Barreled raw material pouring equipment for chemical industry
By using an arc-shaped rotating plate and hydraulic blocks to fix the material barrels in the chemical raw material unloading equipment, combined with anti-volatile components and suction equipment, the problems of material barrel falling off and splashing during the overturning process are solved, and a safe and stable unloading process and harmful gas treatment are achieved.
Patent Information
- Application Number
- CN202511155435.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-18
- Publication Date
- 2025-11-18
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing chemical raw material unloading equipment is prone to causing the material drums to fall off during the turning process due to material shaking, and there are also problems of liquid splashing and harmful gas volatilization.
The material bucket is fixed on both sides by an arc-shaped rotating plate and an arc-shaped positioning plate, and stabilized by hydraulic blocks and electric telescopic rods. It is equipped with anti-volatile components and a suction device to handle volatile gases, and the sealed discharge port is broken open by a drill bit to facilitate unloading.
It achieves stable fixation of the material bucket during the turning process, avoiding detachment and splashing, protecting the safety of operators, and effectively absorbing harmful gases, reducing manual operation.
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Figure CN120964422A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of material pouring equipment technology, specifically to a material pouring equipment for chemical drums containing raw materials. Background Technology
[0002] Raw materials refer to materials that can be processed into products. In order to sell raw materials better, people usually put them into processing barrels to make barrelled raw materials for sale. When people need to use raw materials, it usually takes two people to lift the barrelled raw materials and pour them into a container. Barrelled raw materials are generally quite heavy, so it is quite labor-intensive. Moreover, if people are not careful, they can easily drop the barrelled raw materials on the ground, causing the raw materials inside the barrel to spill onto the ground, resulting in waste.
[0003] Chinese patent CN108792652A, authorized and published on August 11, 2020, discloses a chemical drum-type raw material unloading device, including a base, a first motor, a slide rail, a first slider, a bearing seat, a lead screw, a nut, a horizontal plate, a mounting plate, a second motor, gears, a movable plate, and an arc-shaped rack. The base has a large opening on the right side, and the first motor and slide rail are installed on the top right side of the base. The slide rail is located to the right of the first motor, and the first motor is located above and to the right of the large opening. In the aforementioned application, when the device starts working, the liquid in the material drum is in a sloshing state during the overturning process, and the material drum is relatively heavy, making it prone to swaying from side to side. This can cause the material drum to fall during the overturning process, hindering the unloading process. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides a chemical drum-type raw material unloading device, solving the problems mentioned in the background section. To achieve the above objectives, this invention provides the following technical solution: a chemical drum-type raw material unloading device, comprising: The base plate has a slide rail slidably connected to its right side, and a lead screw threaded into its interior. A movable plate is hinged to the top of the base plate. The front and rear surfaces of the movable plate have grooves. An electric telescopic rod is fixedly connected to the rear of the grooves, and an L-shaped slider is fixedly connected to the front of the electric telescopic rod. The L-shaped slider is slidably connected to the movable plate via the grooves. A triangular push block is movably connected to the rear of the grooves, and a hydraulic block is movably connected to the rear of the triangular push block. The outer side of the hydraulic block is fixedly connected to the interior of the movable plate, and the interior of the hydraulic block is fixedly connected to the rear of a second hydraulic block via a hose. The rear of the second hydraulic block is fixedly connected to the front surface of the L-shaped slider, and a rack is movably connected to the front of the second hydraulic block. The rack is movably connected to an arc-shaped rotating plate via a transmission component. The arc-shaped rotating plate and arc-shaped positioning plate fix the two sides of the material container, preventing it from falling off during tilting due to internal liquid movement, thus making the unloading process safer and more stable.
[0005] Preferably, the transmission component includes a gear, a rotating shaft, a fixed plate, and an arc-shaped positioning plate. The fixed plate is fixedly connected to the rear side of the L-shaped slider. The rotating shaft is movably connected through the fixed plates. A gear is fixedly connected to the bottom of the rotating shaft, and the gear meshes with a rack. An arc-shaped rotating plate is fixedly connected to the outer side of the rotating shaft, and an arc-shaped positioning plate is fixedly connected to the front side of the L-shaped slider.
[0006] Preferably, a rotating device is movably connected to the bottom of the base plate, a movable plate is fixedly connected to the top of the rotating device, a rear fixing device is movably connected to the right side of the movable plate, a front fixing device is movably connected to the left side of the movable plate, a flow guiding device is movably connected to the top of the front fixing device, an anti-volatile component is fixedly connected to the top of the flow guiding device, and a breaking component is movably connected to the right side of the flow guiding device.
