate with the push plate (46), and a linkage part (48) is fixedly installed between the slide plate (208) and the push plate (45).

4. The device for collecting high-temperature sintered blocks of reduced ferrotitanium powder according to claim 3, characterized in that: Water storage tanks (5) are fixedly installed on both sides of the collecting body (1), a driving water pump is provided inside the water storage tank (5), a delivery pipe (6) is fixedly installed at the output end of the driving water pump, and the delivery pipe (6) is fixedly connected to the atomizing head (42).

5. The device for collecting reduced ferrotitanium powder high-temperature sintered material blocks according to claim 1, characterized in that: A slot is provided on the top of the matching plate (301), and a rolling block (7) is fixedly installed on the bottom of the movable plate (201).

6. The device for collecting reduced ferrotitanium powder high-temperature sintered material blocks according to claim 1, characterized in that: A driving mechanism (8) is provided on one side of the collecting body (1), and the driving mechanism (8) includes a support frame (81) fixedly mounted on one side of the collecting body (1); a first driving disc (82) is rotatably mounted on the side of the support frame (81) close to the collecting body (1); a second driving disc (83) is fixedly mounted on one side of the first driving disc (82); an electric telescopic rod (84) is fixedly mounted on the side of the first driving disc (82) close to the second driving disc (83); and an output end of the electric telescopic rod (84) is fixedly connected to one side of the second driving disc (83).

7. The device for collecting high-temperature sintered blocks of reduced ferrotitanium powder according to claim 6, characterized in that: A groove is provided on the surface of the second driving disk (83), a groove is provided on the side of the collecting body (1) close to the second driving disk (83), and a sliding rod (85) is fixedly installed on the side of the movable plate (201) and the matching plate (301) close to the second driving disk (83), and the sliding rod (85) is slidably connected to the second driving disk (83) through the groove.

8. The device for collecting reduced ferrotitanium powder high-temperature sintered material blocks according to claim 6, characterized in that: A driving motor (86) is fixedly mounted on one side of the support frame (81), and an output end of the driving motor (86) is fixedly connected to a first driving disk (82). The driving mechanism (8) is symmetrically provided with two groups.

9. The device for collecting reduced ferrotitanium powder high-temperature sintered material blocks according to claim 1, characterized in that: The top of the collecting body (1) is fixedly connected to a feed hopper (9), and two groups of the feed hoppers (9) are symmetrically arranged.

10. The device for collecting reduced ferrotitanium powder high-temperature sintered material blocks according to claim 1, characterized in that: The bottom of the collecting body (1) is fixedly connected to a discharge barrel (10), and a sealing strip is fixedly installed inside a groove formed in the collecting body (1).

Citation Information

Patent Citations

  • Reduced ferrotitanium powder high-temperature sintering material block collecting device

    CN211003634U