Energy-saving vacuum mixer for processing non-metal carbide ceramic green body
Through the wet stirring and vacuum degassing of the vacuum mixer, combined with the vibration of the blanking plate and the shaking of the drying box, the problems of accumulation and uneven heating of the non-metallic carbide ceramic green body mixed materials on the blanking plate are solved, and an efficient and environmentally friendly mixing and drying process is achieved.
Patent Information
- Application Number
- CN202511114057.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-11
- Publication Date
- 2025-09-16
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the existing technology, the mixed materials of non-metallic carbide ceramic green bodies are easily accumulated on the blanking plate. Single mechanical stirring cannot effectively break up the powder agglomeration. Dry mixing produces a large amount of dust. The accumulation of materials leads to uneven heating. The static heating method prolongs the production cycle.
An energy-saving vacuum mixer is used, combined with a stirring rod, a water sprayer and a vacuum pump to achieve wet mixing and vacuum degassing. The vibration of the discharge plate and the shaking of the drying box ensure that the materials are evenly mixed and quickly dried.
It achieves uniform mixing and rapid drying of materials, reduces dust pollution, shortens production cycle, and improves production efficiency and energy efficiency.
Smart Images

Figure CN120645306A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of non-metallic carbide ceramic processing, in particular to an energy-saving vacuum mixer for processing non-metallic carbide ceramic green bodies. Background Art
[0002] Non-metallic carbide ceramics (such as silicon carbide and boron carbide) are widely used in mechanical seals, wear-resistant components, high-temperature structural parts, and other fields due to their excellent properties such as high hardness, high-temperature resistance, and corrosion resistance. In the preparation of ceramic green bodies, uniform mixing of raw materials is a key step in ensuring material performance.
[0003] However, the mixed material is prone to accumulation or jamming on the surface of the discharge plate during discharge, resulting in low discharge efficiency and even affecting the uniformity of the subsequent drying process. However, the vibration amplitude and frequency are not well controlled, making it difficult to achieve stable and efficient material transportation. Traditional mixers mostly use a single mechanical stirring method, which is difficult to completely break the agglomeration of non-metallic carbide powders, resulting in uneven mixing. A large amount of dust is easily generated during the dry mixing process, which not only pollutes the environment but also may cause waste of raw materials. Although wet mixing can reduce dust, uneven water spraying or insufficient stirring will still affect the mixing effect. Wet mixed materials are prone to accumulation during the drying process, resulting in uneven heating, slow drying speed, and high energy consumption. Some equipment lacks dynamic drying auxiliary means and relies only on static heating, which further extends the production cycle. Summary of the Invention
[0004] The purpose of the present invention is to solve the problems in the prior art that materials are easily accumulated on the blanking plate, single mechanical stirring cannot effectively break up powder agglomeration, dry mixing produces a large amount of dust, material accumulation leads to uneven heating, and static heating method prolongs the production cycle.
[0005] In order to achieve the above-mentioned objectives, the present invention adopts the following technical scheme: an energy-saving vacuum mixer for processing non-metallic carbide ceramic green bodies, comprising: a mixing tank, the inner wall of the mixing tank is movably embedded with a stirring rod, the outer surface of the stirring rod is fixedly sleeved with a stirring blade, the outer surface of the stirring rod is fixedly installed with a flat bar, the inner wall of the flat bar is movably embedded with an adjusting rod, the outer surface of the adjusting rod is fixedly installed with a scraper, the scraper slides on the inner wall of the mixing tank, the top of the adjusting rod is fixedly installed with a limit block, one side of the flat bar is movably embedded with a threaded rod, the threaded rod is movably embedded in the inside of the limit block, the top of the mixing tank is connected to a sealing cover by a hinge, the inner wall of the sealing cover is provided with a feed port, the inside of the feed port is movably embedded with a sealing plug, and the top of the inner wall of the sealing cover is fixedly installed with a plurality of water sprinklers.
[0006] The technical effect of adopting the above-mentioned further scheme is: the ceramic body mixed material is poured into the interior of the mixing tank through the feed port, and then the sealing plug is covered with the feed port so that the entire mixing tank is in a closed state, and the motor 2 is started by an external power supply. At this time, the motor 2 drives the long rod to rotate, and at this time the long rod drives the belt to move through the pulley, and the belt drives the stirring rod to rotate through the pulley, and the stirring rod drives the stirring blades on its outer surface to stir and mix the mixed material. While stirring, water is sprayed through the sprinkler for wet stirring to reduce dust.