[0007] Preferably, the number of the sliding grooves is two, the number of the electric telescopic rods is two, the number of the L-shaped sliders is two, the number of the triangular push blocks is four, with each pair of triangular push blocks forming a group, the number of hydraulic blocks one is four, the number of hoses one is four, the number of hydraulic blocks two is four, the number of racks is four, the number of gears is four, the number of rotating shafts one is four, the number of fixing plates one is eight, with each pair of fixing plates one forming a group, the number of arc-shaped rotating plates is four, and the number of arc-shaped positioning plates is two.
[0008] Preferably, the anti-volatile component includes a push block 1, a spring, a hydraulic block 3, a hose 2, a fixing plate 2, a hydraulic block 4, a push block 2, a rotating block, a rotating shaft 2, a fixing plate 3, a rotating plate, a suction device, and a baffle. The rear surface of the slide is fixedly connected to the hydraulic block 3. The front side of the hydraulic block 3 is movably connected to the push block 1. A spring is fixedly connected between the push block 1 and the hydraulic block 3. The rear side of the hydraulic block 3 is fixedly connected to one end of the hose 2. The other end of the hose 2 is fixedly connected to the top of the hydraulic block 4. The top of the hydraulic block 4 is fixedly connected to the outer side of the flow guiding device via the fixing plate 2. The bottom of the hydraulic block 4 is movably connected to the push block 2. A rotating block is fixedly connected to the front side of the push block 2. A baffle is fixedly connected to the outer side of the flow guiding device. Fixing plates 3 are fixedly connected to both sides of the baffle. A rotating shaft 2 is movably connected through and between the fixing plates 3. A rotating block is fixedly connected to the rear side of the rotating shaft 2. A rotating plate is fixedly connected to the outer side of the rotating shaft 2. A suction device is fixedly connected inside the rotating plate. The anti-volatile component is installed so that the rotating plate and the baffle form a three-sided sealed space, which prevents the liquid material splashed during unloading from falling directly to the outside of the reactor, making the equipment safer to use. At the same time, the harmful gases volatilized from the liquid material are absorbed by the suction equipment, making the operating environment of the equipment safer.
[0009] Preferably, the number of push blocks one is two, the number of springs is two, the number of hydraulic blocks three is two, the number of hoses two is two, the number of fixing plates two is two, the number of hydraulic blocks four is two, the number of push blocks two is two, the number of rotating blocks two, the number of rotating shafts two, the number of fixing plates three is four, with each pair of fixing plates three forming a group, the number of rotating plates two, and the number of suction devices two.
[0010] Preferably, the air suction device has three air suction ports on its inner side.
[0011] Preferably, the breaking assembly includes an arc-shaped push block, a hydraulic block five, a hose three, a hydraulic block six, a fixing plate four, and a drill bit. The arc-shaped push block is movably connected to the inner side of the rear sliding groove. The hydraulic block five is movably connected to the rear side of the arc-shaped push block. The outer side of the hydraulic block five is fixedly connected to the interior of the movable plate. The rear side of the hydraulic block five is fixedly connected to one end of the hose three. The other end of the hose three is fixedly connected to the top of the hydraulic block six. The outer side of the hydraulic block six is fixedly connected to the right side of the flow guiding device via the fixing plate four. The drill bit is movably connected to the bottom of the hydraulic block six. By setting up the breaking assembly, the sealed discharge port at the top of the material bucket is broken by the drill bit, making subsequent unloading more convenient, reducing manual operation, and thus protecting the safety of operators.
[0012] Preferably, the interior of hydraulic block five is connected to the interior of hydraulic block six via hose three.
[0013] Preferably, the diameter of the drill bit is smaller than the diameter of the material container outlet.
[0014] This invention provides a dumping device for chemical raw materials in drums. It has the following beneficial effects: (1) The chemical raw material unloading equipment starts the electric telescopic rod, and works with the L-shaped slider, triangular push block, hydraulic block one, hose one, hydraulic block two, rack, gear, rotating shaft one, and fixed plate one to make the L-shaped slider move inward, so that the arc rotating plate rotates and the two sides of the material barrel are fixed, thereby making the equipment safer to use.
