A high-efficiency concrete aggregate processing equipment
By introducing a combination of a clamping device and a crushing roller into the concrete aggregate processing equipment, along with a throwing device and a vibration mechanism, the problem of low crushing efficiency of large concrete blocks is solved, and efficient concrete block pretreatment and aggregate separation are achieved.
Patent Information
- Application Number
- CN202411476501.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2044-10-22
AI Technical Summary
Existing concrete aggregate processing equipment has low crushing efficiency when processing concrete blocks of different sizes, especially large concrete blocks.
Large concrete blocks are crushed using a pre-treatment mechanism with a crushing component. The crushed concrete blocks are further crushed using a crushing roller. The separation efficiency is improved by combining a throwing component and a vibration mechanism. Coarse and fine aggregates are separated by a filter plate.
It improves the crushing efficiency of concrete blocks, realizes the pretreatment of concrete blocks, ensures that large concrete blocks are crushed into smaller pieces before crushing, improves processing efficiency, and improves the separation effect of coarse and fine aggregates.
Smart Images

Figure CN119303703B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of concrete processing technology, and in particular to a high-efficiency concrete aggregate processing equipment. Background Technology
[0002] Concrete is one of the most important civil engineering materials in modern times. It refers to a general term for engineering composite materials in which aggregates are bound together by cementing materials. The term "concrete" usually refers to cement concrete, also known as ordinary concrete, which is made by mixing cement as the cementing material, sand and gravel as aggregates, and water (which may contain admixtures and additives) in a certain proportion. It is widely used in civil engineering. Waste concrete blocks, after being crushed, washed, and graded, are mixed with graded aggregates in a certain proportion, partially or completely replacing natural aggregates such as sand and gravel (mainly coarse aggregates). Then, cement and water are added to form new concrete. Currently, in concrete aggregate processing, most methods first crush the aggregates using crushing rollers, and then separate the sand, gravel, and mud using screens. However, when using crushing rollers to crush concrete blocks, the blocks are often of varying sizes, and some are quite large. Directly feeding them onto the crushing rollers results in low crushing efficiency. Therefore, there is an urgent need for concrete aggregate processing equipment that can improve crushing efficiency. Summary of the Invention
[0003] The present invention aims to at least solve one of the technical problems existing in the prior art. To this end, the present invention proposes a high-efficiency concrete aggregate processing equipment that can pre-treat concrete blocks to improve processing efficiency.
[0004] A high-efficiency concrete aggregate processing device according to an embodiment of the present invention includes:
[0005] A processing box, wherein a feed inlet is provided at the top of the processing box, and a first filter plate is provided inside the processing box below the feed inlet;
[0006] The pretreatment mechanism includes a material-binding component and a driving component. There are two material-binding components, which are located on the left and right sides above the first filter plate, respectively. The driving component is arranged corresponding to the material-binding component and is used to drive the material-binding component to reciprocate left and right. Multiple binding rods are provided on the opposite sides of the two material-binding components. The binding rods are used to crush the material.
[0007] Two crushing rollers are rotatably disposed inside the processing box and located on the left and right sides below the first filter plate. The two crushing rollers can cooperate to crush the material passing through the first filter plate.
[0008] The second filter plate is inclinedly disposed below the two crushing rollers, and the size of the filter holes on the second filter plate is smaller than the size of the filter holes on the first filter plate;
[0009] The processing box has a first discharge port at the inclined bottom end of the second filter plate and a second discharge port on the lower side of the second filter plate.
[0010] The high-efficiency concrete aggregate processing equipment according to embodiments of the present invention has at least the following beneficial effects:
[0011] In operation, the drive unit and the power mechanism that drives the crushing rollers are activated. Concrete blocks are then poured into the processing tank through the feed inlet. After entering the processing tank, concrete blocks smaller than the filter hole size of the first filter plate will pass directly through the first filter plate and fall onto the crushing rollers, while concrete blocks larger than the filter hole size of the first filter plate will be retained on the first filter plate. At this time, the two crushing components reciprocate in a direction that moves closer or further away from each other under the drive of the drive unit, continuously crushing the concrete blocks. The crushed concrete blocks can pass through the first filter plate and fall onto the two crushing rollers, where they are crushed. The crushed concrete blocks become smaller aggregates and fall onto the second filter plate. Larger aggregates are retained by the second filter plate and roll out from the first discharge port, while smaller aggregates pass through the second filter plate and are discharged from the first discharge port. This completes the crushing of concrete blocks and the separation of coarse and fine aggregates. With the above setup, large concrete blocks can be crushed by two clamping devices before the crushing roller crushes them, thus pre-treating the concrete blocks before they are crushed by the crushing roller, resulting in high processing efficiency.
