Processing method of raw materials for production and processing of energy-saving building materials
The power module drives the vibratory separator and the revolution frame to realize the left-right reciprocating vibration and up-down reciprocating motion of the sorting cylinder, and the impact roller is used to clear the blocked holes, which solves the problems of low efficiency and easy clogging of the sorting mechanism, and improves the sorting accuracy and service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHONGQING QINGZHIDU BUILDING MATERIAL CO LTD
- Filing Date
- 2025-12-31
- Publication Date
- 2026-04-10
AI Technical Summary
In the existing technology, the sorting mechanism is not easy to achieve synchronous reciprocating vibration in the left and right directions and the up and down directions, resulting in low sorting efficiency. In addition, the sorting mechanism is prone to clogging and is difficult to self-clean, which affects its service life.
The vibratory separator and the rotating frame are driven by a power module. The vibratory separator drives the sorting cylinder to move back and forth horizontally. Combined with the reciprocating change of the position of the vibrating frame on the rotating frame, the raw material moves up and down in the sorting cylinder. At the same time, the striking roller is used to knock on the sorting cylinder to clear the blocked sorting holes.
It improves sorting efficiency, reduces raw material agglomeration rate and sorting hole clogging rate, and maintains the sorting accuracy and service life of the sorting mechanism.
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Figure CN121820153A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of sorting devices, in particular to a raw material processing method for energy-saving building material production and processing. BACKGROUND
[0002] Foamed concrete is a building energy-saving material, which has the advantages of low density and high strength compared with traditional concrete, and is widely used in modern construction industry. The production raw material of foamed concrete needs to use quartz sand. In the prior art, quartz sand is formed after preliminary crushing of quartz stone. The crushed quartz stone needs to be sorted. In the prior art, a patent document with publication number CN117282665A discloses a building energy-saving material production material sorting machine, which comprises a base, a U-shaped sorting main body is fixedly installed on the base through a support, and the sorting main body is inclined. The above device can preliminarily sort quartz stone particles, and solves the problem of easy blockage of equipment. However, the above device has the following technical problems during use: It is inconvenient to realize reciprocating vibration of the sorting mechanism in the left-right direction and the sorting mechanism in the up-down direction, and to improve the sorting efficiency by bidirectional vibration; It is inconvenient to realize self-cleaning of the sorting mechanism by hitting and deformation, and to maintain the sorting performance and service life of the sorting mechanism; Therefore, the present application provides a raw material processing method for energy-saving building material production and processing to solve the above problems in the background art. SUMMARY
[0003] The present application provides a raw material processing method for energy-saving building material production and processing to solve the above problems in the background art.
[0004] The technical solution of the present application to solve the above technical problems is as follows: a raw material processing method for energy-saving building material production and processing, comprising the following steps: SS01, setting, before the raw material processing device works, the raw material processing device is communicated with the building raw material feeding device, and the feeding device continuously feeds the raw material into the interior of the raw material processing device; SS02, processing, after the step SS01, the raw material processing device sorts and processes the building raw material, and finally sorts out the qualified material and unqualified material in the building raw material; The raw material processing device includes a processing frame, a power module mounted on the processing frame, a reciprocating vibration frame connected to the power module, a revolving frame rotatably connected to the vibration frame, and a power shaft rotatably connected to the revolving frame, a shaking frame slidingly mounted on the vibration frame, a reciprocating transmission module mounted between the shaking frame and the processing frame, a sorting cylinder and a stirring shaft rotatably mounted on the shaking frame, a plurality of sorting holes arranged in a circular array on the elastic part of the sorting cylinder, a sorting material discharge port formed on the sorting cylinder, a spiral hinge mounted on the stirring shaft, the spiral hinge being in contact with the sorting cylinder, a linkage module mounted on the revolving frame, the sorting cylinder and the spiral hinge being driven by the linkage module, a knocking frame provided on the outside of the sorting cylinder, a knocking roller rotatably mounted on the inner wall of the knocking frame, and a knocking assembly mounted on the vibration frame and configured to drive the knocking frame to reciprocate.
[0005] The present application has the following advantages: 1. The present application can efficiently complete the sorting operation of building raw materials, and the device can simultaneously realize the reciprocating vibration of the sorting mechanism in the left-right direction and the reciprocating vibration of the sorting mechanism in the up-down direction during the sorting operation, thereby effectively improving the sorting efficiency of the sorting mechanism on the raw materials.
[0006] 2. In the present application, the first protrusion, the first guide wheel and the first return spring are arranged to enable the vibration frame to drive the sorting cylinder to reciprocate in the horizontal direction, thereby realizing the reciprocating movement of the material to be screened in the sorting cylinder, and the position of the shaking frame on the revolving frame is changed reciprocally by the positioning ring and the connecting rod when the vibration frame reciprocates in the horizontal direction, so that the raw material to be screened can reciprocate in the sorting cylinder, and the raw material to be screened can be effectively improved in the sorting cylinder, thereby improving the efficiency of the sorting cylinder, and the raw material to be screened can be effectively reduced in the sorting cylinder, thereby reducing the blocking rate of the sorting hole.