[0015] (2) When the L-shaped slider moves inward, it works in conjunction with push block one, spring, hydraulic block three, hose two, hydraulic block four, push block two, rotating block, rotating shaft two, and fixed plate three to make the rotating plate rotate and close, so that the suction equipment removes the volatile raw material gas, thereby protecting the safety of the operator.
[0016] (3) When the L-shaped slider moves inward, the circular arc push block, hydraulic block five, hose three, hydraulic block six, and fixed plate four work together to make the drill bit move downward to pierce the sealed discharge port of the material barrel, thereby saving manpower and protecting the safety of the operators. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the overall internal structure of the present invention; Figure 3 This is a schematic diagram of some of the components of the present invention; Figure 4 This is a schematic diagram of another component structure of the present invention; Figure 5 This is a schematic diagram of the anti-volatile component structure of the present invention; Figure 6 For the present invention Figure 5 Enlarged structural diagram at point A in the middle; Figure 7 This is a schematic diagram of the structure of the breaking component of the present invention; Figure 8 For the present invention Figure 7 Enlarged structural diagram at point B.
[0018] In the picture: 100. Base plate; 200. Slide rail; 300. Lead screw; 400. Movable plate; 500. Rotating device; 600. Rear fixing device; 700. Front fixing device; 800. Flow guiding device; 901. Slide groove; 902. Electric telescopic rod; 903. L-shaped slider; 904. Triangular push block; 905. Hydraulic block one; 906. Hose one; 907. Hydraulic block two; 908. Rack; 909. Gear; 910. Rotating shaft one; 911. Fixing plate one; 912. Arc-shaped rotating plate; 913. Arc-shaped positioning plate; 1000. Anti-volatile component; 1001. Push block one; 1002. Spring; 1003. Hydraulic block three; 1004. Hose two; 1005. Fixing plate two; 1006. Hydraulic block four; 1007. Push block two; 1008. Rotating block; 1009. Rotating shaft two; 1010. Fixing plate three; 1011. Rotating plate; 1012. Suction device; 1013. Baffle; 1100. Breaking assembly; 1101. Arc pusher block; 1102. Hydraulic block five; 1103. Hose three; 1104. Hydraulic block six; 1105. Fixing plate four; 1106. Drill bit. Detailed Implementation
[0019] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0020] Example 1, please refer to Figures 1-4 A chemical drum raw material unloading device, comprising: A base plate 100 has a slide rail 200 slidably connected to its right side. A lead screw 300 is threaded into the base plate 100, allowing it to move up and down. A movable plate 400 is hinged to the top of the base plate 100. A rotating device 500 is movably connected to the bottom of the base plate 100, allowing the movable plate 400 to flip, thus creating a material discharge effect. The movable plate 400 is fixedly connected to the top of the rotating device 500, and a rear fixed device is movably connected to the right side of the movable plate 400. The device 600 is equipped with a rear fixing device 600 to fix the rear side of the material bucket. The left side of the movable plate 400 is movably connected to a front fixing device 700 to fix the front side of the material bucket. The top of the front fixing device 700 is movably connected to a flow guiding device 800 to prevent the material from splashing when the material bucket is tilted and poured. The top of the flow guiding device 800 is fixedly connected to an anti-volatile component 1000, and the right side of the flow guiding device 800 is movably connected to a breaking component 1100.The front and rear surfaces of the movable plate 400 are provided with sliding grooves 901. An electric telescopic rod 902 is fixedly connected to the rear side of the sliding groove 901. An L-shaped slider 903 is fixedly connected to the front side of the electric telescopic rod 902. The L-shaped slider 903 is slidably connected to the movable plate 400 through the sliding groove 901. A triangular push block 904 is movably connected to the rear side of the sliding groove 901. A hydraulic block 905 is movably connected to the rear side of the triangular push block 904. The outer side of the hydraulic block 905 is fixedly connected to the interior of the movable plate 400. The interior of the hydraulic block 905 is connected to the hydraulic system through a hose 906. The rear side of hydraulic block 907 is fixedly connected to the rear side of the hydraulic block 907, which is fixedly connected to the front surface of the L-shaped slider 903. A rack 908 is movably connected to the front side of hydraulic block 907. The rack 908 is movably connected to the arc-shaped rotating plate 912 via a transmission component. The transmission component includes a gear 909, a rotating shaft 910, a fixed plate 911, and an arc-shaped positioning plate 913. A fixed plate 911 is fixedly connected to the rear side of the L-shaped slider 903. A rotating shaft 910 is movably connected through the fixed plates 911. A gear 909 is fixedly connected to the bottom of the rotating shaft 910. 9. Gear 909 meshes with rack 908. An arc-shaped rotating plate 912 is fixedly connected to the outer side of rotating shaft 910. An arc-shaped positioning plate 913 is fixedly connected to the front side of L-shaped slider 903. The arc-shaped positioning plate 913 is set to initially align the left and right sides of the material bucket. There are two slide grooves 901, two electric telescopic rods 902, two L-shaped sliders 903, and four triangular push blocks 904, with two triangular push blocks 904 forming a group. There are four hydraulic blocks 905 and four hoses 906. The system comprises four hydraulic blocks 907, four racks 908, four gears 909, four rotating shafts 910, eight fixing plates 911 (two fixing plates 911 form a group), four arc-shaped rotating plates 912, and two arc-shaped positioning plates 913. The arc-shaped rotating plates 912 and the arc-shaped positioning plates 913 secure both sides of the material bucket, preventing it from detaching during tilting due to internal liquid movement, thus ensuring a safer and more stable unloading process.