[0012] According to some embodiments of the present invention, the crushing roller is provided with a plurality of first crushing teeth along its circumference, and the processing box is provided with crushing plates on opposite sides of the two crushing rollers respectively. The crushing plates are vertically distributed, and the side of the crushing plate facing the crushing roller is provided with a plurality of vertically spaced second crushing teeth. The second crushing teeth are used to cooperate with the first crushing teeth to crush the material.
[0013] According to some embodiments of the present invention, a material throwing member is also included, which is disposed on the lower side between the two crushing rollers and is used to strike the material falling between the two crushing rollers onto the crushing plate.
[0014] According to some embodiments of the present invention, the material throwing component includes a rotating shaft that extends back and forth and can rotate about its own axis. A plurality of material throwing plates are arranged along the circumferential wall of the rotating shaft. The material throwing plates extend back and forth. During the rotation of the rotating shaft, the material throwing plates can strike the material falling between the two crushing rollers onto one of the crushing plates.
[0015] According to some embodiments of the present invention, the material throwing plate is configured as an arc shape, and the center line of the arc of the material throwing plate extends front and back.
[0016] According to some embodiments of the present invention, the side of the material ejector plate that interacts with the material is fixed with a blade, and the blade is provided with a plurality of blades spaced apart at intervals.
[0017] According to some embodiments of the present invention, the processing box is provided with a receiving plate on the periphery of the throwing member, the top of the receiving plate is lower than the highest point of the rotation path of the throwing plate, and the receiving plate is used to receive the material falling from the throwing member. When the rotating shaft rotates, the throwing plate can push the material received by the receiving plate to another crushing plate.
[0018] According to some embodiments of the present invention, the receiving plate includes a first guide plate and a second guide plate. The first guide plate is configured as an arc, and the center line of the arc of the first guide plate is collinear with the center line of the rotating shaft. The first guide plate extends from the discharge side of the material throwing member to the lower side of the material throwing member. The second guide plate is horizontally fixed to the bottom end of the first guide plate and is tangent to the first guide plate.
[0019] According to some embodiments of the present invention, a vibration mechanism is also included, which is used to drive the second filter plate to vibrate.
[0020] According to some embodiments of the present invention, a rinsing mechanism is also included, the rinsing mechanism including a rinsing nozzle for rinsing the material on the second filter plate.
[0021] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein:
[0023] Figure 1 This is a schematic diagram of the installation structure according to an embodiment of the present invention;
[0024] Figure 2 This is a schematic diagram of the structure of the material-spinning component according to an embodiment of the present invention;
[0025] Figure 3 This is a schematic diagram of the structure of the material-binding component and the baffle plate according to an embodiment of the present invention.
[0026] Icon labels:
[0027] Processing box 100, feed inlet 101, first discharge outlet 102, second discharge outlet 103, first filter plate 110, crushing plate 120, second crushing tooth 121, receiving plate 130, first guide plate 131, second guide plate 132, baffle plate 140;
[0028] Binding component 200, driving component 201, binding rod 210, fixing plate 220;
[0029] Crushing roller 300, first crushing tooth 301;
[0030] Second filter plate 400;
[0031] 500 material ejector, 510 rotating shaft, 520 material ejector plate, 530 blade;
[0032] Vibration mechanism 600;
[0033] 700 shower head;
[0034] Separation box 800, third filter plate 810. Detailed Implementation
[0035] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0036] In the description of this invention, it should be understood that the orientation descriptions, such as up, down, etc., are based on the orientation or positional relationship shown in the drawings and are only for the convenience of describing this invention and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.