[0007] As a preferred embodiment, a vacuum pump is fixedly installed on one side of the mixing tank, an inner tube is fixedly installed on the input end of the vacuum pump, an outer tube is fixedly installed on the output end of the vacuum pump, a water tank is fixedly installed on one side of the mixing tank, a water pump is fixedly installed on one side of the mixing tank, a telescopic hose is fixedly installed on the output end of the water pump, one end of the telescopic hose is fixedly connected to the inside of multiple sprinklers, the input end of the water pump is fixedly connected to an input pipe, a limiting telescopic rod is fixedly installed on the bottom of the mixing tank through a connecting strip, a spring is fixedly installed on the bottom of the mixing tank through the connecting strip, and a blanking plate is fixedly installed on the spring and the top of the limiting telescopic rod.
[0008] The technical effect of adopting the above-mentioned further scheme is: when the ceramic body mixed material is inside the mixing tank, the vacuum pump is started, and the vacuum pump extracts the air inside the mixing tank through the inner tube and discharges it through the outer tube, thereby avoiding pressure fluctuations caused by volatilization or slight leakage of the material. While stirring, water is sprayed through the sprinkler for wet stirring to reduce dust.
[0009] As a preferred embodiment, a discharge port is provided at the bottom of the mixing tank, the discharge plate is located below the discharge port at the bottom of the mixing tank, a second motor is fixedly installed at the bottom of the mixing tank, a long rod is fixedly installed at the output end of the second motor, a reciprocating screw rod is fixedly installed at the top of the long rod, a short rod is fixedly installed at the top of the reciprocating screw rod, the short rod is connected to the bottom of the mixing tank through a bearing, and a belt is provided on the outer surface of the short rod through a pulley movable sleeve.
[0010] The technical effect of adopting the above further solution is: starting motor 2 through an external power supply, at this time motor 2 drives the long rod to rotate, at this time the long rod drives the belt to move through the pulley, and the belt drives the stirring rod to rotate through the pulley.
[0011] As a preferred embodiment, one end of the belt is movably mounted on the outer surface of the stirring rod through a pulley, the outer surface of the reciprocating screw rod is movably mounted with a movable block, the mixing tank is fixedly installed with a vertical rod near the bottom of the reciprocating screw rod, the movable block is movably mounted on the outer surface of the vertical rod, the movable block is in contact with the top of the blanking plate, and two slide rails are fixedly mounted on the bottom of the mixing tank, and the interior of the two slide rails is slidably connected to a drying box.
[0012] The technical effect of adopting the above-mentioned further scheme is: after the stirring is completed, the material enters the upper surface of the blanking plate through the discharge port at the bottom. In order to ensure that the material will not stay or get stuck on the upper surface of the blanking plate, Motor 2 drives the reciprocating screw to rotate while driving the long rod to rotate. At the same time, under the limit of the vertical rod, the movable block slides up and down on its outer surface. At this time, the movable block contacts the upper surface of the blanking plate. At this time, the bottom spring and the limiting telescopic rod cooperate to make the blanking plate vibrate, so that the material can quickly enter the interior of the drying box to dry the moist ceramic green body mixed material.
[0013] As a preferred embodiment, the top of the drying box is slidably connected to a sliding cover, a heater is provided on one side of the drying box, one side of the drying box is rotatably connected to a linkage bar, one side of the linkage bar is rotatably connected to a crankshaft, and a motor 1 is fixedly installed on the top of the two slide rails.
[0014] The technical effect of adopting the above further scheme is: the motor is started by an external power supply to drive the crankshaft to rotate, and at this time the drying box is dragged by the linkage bar to slide back and forth quickly on the top of the slide rail, so that the ceramic green body mixed material inside the drying box can be shaken to prevent the internal material from accumulating.
[0015] As a preferred embodiment, the crankshaft is fixedly mounted on the output end of motor 1, and the blanking plate is located directly above the drying box.
[0016] The technical effect of adopting the above further solution is that the drying speed is made faster during drying, which can save drying time.
[0017] Compared with the prior art, the advantages and positive effects of the present invention are: 1. In the embodiment of the present invention, after stirring is completed, the material enters the upper surface of the blanking plate through the discharge port at the bottom. In order to ensure that the material does not stay or get stuck on the upper surface of the blanking plate, the second motor drives the reciprocating screw to rotate while driving the long rod to rotate. At the same time, under the limit of the vertical rod, the movable block slides up and down on its outer surface. At this time, the movable block contacts the upper surface of the blanking plate. At this time, the blanking plate vibrates under the cooperation of the bottom spring and the limiting telescopic rod, so that the material can quickly enter the interior of the drying box to dry the moist ceramic green body mixed material. The drying box is heated by the heater to prevent the ceramic green body mixed material from accumulating inside the drying box.