[0021] When the equipment begins unloading, place the material bin on the movable plate 400. After starting, fix the equipment 600 and simultaneously activate the electric telescopic rod 902. This causes the L-shaped slider 903 to slide inward, bringing the arc-shaped positioning plate 913 into contact with the left and right sides of the material bin. This moves the triangular push block 904 inward, increasing the internal pressure of hydraulic block one 905. The pressure inside hydraulic block one 905 is then transmitted through hose one 906 to hydraulic block two 907, increasing the internal pressure of hydraulic block two 907. This causes the rack 908 to push backward, pushing the rack... Rotating wheel 909 causes rotating shaft 910 to rotate, which in turn causes the arc-shaped rotating plate 912 to rotate and close, fixing the left and right sides of the material bucket. At this time, starting the front fixing device 700 connects the flow guiding device 800 to the material bucket outlet. Starting the rotating device 500 causes the movable plate 400 to rotate, allowing the liquid material to flow along the flow guiding device 800 into the reaction vessel on the lower side. This prevents the material bucket from falling off due to the shaking of the liquid material inside during the overturning process, making the unloading process safer and more stable.
[0022] Example 2, please refer to Figures 1-6Based on Embodiment 1, the anti-volatile component 1000 includes a push block 1001, a spring 1002, a hydraulic block 3 1003, a hose 2 1004, a fixing plate 2 1005, a hydraulic block 4 1006, a push block 2 1007, a rotating block 1008, a rotating shaft 2 1009, a fixing plate 3 1010, a rotating plate 1011, a suction device 1012, and a baffle 1013. The hydraulic block 3 1003 is fixedly connected to the rear surface of the slide 901, and the push block 1001 is movably connected to the front side of the hydraulic block 3 1003. A spring 1002 is fixedly connected between the push block 1 1001 and the hydraulic block 3 1003. The spring 1002 is provided to allow the push block 1 1001 to... The hydraulic block 1003 is reset, and one end of the hose 1004 is fixedly connected to the rear side of the hydraulic block 3. The other end of the hose 1004 is fixedly connected to the top of the hydraulic block 4 1006. The hose 1004 is installed so that the interior of the hydraulic block 3 1003 communicates with the interior of the hydraulic block 4 1006. The top of the hydraulic block 4 1006 is fixedly connected to the outside of the flow guiding device 800 through the fixing plate 2 1005. The bottom of the hydraulic block 4 1006 is movably connected to the push block 2 1007. The front side of the push block 2 1007 is fixedly connected to the rotating block 1008. The outside of the flow guiding device 800 is fixedly connected to the baffle 1013. The two sides of the baffle 1013 are fixedly connected to the fixing plate 3 1010. A rotating shaft 1009 is movably connected between points 010 and 1010. A rotating block 1008 is fixedly connected to the rear side of the rotating shaft 1009. A rotating plate 1011 is fixedly connected to the outer side of the rotating shaft 1009. A suction device 1012 is fixedly connected inside the rotating plate 1011. The suction device 1012 is installed so that the volatile material gas is sucked away by the suction device 1012. Three suction ports are provided on the inner side of the suction device 1012. There are two push blocks 1001, two springs 1002, two hydraulic blocks 1003, two hoses 1004, two fixing plates 1005, and two hydraulic blocks 1006. There are two push blocks 1007, two rotating blocks 1008, two rotating shafts 1009, four fixing plates 1010, with two fixing plates 1010 forming a group, two rotating plates 1011, and two suction devices 1012. An anti-volatile component 1000 is set up to make the rotating plates 1011 rotate, so that the rotating plates 1011 and the baffles 1013 form a three-sided sealed space, so that the liquid material splashed during the unloading process will not fall directly to the outside of the reactor, making the equipment safer to use. At the same time, the harmful gases volatilized from the liquid material are absorbed by the suction devices 1012, making the equipment operating environment safer.