[0037] In the description of this invention, "multiple" refers to two or more. The use of "first" and "second" is for distinguishing technical features only and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features or their sequential relationship.
[0038] In the description of this invention, unless otherwise explicitly defined, terms such as "set up," "install," and "connect" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this invention in conjunction with the specific content of the technical solution.
[0039] Reference Figures 1 to 3 As shown, an embodiment of the present invention provides a high-efficiency concrete aggregate processing equipment, comprising: a processing box 100, a pretreatment mechanism, a crushing roller 300, and a second filter plate 400.
[0040] The top of the processing box 100 is provided with a feed inlet 101. Inside the processing box 100, below the feed inlet 101, there is a first filter plate 110.
[0041] The pretreatment mechanism includes two binding components 200 and two driving components 201. The two binding components 200 are located on the left and right sides above the first filter plate 110, respectively. The driving components 201 are corresponding to the binding components 200 and are used to drive the binding components 200 to reciprocate left and right. In this embodiment, there are two driving components 201, each connected to one of the two binding components 200. The two driving components 201 can cooperate to drive the two binding components 200 to reciprocate in directions that are closer to or further away from each other. Each of the two binding components 200 has multiple binding rods 210 on its opposing sides. The binding rods 210 are used to crush the material. Specifically, in this embodiment, the binding rods 210 are cone-shaped to facilitate crushing the material. It is conceivable that the driving component 201 can be a telescopic motor, a hydraulic cylinder, or a pneumatic cylinder.
[0042] Two crushing rollers 300 are provided, both rotatably mounted inside the processing box 100. The rotation axis of the crushing rollers 300 extends back and forth. The two crushing rollers 300 are located on the left and right sides below the first filter plate 110, and the two crushing rollers 300 rotate in opposite directions. The two crushing rollers 300 can cooperate to crush the material passing through the first filter plate 110. It is conceivable that the crushing rollers 300 are connected to a power mechanism that drives their rotation, which can be an electric motor.
[0043] The second filter plate 400 is inclined and located below the two crushing rollers 300. The size of the filter holes on the second filter plate 400 is smaller than the size of the filter holes on the first filter plate 110.
[0044] In addition, the processing box 100 has a first discharge port 102 at the inclined bottom end of the second filter plate 400, and a second discharge port 103 on the lower side of the second filter plate 400.
[0045] In use, the power mechanism that drives the drive unit 201 and the crushing roller 300 to rotate starts working. Then, concrete blocks are poured into the processing box 100 from the feed inlet 101. After entering the processing box 100, concrete blocks smaller than the filter hole size of the first filter plate 110 will pass directly through the first filter plate 110 and fall onto the crushing roller 300, while concrete blocks larger than the filter hole size of the first filter plate 110 will be trapped on the first filter plate 110. At this time, the two clamping parts 200 move towards each other or away from each other under the drive of the drive unit 201. The reciprocating motion continuously crushes the concrete blocks. The crushed concrete blocks pass through the first filter plate 110 and fall onto two crushing rollers 300, where they are further crushed. The crushed concrete blocks are then broken into smaller aggregates, which fall onto the second filter plate 400. Larger aggregates are retained by the second filter plate 400 and roll out through the first discharge port 102, while smaller aggregates pass through the second filter plate 400 and are discharged through the first discharge port 102. This process completes the crushing of the concrete blocks and the separation of coarse and fine aggregates. With this setup, before the crushing rollers 300, two clamping elements 200 can crush some large concrete blocks, reducing them to smaller sizes, thus achieving pre-treatment of the concrete blocks before they are crushed by the crushing rollers 300, resulting in high processing efficiency.
[0046] It is understood that the binding component 200 is provided with a fixing plate 220, and the binding rod 210 is set on the fixing plate 220. The fixing plate 220 is connected to the driving end of the driving component 201. In order to prevent concrete blocks from adhering to the binding rod 210, in this embodiment, the processing box 100 is provided with baffle plates 140 on the left and right sides above the first filter plate 110, and the fixing plates 220 of the two binding components 200 are respectively located on the opposite sides of the two baffle plates 140. The baffle plates 140 are provided with through holes that allow the binding rod 210 to pass through, and the through holes are set one-to-one with the binding rod 210.