[0007] 3. In the application, after the motor output speed, the knocking frame drives the knocking roller to reciprocatingly knock the sorting cylinder, through the reciprocating knocking of the knocking roller on the sorting cylinder, on the one hand, the elastic part can deform reciprocally, thereby forcibly extruding and discharging the raw materials blocked in the sorting hole, thereby realizing the unblocking of the raw materials blocked in the sorting hole, on the other hand, the sorting cylinder can be reciprocatingly knocked, thereby realizing the knocking discharge of the raw materials blocked in the sorting hole, thereby maintaining the anti-blocking performance and self-unblocking effect of the sorting cylinder.
[0008] Based on the above technical solutions, the application can also be improved as follows.
[0009] Further, the power module comprises a short shaft and a large circular shaft rotatably connected to the processing frame, a motor is installed on the processing frame, the output shaft end of the motor is fixedly connected with the short shaft, first bevel gears are installed on the power shaft and the short shaft, the two first bevel gears are meshed with each other, a first protrusion is installed on the large circular shaft, a first guide wheel is rotatably installed on the vibration selection frame, the first guide wheel is adaptively connected with the first protrusion, a group of first return springs are installed between the vibration selection frame and the processing frame, and the power shaft and the revolution frame are driven by the short shaft.
[0010] Further, a connecting groove slidably connected with the short shaft is fixedly arranged on the power shaft, the cross sections of the connecting groove and the short shaft are both regular polygons, a small circular shaft is rotatably installed on the vibration selection frame, a second bevel gear is installed on the small circular shaft, a third bevel gear is installed on the revolution frame and the power shaft, the two third bevel gears are both in transmission connection with the second bevel gear, and the two third bevel gears are respectively arranged on the two sides of the second bevel gear.
[0011] The beneficial effects of the above further scheme are that when the sorting and processing operation of the building production raw materials is performed, the vibration selection frame can drive the sorting cylinder to reciprocally move left and right in the horizontal direction, thereby realizing the left and right reciprocating movement of the material to be screened in the sorting cylinder, through the regular polygon cross section of the connecting groove and the short shaft, the short shaft can continuously drive the revolution frame when the vibration selection frame reciprocally moves left and right, and through the arrangement of the small circular shaft, the revolution frame can coaxially and reversely rotate with the power shaft when the revolution frame is continuously driven by the short shaft and rotates.
[0012] Further, the reciprocating transmission module comprises a positioning rotary ring rotatably sleeved on the processing frame, and a group of connecting rods are hinged between the positioning rotary ring and the shaking frame.
[0013] The beneficial effect of the further scheme is that when the vibration frame reciprocates horizontally, the position of the shaking frame on the revolving frame is changed reciprocally by the positioning of the rotating ring and the connecting rod, and the reciprocating change of the position of the shaking frame on the revolving frame enables the raw materials to be screened to reciprocate up and down in the sorting cylinder, and the up-and-down vibration and left-and-right synchronous vibration of the raw materials to be screened in the sorting cylinder effectively improves the agitation and dispersion of the raw materials to be screened in the sorting cylinder, thereby improving the sorting efficiency of the sorting cylinder, and the improvement of the agitation and dispersion of the raw materials to be screened in the sorting cylinder effectively reduces the blocking rate of the raw materials to be screened and the plugging rate of the sorting holes.
[0014] Further, the linkage module comprises a square shaft rotatably connected to the revolving frame, a fourth bevel gear is mounted on the square shaft and the power shaft, the two fourth bevel gears are meshed with each other, a differential shaft and a rotation shaft are rotatably mounted on the shaking frame, the rotation shaft is driven by the square shaft, the differential shaft is drivingly connected with the rotation shaft through a chain belt, a rear gear is mounted on the differential shaft and the sorting cylinder, the two rear gears are meshed with each other, a front gear is mounted on the rotation shaft and the stirring shaft, and the two front gears are meshed with each other.
[0015] Further, a shaft sleeve is rotatably mounted on the shaking frame, a square slot with two open ends and slidably connected with the square shaft is fixedly formed in the interior of the shaft sleeve, the cross sections of the square shaft and the square slot are regular polygons, a fifth bevel gear is mounted on the rotation shaft and the shaft sleeve, the two fifth bevel gears are meshed with each other, and the axis of the square shaft is perpendicular to the axis of the power shaft.
[0016] The beneficial effect of the further scheme is that after the motor outputs the rotating speed, the linkage module enables the sorting cylinder and the stirring shaft to rotate at different speeds, and after the stirring shaft outputs the rotating speed, the spiral hinge dragon moves towards the material selection outlet, thereby realizing the screening of the raw materials to be screened.
[0017] Further, the knocking generating assembly comprises a second cam fixed to the rotation shaft and a second guide wheel rotatably connected to the knocking frame, the second guide wheel is adaptively connected with the second cam, and a group of second return springs are mounted between the knocking frame and the shaking frame.