[0023] In use, based on Example 1, when the L-shaped slider 903 moves inward, the push block 1001 moves inward, increasing the internal pressure of the hydraulic block 3 1003. This internal pressure is then transmitted to the hydraulic block 4 1006 via the hose 2 1004, increasing the internal pressure of the hydraulic block 4 1006. This causes the push block 2 1007 to push downward, rotating the rotating block 1008. The rotating shaft 2 1009 follows the rotating block 1008, causing the rotating plate 1011 to rotate and close. This activates the suction device 1012, creating a three-sided sealed space between the rotating plate 1011 and the baffle 1013. This prevents the liquid material splashed during unloading from falling directly onto the outside of the reactor, making the equipment safer to use. Simultaneously, the harmful gases volatilized from the liquid material are absorbed by the suction device 1012, making the operating environment safer.
[0024] Example 3, please refer to Figures 1-8 Based on Embodiments 1 and 2, the breaking assembly 1100 includes an arc-shaped push block 1101, a hydraulic block 5 1102, a hose 3 1103, a hydraulic block 6 1104, a fixing plate 4 1105, and a drill bit 1106. The arc-shaped push block 1101 is movably connected to the inner side of the rear sliding groove 901. The hydraulic block 5 1102 is movably connected to the rear side of the arc-shaped push block 1101. The outer side of the hydraulic block 5 1102 is fixedly connected to the inner side of the movable plate 400. The rear side of the hydraulic block 5 1102 is fixedly connected to one end of the hose 3 1103. The other end of the hose 3 1103 is fixedly connected to the top of the hydraulic block 6 1104. The interior of the pressure block 5 1102 is connected to the interior of the hydraulic block 6 1104 via the hose 3 1103. The exterior of the hydraulic block 6 1104 is fixedly connected to the right side of the diversion device 800 via the fixing plate 4 1105. A drill bit 1106 is movably connected to the bottom of the hydraulic block 6 1104. The drill bit 1106 is set so that the sealed discharge port of the material bucket is pierced by the drill bit 1106. The diameter of the drill bit 1106 is smaller than the diameter of the discharge port of the material bucket. A breaking component 1100 is set so that the sealed discharge port at the top of the material bucket is pierced by the drill bit 1106, making subsequent unloading more convenient, reducing manual operation, and thus protecting the safety of operators.
[0025] In use, based on Embodiment 1 and Embodiment 2, as the L-shaped slider 903 moves inward, the arc-shaped push block 1101 moves inward, increasing the internal pressure of hydraulic block five 1102. This internal pressure is then transmitted through hose three 1103 to hydraulic block six 1104, increasing the internal pressure of hydraulic block six 1104. This causes the drill bit 1106 to push downward, breaking the sealed discharge port at the top of the material bucket. This makes subsequent unloading more convenient, reduces manual operation, and protects the safety of operators.
[0026] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A chemical drum-type raw material unloading device, characterized in that, The utility model relates to a kind of rotary equipment, including: Bottom plate, the right side sliding connection of the bottom plate is slid rail, the inside screw connection of the bottom plate is lead screw, the top hinged of the bottom plate is movable plate; The front side and rear surface of the movable plate are provided with sliding slot, the rear side fixed connection of the sliding slot is electric telescopic rod, the front side fixed connection of the electric telescopic rod is L type sliding block, the L type sliding block is slidably connected with movable plate by sliding slot, the rear side movable connection of the sliding slot is hydraulic block one, the outside of the hydraulic block one is fixedly connected with the inside of the movable plate, the inside of the hydraulic block one is fixedly connected with the rear side of hydraulic block two by hose one, the rear side of the hydraulic block two is fixedly connected with the front surface of L type sliding block, the front side movable connection of the hydraulic block two is rack, the rack is movably connected with arc-shaped rotating plate by transmission part.