[0047] Reference Figure 1As shown, in some embodiments of the present invention, the crushing roller 300 is provided with a plurality of first crushing teeth 301 along its circumference. When the two crushing rollers 300 rotate, the material falling between the two crushing rollers 300 is crushed by the cooperation of the first crushing teeth 301 on the two crushing rollers 300. However, generally speaking, the size of the first filter plate 110 in the left-right direction is not too small. The concrete blocks passing through the first filter plate 110 will not all fall into the upper side between the two crushing rollers 300, but a portion will fall into the opposite side of the two crushing rollers 300. This portion of concrete blocks cannot be crushed by the two crushing rollers 300. In order to better crush this portion of concrete blocks... In this embodiment, a crushing plate 120 is provided on the opposite sides of two crushing rollers 300 inside the processing box 100. The crushing plates 120 are vertically distributed, and a plurality of vertically spaced second crushing teeth 121 are provided on the side of the crushing plate 120 facing the crushing roller 300. The second crushing teeth 121 are used to cooperate with the first crushing teeth 301 on the crushing roller 300 to crush the material. With the above structural arrangement, even if the concrete block falls into the opposite sides of the two crushing rollers 300, it can still be crushed by the cooperation of the crushing roller 300 and the crushing plate 120, ensuring that the concrete block can be fully crushed.
[0048] Reference Figure 1 As shown, in some embodiments of the present invention, the high-efficiency concrete aggregate processing equipment further includes a throwing member 500. The throwing member 500 is located on the lower side between the two crushing rollers 300. The throwing member 500 is used to strike the material falling between the two crushing rollers 300 onto the crushing plate 120. It can be understood that the concrete block after being crushed by the two crushing rollers 300 is decomposed into aggregate. Typically, the aggregate includes materials such as sand, stone, and mud. Inevitably, some sand and mud will adhere to the stone. In order to better separate the sand, stone, mud, and other materials from each other, this embodiment provides a throwing member 500 on the lower side of the two crushing rollers 300. When the concrete block is crushed into aggregate by the two crushing rollers 300 and falls, the throwing member 500 can strike the aggregate, causing the aggregate to be thrown onto the crushing plate 120 and impacting the second crushing tooth 121 on the crushing plate 120. Under the action of the impact force, the different aggregates that are adhered together are separated from each other, improving the separation effect of the aggregate.
[0049] Reference Figure 1 and Figure 2As shown, in some specific embodiments of the present invention, the material throwing component 500 includes a rotating shaft 510, which extends back and forth and can rotate around its own axis. A plurality of material throwing plates 520 are provided on the peripheral wall of the rotating shaft 510. The plurality of material throwing plates 520 are arranged circumferentially along the rotating shaft 510. The material throwing plates 520 extend back and forth, and during the rotation of the rotating shaft 510, they can strike the material falling between the two crushing rollers 300 onto one of the crushing plates 120. In this embodiment, as... Figure 1 As shown, the rotating shaft 510 rotates clockwise, and the throwing plate 520, as it rotates with the rotating shaft 510, can strike the material falling between the two crushing rollers 300 onto the crushing plate 120 on the right side. It can be understood that, in order to ensure that the throwing plate 520 can strike the material onto the crushing plate 120 and cause it to collide with the second crushing teeth 121, in this embodiment, the second crushing teeth 121 are distributed on both the upper and lower sides of the throwing member 500 in the vertical direction.
[0050] Reference Figure 1 and Figure 2 As shown, in some embodiments of the present invention, the throwing plate 520 is configured in an arc shape, and the center line of the arc of the throwing plate 520 extends back and forth. Compared with configuring the throwing plate 520 in a flat shape, this can more effectively strike the material onto the crushing plate 120. In this embodiment, as... Figure 1 As shown, when the rotating shaft 510 rotates clockwise, and any one of the throwing plates 520 moves to directly above the rotating shaft 510, the arc center line of the throwing plate 520 is located at the lower left of the throwing plate 520, so that the material can be hit by the throwing plate 520 onto the crushing plate 120 on the right.