[0018] 2. In the embodiment of the present invention, the ceramic body mixed material is poured into the interior of the mixing tank through the feed port, and then the sealing plug is covered with the feed port so that the entire mixing tank is in a closed state. Motor 2 is started by an external power supply. At this time, Motor 2 drives the long rod to rotate. At this time, the long rod drives the belt to move through the pulley, and the belt drives the stirring rod to rotate through the pulley. The stirring rod drives the stirring blades on its outer surface to stir and mix the mixed material. While stirring, water is sprayed through the sprinkler to perform wet stirring to reduce dust.
[0019] 3. In an embodiment of the present invention, the motor is started by an external power supply to drive the crankshaft to rotate. At this time, the drying box is dragged by the linkage bar to slide back and forth quickly on the top of the slide rail, so that the ceramic green body mixed material inside the drying box can be shaken, which makes the drying speed faster during drying and saves drying time. At the same time, when the ceramic green body mixed material is inside the mixing tank, the vacuum pump is started. The vacuum pump extracts the air inside the mixing tank through the inner tube and discharges it through the outer tube to avoid pressure fluctuations caused by material volatilization or slight leakage. At the same time, after the ceramic green body mixed material inside the mixing tank is discharged, in order to prevent the material residue from being stuck on the inner wall of the mixing tank, the threaded rod is rotated to disengage from the inside of the limit block. At this time, the limit block is rotated to drive the adjusting rod and the scraper to rotate 180 degrees. At this time, the scraper is attached to the inner wall of the mixing tank. The threaded rod is rotated again to be embedded in the inside of the limit block to limit the adjusting rod. When the stirring rod rotates, the scraper is driven to rotate on the inner wall of the mixing tank by the flat bar, so that the residue on the inner wall of the mixing tank can be scraped off. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 A schematic diagram of the three-dimensional structure of an energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies provided by the present invention; Figure 2 A schematic top plan view of an energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies provided by the present invention; Figure 3This is an enlarged structural diagram of the spring portion of an energy-saving vacuum mixer for processing non-metallic carbide ceramic green bodies provided by the present invention; Figure 4 A schematic diagram of the internal structure of an energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies provided by the present invention; Figure 5 A schematic diagram of a partial side view of an energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies provided by the present invention; Figure 6 A schematic structural diagram of a scraper of an energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies provided by the present invention; Figure 7 This is an enlarged structural diagram of point A of an energy-saving vacuum mixer for processing non-metallic carbide ceramic green bodies provided by the present invention; Figure 8 The present invention provides a schematic side planar structural diagram of an energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies.
[0021] Legend: 101. Mixing tank; 102. Water tank; 103. Inlet pipe; 104. Water pump; 105. Telescopic hose; 106. Sealing cover; 107. Sprinkler; 108. Slide rail; 109. Feed port; 110. Sealing plug; 111. Vacuum pump; 112. Inner tube; 113. Outer tube; 114. Long rod; 115. Reciprocating screw; 116. Short rod; 117. Belt; 118. Stirring rod; 1 19. Mixing blade; 120. Flat bar; 121. Adjusting rod; 122. Scraper; 123. Threaded rod; 124. Limit block; 125. Spring; 126. Limit telescopic rod; 127. Blanking plate; 128. Vertical rod; 129. Movable block; 130. Drying box; 131. Heater; 132. Sliding cover; 133. Motor 1; 134. Crankshaft; 135. Linkage bar; 136. Motor 2. DETAILED DESCRIPTION
[0022] The following will provide a clear and complete description of the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0023] See also Figures 1 to 8The present embodiment provides a technical solution: an energy-saving vacuum mixer for processing non-metallic carbide ceramic green bodies, comprising: a mixing tank 101, a stirring rod 118 movably embedded in the inner wall of the mixing tank 101, a stirring blade 119 fixedly sleeved on the outer surface of the stirring rod 118, a flat bar 120 fixedly mounted on the outer surface of the stirring rod 118, an adjusting rod 121 movably embedded in the inner wall of the flat bar 120, a scraper 122 fixedly mounted on the outer surface of the adjusting rod 121, and the scraper 122 slidingly mounted on the outer surface of the scraper On the inner wall of the mixing tank 101, a limit block 124 is fixedly installed on the top of the adjusting rod 121, and a threaded rod 123 is movably embedded on one side of the flat bar 120, and the threaded rod 123 is movably embedded inside the limit block 124. The top of the mixing tank 101 is connected to a sealing cover 106 by a hinge, and a feed port 109 is opened on the inner wall of the sealing cover 106. A sealing plug 110 is movably embedded inside the feed port 109, and a plurality of sprinklers 107 are fixedly installed on the top of the inner wall of the sealing cover 106.