2. The barrel material unloading apparatus for chemical industry according to claim 1, characterized in that: The transmission part includes gear, shaft one, fixed plate one, arc-shaped positioning plate, the rear side fixed connection of the L type sliding block is fixed plate one, the shaft one is movably connected between the fixed plate one and penetrates, the bottom of the shaft one is fixedly connected with gear, the gear is engaged with rack, the outside of the shaft one is fixedly connected with arc-shaped rotating plate, the front side fixed connection of the L type sliding block is arc-shaped positioning plate.
3. The barrel material unloading apparatus for chemical industry according to claim 1, characterized in that: The bottom movable connection of the bottom plate is rotary equipment, the top fixed connection of the rotary equipment is movable plate, the right side movable connection of the movable plate is rear fixed equipment, the left side movable connection of the movable plate is front fixed equipment, the top movable connection of the front fixed equipment is flow guide equipment, the top fixed connection of the flow guide equipment is anti-volatilization component, the right side movable connection of the flow guide equipment is broken mouth component.
4. The barrel material unloading apparatus for chemical industry according to claim 1, characterized in that: The number of the sliding slot is two, the number of the electric telescopic rod is two, the number of the L type sliding block is two, the number of the triangular push block is four, every two the triangular push block is a group, the number of the hydraulic block one is four, the number of the hose one is four, the number of the hydraulic block two is four, the number of the rack is four, the number of the gear is four, the number of the shaft one is four, the number of the fixed plate one is eight, every two the fixed plate one is a group, the number of the arc-shaped rotating plate is four, the number of the arc-shaped positioning plate is two.
5. The barrel material unloading apparatus for chemical industry according to claim 3, characterized in that: The anti-volatilization assembly includes a push block one, a spring, a hydraulic block three, a hose two, a fixed plate two, a hydraulic block four, a push block two, a rotating block, a rotating shaft two, a fixed plate three, a rotating plate, a air suction equipment, a baffle, the rear surface of the chute is fixedly connected with the hydraulic block three, the front side of the hydraulic block three is movably connected with the push block one, the push block one and the hydraulic block three are fixedly connected with the spring, one end of the hose two is fixedly connected with the rear side of the hydraulic block three, the other end of the hose two is fixedly connected with the top of the hydraulic block four, the top of the hydraulic block four is fixedly connected with the outside of the flow guide device through the fixed plate two, the bottom of the hydraulic block four is movably connected with the push block two, the front side of the push block two is fixedly connected with the rotating block, the outside of the flow guide device is fixedly connected with the baffle, the two sides of the baffle are fixedly connected with the fixed plate three, the rotating shaft two is movably connected between the fixed plate three, the rear side of the rotating shaft two is fixedly connected with the rotating block, the outside of the rotating shaft two is fixedly connected with the rotating plate, and the inside of the rotating plate is fixedly connected with the air suction equipment.
6. The barrel material unloading apparatus for chemical industry according to claim 5, characterized in that: The number of the push block one is two, the number of the spring is two, the number of the hydraulic block three is two, the number of the hose two is two, the number of the fixed plate two is two, the number of the hydraulic block four is two, the number of the push block two is two, the number of the rotating block is two, the number of the rotating shaft two is two, the number of the fixed plate three is four, every two fixed plate three is a group, the number of the rotating plate is two, and the number of the air suction equipment is two.
7. The drummed material pouring apparatus according to claim 5, characterized in that: The inside of the air suction equipment is provided with three air suction ports.
8. The barrel material unloading apparatus for chemical industry according to claim 5, characterized in that: The broken hole assembly includes a circular arc push block, a hydraulic block five, a hose three, a hydraulic block six, a fixed plate four and a drill bit, the inside of the rear chute is movably connected with the circular arc push block, the rear side of the circular arc push block is movably connected with the hydraulic block five, the outside of the hydraulic block five is fixedly connected with the inside of the movable plate, one end of the hose three is fixedly connected with the rear side of the hydraulic block five, the other end of the hose three is fixedly connected with the top of the hydraulic block six, the outside of the hydraulic block six is fixedly connected with the right side of the flow guide device through the fixed plate four, and the bottom of the hydraulic block six is movably connected with the drill bit.
9. The barrel material unloading apparatus for chemical industry according to claim 8, characterized in that: The inside of the hydraulic block five is communicated with the inside of the hydraulic block six through the hose three.
10. The chemical raw material pouring device according to claim 8, characterized in that: The diameter of the drill bit is smaller than the diameter of the material barrel discharge port.
Citation Information
Patent Citations
Pouring device for barreled raw materials for chemical engineering
CN108792652A