[0051] Reference Figure 1 and Figure 2 As shown, in some embodiments of the present invention, a blade 530 is fixed on the side of the throwing plate 520 that interacts with the material. Multiple blades 530 are spaced apart in front and behind. By setting the blades 530, the material can be cut by the blades 530 while the throwing plate 520 is hitting the material, thereby weakening the adhesion between the materials that are stuck together. When the material subsequently hits the crushing plate 120, it can be separated more fully, thus improving the separation effect.
[0052] Reference Figure 1 and Figure 2 As shown, in some embodiments of the present invention, the processing box 100 is provided with a receiving plate 130 on the periphery of the throwing member 500. The receiving plate 130 is used to receive the material falling from the throwing member 500. The top of the receiving plate 130 is lower than the highest point of the rotation path of the throwing plate 520. When the rotating shaft 510 rotates, the throwing plate 520 can push the material received by the receiving plate 130 onto another crushing plate 120, that is, as shown in the figure. Figure 1The material is shown on the left-hand crushing plate 120. It is understood that when material falls between the two crushing rollers 300, only material that comes into contact with the side of the throwing plate 520 that can exert a pushing force on the material will be struck and thrown onto one of the crushing plates 120 (the right-hand crushing plate 120 in this embodiment). Material that comes into contact with the other side of the throwing plate 520 that cannot exert a pushing force will fall directly onto the second filter plate 400. To reduce this situation, this embodiment provides a receiving plate 130 around the throwing member 500 to catch the material that is not thrown out by the throwing plate 520. The subsequent rotating throwing plate 520 then pushes the material on the receiving plate 130 onto the other crushing plate 120 (the left-hand crushing plate 120 in this embodiment). This improves the separation effect of coarse and fine aggregates in the material.
[0053] Reference Figure 1 As shown, in some embodiments of the present invention, the receiving plate 130 includes a first guide plate 131 and a second guide plate 132. The first guide plate 131 is arc-shaped, and the center line of the arc of the first guide plate 131 is collinear with the center line of the rotating shaft 510. The first guide plate 131 extends from the discharge side of the throwing member 500 to the lower side of the throwing member 500. In this embodiment, the discharge side of the throwing member 500 is the right side of the throwing member 500. The discharge side of the throwing member 500 refers to the side where the material falling between the two crushing rollers 300 is struck and thrown out by the throwing plate 520. The second guide plate 132 is horizontally fixed to the bottom of the first guide plate 131. The first guide plate 131 and the second guide plate 132 are tangential to each other. With this configuration, material falling between the two crushing rollers 300 without being directly struck and ejected by the throwing plate 520 can be caught by the first guide plate 131. The material slides along the first guide plate 131 onto the second guide plate 132. The subsequently rotating throwing plate 520 then pushes the material on the second guide plate 132 out. Because the second guide plate 132 is horizontally positioned, the ejected material has an initial horizontal velocity, ensuring that the material caught by the receiving plate 130 can be pushed onto another crushing plate 120 (the left crushing plate 120 in this embodiment). Specifically, the first guide plate 131 and the second guide plate 132 are configured as a single unit.
[0054] Reference Figure 1As shown, in some embodiments of the present invention, the high-efficiency concrete aggregate processing equipment further includes a vibration mechanism 600. The vibration mechanism 600 drives the second filter plate 400 to vibrate. On the one hand, the vibration of the second filter plate 400 can more fully separate the coarse and fine aggregates in the material. On the other hand, it can also make the material trapped by the second filter plate 400 roll out more smoothly from the first discharge port 102 along the second filter plate 400, so as to avoid the material accumulating on the second filter plate 400 and causing blockage. Specifically, the vibration mechanism 600 can be configured as a telescopic motor, and the reciprocating extension and retraction of the telescopic end of the telescopic motor drives the second filter plate 400 to vibrate.