[0024] During use, the ceramic green body mixed material is poured into the interior of the mixing tank 101 through the feed port 109, and then the sealing plug 110 covers the feed port 109 so that the entire mixing tank 101 is in a closed state. The motor 2 136 is started by an external power supply. At this time, the motor 2 136 drives the long rod 114 to rotate. At this time, the long rod 114 drives the belt 117 to move through the pulley. The belt 117 drives the stirring rod 118 to rotate through the pulley. The stirring rod 118 drives the stirring blades 119 on its outer surface to stir and mix the mixed material. While stirring, water is sprayed through the sprinkler 107 to perform wet stirring to reduce dust.
[0025] like Figures 1 to 8 As shown, in one embodiment, a vacuum pump 111 is fixedly installed on one side of the mixing tank 101, an inner tube 112 is fixedly installed on the input end of the vacuum pump 111, and an outer tube 113 is fixedly installed on the output end of the vacuum pump 111. A water tank 102 is fixedly installed on one side of the mixing tank 101, a water pump 104 is fixedly installed on one side of the mixing tank 101, and a telescopic hose 105 is fixedly installed on the output end of the water pump 104. One end of the telescopic hose 105 is fixedly connected to the inside of a plurality of sprinklers 107, and the input end of the water pump 104 is fixedly connected to the input pipe 103. The mixing tank 101 A limiting telescopic rod 126 is fixedly installed at the bottom through a connecting strip, and a spring 125 is fixedly installed at the bottom of the mixing tank 101 through a connecting strip. A blanking plate 127 is fixedly installed on the top of the spring 125 and the limiting telescopic rod 126. When the ceramic body mixed material is inside the mixing tank 101, the vacuum pump 111 is started, and the vacuum pump 111 extracts the air inside the mixing tank 101 through the inner tube 112 and discharges it through the outer tube 113 to avoid pressure fluctuations caused by volatilization or slight leakage of the material. While stirring, water is sprayed through the sprinkler 107 to perform wet stirring to reduce dust.
[0026] like Figures 1 to 8 As shown, in one embodiment, a discharge port is provided at the bottom of the mixing tank 101, and a discharge plate 127 is located below the discharge port at the bottom of the mixing tank 101. A second motor 136 is fixedly installed at the bottom of the mixing tank 101, and a long rod 114 is fixedly installed at the output end of the second motor 136. A reciprocating screw rod 115 is fixedly installed on the top of the long rod 114, and a short rod 116 is fixedly installed on the top of the reciprocating screw rod 115. The short rod 116 is connected to the bottom of the mixing tank 101 through a bearing, and a belt 117 is provided on the outer surface of the short rod 116 through a movable sleeve of a pulley. The second motor 136 is started by an external power supply. At this time, the second motor 136 drives the long rod 114 to rotate, and at this time, the long rod 114 drives the belt 117 to move through the pulley, and the belt 117 drives the stirring rod 118 to rotate through the pulley.
[0027] like Figures 1 to 8 As shown, in one embodiment, one end of the belt 117 is movably sleeved on the outer surface of the stirring rod 118 through a pulley, and a movable block 129 is movably sleeved on the outer surface of the reciprocating screw rod 115. A vertical rod 128 is fixedly installed on the bottom of the mixing tank 101 near the reciprocating screw rod 115, and the movable block 129 is movably sleeved on the outer surface of the vertical rod 128. The movable block 129 contacts the top of the blanking plate 127. Two slide rails 108 are fixedly installed on the bottom of the mixing tank 101. The interior of the two slide rails 108 is slidably connected to a drying box 130. After the mixing is completed, the material enters the mixing tank through the discharge port at the bottom. The upper surface of the blanking plate 127, in order to ensure that the material does not stay or get stuck on the upper surface of the blanking plate 127, the motor 2 136 drives the reciprocating screw 115 to rotate while driving the long rod 114 to rotate. At the same time, the movable block 129 slides up and down on its outer surface under the limit of the vertical rod 128. At this time, the movable block 129 contacts the upper surface of the blanking plate 127. At this time, the bottom spring 125 and the limiting telescopic rod 126 cooperate to make the blanking plate 127 vibrate, so that the material can quickly enter the interior of the drying box 130 to dry the moist ceramic green body mixture.