[0055] Reference Figure 1 As shown, in some embodiments of the present invention, the high-efficiency concrete aggregate processing equipment further includes a rinsing mechanism. The rinsing mechanism includes a rinsing nozzle 700, which is located inside the processing box 100 and above the second filter plate 400. The rinsing nozzle 700 is used to rinse the material on the second filter plate 400, thereby more effectively separating the fine aggregate (sand and mud) from the coarse aggregate (stone) in the material and allowing it to pass through the second filter plate 400, thus improving the material separation effect. Furthermore, the high-efficiency concrete aggregate processing equipment also includes a separation box 800 with an opening on the upper side. A third filter plate 810 is installed inside the separation box 800. The size of the filter holes of the third filter plate 810 is smaller than that of the filter holes of the second filter plate 400. The separation box 800 is located below the second discharge port 103 and is used to receive fine aggregates. By setting the third filter plate 810, sand in the fine aggregates can be intercepted, while mud and water can pass through the third filter plate 810 and enter the lower side of the third filter plate 810, thus further screening the materials.
[0056] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.
[0057] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A high-efficiency concrete aggregate processing equipment, characterized in that, include: A processing box, wherein a feed inlet is provided at the top of the processing box, and a first filter plate is provided inside the processing box below the feed inlet; The pretreatment mechanism includes a material-binding component and a driving component. There are two material-binding components, which are located on the left and right sides above the first filter plate, respectively. The driving component is arranged corresponding to the material-binding component and is used to drive the material-binding component to reciprocate left and right. Multiple binding rods are provided on the opposite sides of the two material-binding components. The binding rods are used to crush the material. Two crushing rollers are rotatably mounted inside the processing box and located on the left and right sides below the first filter plate. The two crushing rollers can cooperate to crush the material passing through the first filter plate. Each crushing roller has a plurality of first crushing teeth along its circumference. A crushing plate is provided on the opposite side of the two crushing rollers inside the processing box. The crushing plate is vertically distributed. On the side of the crushing plate facing the crushing roller, a plurality of second crushing teeth are arranged vertically at intervals. The second crushing teeth are used to cooperate with the first crushing teeth to crush the material. The second filter plate is inclinedly disposed below the two crushing rollers, and the size of the filter holes on the second filter plate is smaller than the size of the filter holes on the first filter plate; A material throwing component is disposed on the lower side between the two crushing rollers. The material throwing component includes a rotating shaft that extends back and forth and can rotate around its own axis. A plurality of material throwing plates are arranged along the circumference of the rotating shaft. The material throwing plates extend back and forth. During the rotation of the rotating shaft, the material throwing plates can strike the material falling between the two crushing rollers onto one of the crushing plates. The processing box has a receiving plate around the circumference of the throwing component. The top of the receiving plate is lower than the highest point of the throwing plate's rotation path. The receiving plate is used to receive the material falling from the throwing component. When the rotating shaft rotates, the throwing plate can push the material received by the receiving plate to another crushing plate. The receiving plate includes a first guide plate and a second guide plate. The first guide plate is arc-shaped, and the center line of the arc of the first guide plate is collinear with the center line of the rotating shaft. The first guide plate extends from the discharge side of the throwing component to the lower side of the throwing component. The second guide plate is horizontally fixed to the bottom end of the first guide plate and is tangent to the first guide plate. The processing box has a first discharge port at the inclined bottom end of the second filter plate and a second discharge port on the lower side of the second filter plate.
2. The high-efficiency concrete aggregate processing equipment according to claim 1, characterized in that: The material ejector plate is configured in an arc shape, and the center line of the arc of the material ejector plate extends back and forth.
3. The high-efficiency concrete aggregate processing equipment according to claim 1, characterized in that: The material ejector plate has a blade fixed on the side that interacts with the material, and multiple blades are spaced apart at the front and back.
4. The high-efficiency concrete aggregate processing equipment according to claim 1, characterized in that: It also includes a vibration mechanism for driving the second filter plate to vibrate.
5. The high-efficiency concrete aggregate processing equipment according to claim 1, characterized in that: It also includes a rinsing mechanism, which includes rinsing nozzles for rinsing the material on the second filter plate.
Citation Information
Patent Citations
Civil engineering construction waste treatment device
CN112221665A
Solid waste derived fuel treatment device
CN221156875U