[0028] like Figures 1 to 8 As shown, in one embodiment, a sliding cover 132 is slidably connected to the top of the drying box 130, a heater 131 is provided on one side of the drying box 130, a linkage bar 135 is rotatably connected to one side of the drying box 130, and a crankshaft 134 is rotatably connected to one side of the linkage bar 135. A motor 133 is fixedly installed on the top of the two slide rails 108, and the motor 133 is started by an external power supply to drive the crankshaft 134 to rotate. At this time, the drying box 130 is dragged by the linkage bar 135 to slide back and forth quickly on the top of the slide rail 108, so that the ceramic green body mixed material inside the drying box 130 can be shaken to prevent the internal material from accumulating.
[0029] like Figures 1 to 8 As shown, in one embodiment, the crankshaft 134 is fixedly mounted on the output end of the motor 133, and the blanking plate 127 is located directly above the drying box 130, which makes the drying speed faster during drying and saves drying time.
[0030] Working principle: When in use, the ceramic green body mixed material is poured into the interior of the mixing tank 101 through the feed port 109, and then the sealing plug 110 covers the feed port 109 so that the entire mixing tank 101 is in a closed state, and the motor 2 136 is started by an external power supply. At this time, the motor 2 136 drives the long rod 114 to rotate, and the long rod 114 drives the belt 117 to move through the pulley, and the belt 117 drives the stirring rod 118 to rotate through the pulley, and the stirring rod 118 drives the stirring blade 119 on its outer surface to stir and mix the mixed material. While stirring, water is sprayed through the sprinkler 107 for wet stirring to reduce dust. After the stirring is completed, the material passes through the bottom The discharge port at the top enters the upper surface of the blanking plate 127. In order to ensure that the material does not stay or get stuck on the upper surface of the blanking plate 127, the motor 2 136 drives the reciprocating screw 115 to rotate while driving the long rod 114 to rotate. At the same time, the movable block 129 slides up and down on its outer surface under the limit of the vertical rod 128. At this time, the movable block 129 contacts the upper surface of the blanking plate 127. At this time, the bottom spring 125 and the limiting telescopic rod 126 cooperate to make the blanking plate 127 vibrate, so that the material can quickly enter the interior of the drying box 130 to dry the moist ceramic green body mixture. The drying box 130 is heated by the heater 131. In order to prevent the ceramic green body mixed material from accumulating inside the drying box 130, the motor 133 is started by an external power supply to drive the crankshaft 134 to rotate. At this time, the drying box 130 is dragged on the top of the slide rail 108 by the linkage bar 135 to slide back and forth quickly, so that the ceramic green body mixed material inside the drying box 130 can be shaken, and the drying speed can be faster when drying, which can save drying time. At the same time, when the ceramic green body mixed material is inside the mixing tank 101, the vacuum pump 111 is started, and the vacuum pump 111 extracts the air inside the mixing tank 101 through the inner tube 112 and discharges it through the outer tube 113 to avoid volatilization or light The pressure fluctuations caused by micro-leakage. At the same time, after the ceramic green body mixed material inside the mixing tank 101 is discharged, in order to prevent the material residue from getting stuck on the inner wall of the mixing tank 101, the threaded rod 123 is disengaged from the inside of the limit block 124 by rotating the threaded rod 123. At this time, the limit block 124 is rotated to drive the adjusting rod 121 and the scraper 122 to rotate one hundred and eighty degrees. At this time, the scraper 122 is attached to the inner wall of the mixing tank 101. The threaded rod 123 is rotated again to be embedded in the inside of the limit block 124, which can limit the adjusting rod 121. When the stirring rod 118 rotates, the scraper 122 is driven to rotate on the inner wall of the mixing tank 101 through the flat bar 120, and the residue on the inner wall of the mixing tank 101 can be scraped off.
[0031] The standard parts used in the present invention can all be purchased from the market, and special-shaped parts can be customized according to the description in the specification and the drawings. The specific connection methods of each part adopt conventional means such as mature bolts, rivets, welding, etc. in the existing technology. The machinery, parts and equipment all adopt conventional models in the existing technology, and the circuit connection adopts the conventional connection method in the existing technology. The content not described in detail in this specification belongs to the existing technology known to professional and technical personnel in this field and will not be described in detail here.
[0032] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any other form. Any person skilled in the art may use the technical contents disclosed above to change or modify them into equivalent embodiments with equivalent changes for application in other fields. However, any simple modification, equivalent change and modification of the above embodiments made in accordance with the technical essence of the present invention without departing from the technical solution of the present invention shall still fall within the scope of protection of the technical solution of the present invention.
Claims
1. An energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies, comprising: A mixing tank (101) is characterized in that a stirring rod (118) is movably embedded in the inner wall of the mixing tank (101), a stirring blade (119) is fixedly sleeved on the outer surface of the stirring rod (118), a flat bar (120) is fixedly installed on the outer surface of the stirring rod (118), an adjusting rod (121) is movably embedded in the inner wall of the flat bar (120), a scraper (122) is fixedly installed on the outer surface of the adjusting rod (121), the scraper (122) slides on the inner wall of the mixing tank (101), and the adjusting rod (121) is fixedly installed on the outer surface of the adjusting rod (121). ) is fixedly installed on the top of the mixing tank (101), a threaded rod (123) is movably embedded in one side of the flat bar (120), and the threaded rod (123) is movably embedded in the interior of the limit block (124). The top of the mixing tank (101) is connected to a sealing cover (106) through a hinge, and a feed port (109) is provided on the inner wall of the sealing cover (106), and a sealing plug (110) is movably embedded in the interior of the feed port (109), and a plurality of sprinklers (107) are fixedly installed on the top of the inner wall of the sealing cover (106).
2. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 1, characterized in that: A vacuum pump (111) is fixedly mounted on one side of the mixing tank (101), an inner tube (112) is fixedly mounted on the input end of the vacuum pump (111), and an outer tube (113) is fixedly mounted on the output end of the vacuum pump (111). A water tank (102) is fixedly mounted on one side of the mixing tank (101), a water pump (104) is fixedly mounted on one side of the mixing tank (101), and a telescopic hose (105) is fixedly mounted on the output end of the water pump (104).
3. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 2, characterized in that: One end of the telescopic hose (105) is fixedly connected to the interior of a plurality of sprinklers (107); an input end of the water pump (104) is fixedly connected to an input pipe (103); a limiting telescopic rod (126) is fixedly mounted on the bottom of the mixing tank (101) via a connecting strip; a spring (125) is fixedly mounted on the bottom of the mixing tank (101) via a connecting strip; a blanking plate (127) is fixedly mounted between the spring (125) and the top of the limiting telescopic rod (126).
4. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 3, characterized in that: A discharge port is provided at the bottom of the mixing tank (101), and the discharge plate (127) is located below the discharge port at the bottom of the mixing tank (101). A second motor (136) is fixedly mounted at the bottom of the mixing tank (101), and a long rod (114) is fixedly mounted at the output end of the second motor (136).
5. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 4, characterized in that: A reciprocating screw rod (115) is fixedly mounted on the top of the long rod (114), a short rod (116) is fixedly mounted on the top of the reciprocating screw rod (115), the short rod (116) is connected to the bottom of the mixing tank (101) via a bearing, and a belt (117) is provided on the outer surface of the short rod (116) via a pulley sleeve.
6. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 5, characterized in that: One end of the belt (117) is movably sleeved on the outer surface of the stirring rod (118) via a pulley, a movable block (129) is movably sleeved on the outer surface of the reciprocating screw rod (115), and a vertical rod (128) is fixedly installed on the bottom of the mixing tank (101) near the reciprocating screw rod (115).
7. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 6, characterized in that: The movable block (129) is movably sleeved on the outer surface of the vertical rod (128), and the movable block (129) contacts the top of the blanking plate (127). Two slide rails (108) are fixedly installed on the bottom of the mixing tank (101), and the interior of the two slide rails (108) is slidably connected to the drying box (130).
8. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 7, characterized in that: The top of the drying box (130) is slidably connected to a sliding cover (132), one side of the drying box (130) is provided with a heater (131), and one side of the drying box (130) is rotatably connected to a linkage bar (135).
9. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 8, characterized in that: One side of the linkage bar (135) is rotatably connected to a crankshaft (134), and a motor 1 (133) is fixedly mounted on the top of the two slide rails (108).
10. The energy-saving vacuum mixer for processing non-metallic carbide ceramic bodies according to claim 9, characterized in that: The crankshaft (134) is fixedly mounted on the output end of the motor 1 (133), and the blanking plate (127) is located directly above the drying box (130).