[0018] The beneficial effect of the further scheme is that after the motor outputs the rotating speed, the knocking frame drives the knocking roller to reciprocally knock the sorting cylinder, the reciprocally knocking of the knocking roller on the sorting cylinder enables the elastic part to reciprocally deform, thereby forcibly extruding and discharging the raw materials blocked in the sorting holes, thereby realizing the unblocking of the raw materials blocked in the sorting holes, and on the other hand, the reciprocally knocking of the knocking roller on the sorting cylinder enables the raw materials blocked in the sorting holes to be discharged by knocking, thereby maintaining the anti-blocking performance and self-unblocking effect of the sorting cylinder.
[0019] Furthermore, it also includes a driven frame rotatably mounted on the revolution frame, an elastic limiting member is installed between the driven frame and the processing frame, a shaping frame is installed on the shaking frame, and the sorting cylinder is rotatably connected to the shaping frame.
[0020] Furthermore, it also includes a microcontroller mounted on the processing rack, the sorting cylinder is a hollow cylindrical structure with an open front end, the rotation axis of the impact roller is parallel to the rotation axis of the sorting cylinder, and a separator ring is installed on the sorting cylinder at a position corresponding to the elastic part and the sorting hole. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the process structure of a method for processing raw materials for the production and processing of energy-saving building materials according to the present invention; Figure 2 This is a schematic diagram of the raw material processing device used in the raw material processing method for the production and processing of energy-saving building materials according to the present invention; Figure 3 For the present invention Figure 2 A schematic diagram of the cross-sectional structure; Figure 4 For the present invention Figure 3 A magnified schematic diagram of the partial structure at point A in the middle; Figure 5 For the present invention Figure 3 A magnified schematic diagram of the local structure at point B; Figure 6 For the present invention Figure 3 A magnified schematic diagram of the local structure at point C; Figure 7 This is a schematic diagram of the structure of the shaking frame and the revolution frame of the present invention; Figure 8 This is a schematic diagram of the square shaft and the shaking frame of the present invention; Figure 9 For the present invention Figure 8 A magnified schematic diagram of the local structure at point D; Figure 10 This is a schematic diagram of the structure of the sorting cylinder of the present invention. Detailed Implementation
[0022] The principles and features of the present invention are described below with reference to the accompanying drawings. The examples given are only for explaining the present invention and are not intended to limit the scope of the present invention.
[0023] like Figures 1-10 As shown, a method for processing raw materials used in the production and processing of energy-saving building materials includes the following steps: SS01, before the raw material processing device works, the raw material processing device is communicated with the building raw material feeding device, and the feeding device continuously feeds the raw material into the interior of the raw material processing device; SS02, after the step of SS01, the raw material processing device sorts the building raw material, and finally sorts the qualified material and the unqualified material in the building raw material; The raw material processing device comprises a processing frame 1 and a single-chip microcomputer 35 installed on the processing frame 1. A power module is installed on the processing frame 1, and a reciprocating movable vibration frame 2, a rotatable revolving frame 3 and a power shaft 4 are drivingly connected to the power module, the revolving frame 3 is drivingly connected with the vibration frame 2, and the power shaft 4 is drivingly connected with the revolving frame 3. A driven frame 32 is rotatably sleeved on the revolving frame 3, and a elastic limiting piece 33 is installed between the driven frame 32 and the processing frame 1. The power module comprises a short shaft 14 and a large circular shaft 15 which are rotatably connected to the processing frame 1, a motor 16 is installed on the processing frame 1, the output shaft end of the motor 16 is fixedly connected with the short shaft 14, first bevel gears are installed on the power shaft 4 and the short shaft 14, the two first bevel gears are meshed with each other, a first protrusion 17 is installed on the large circular shaft 15, a first guide wheel 18 is rotatably installed on the vibration frame 2, the first guide wheel 18 is adaptively connected with the first protrusion 17, a group of first return springs 19 are installed between the vibration frame 2 and the processing frame 1, and the power shaft 4 and the revolving frame 3 are driven by the short shaft 14.
[0024] A connecting groove is fixedly formed on the power shaft 4 and is slidingly connected with the short shaft 14, the cross sections of the connecting groove and the short shaft 14 are regular polygons, a small circular shaft 20 is rotatably installed on the vibration frame 2, a second bevel gear is installed on the small circular shaft 20, third bevel gears are installed on the revolving frame 3 and the power shaft 4, the two third bevel gears are drivingly connected with the second bevel gear, and the two third bevel gears are respectively arranged on the two sides of the second bevel gear.
[0025] When the sorting treatment operation of the building production raw material is performed, the vibration frame 2 can drive the sorting cylinder 6 to reciprocally move left and right in the horizontal direction, and then the reciprocally moving left and right of the material to be screened in the sorting cylinder 6 is realized, the regular polygon cross sections of the connecting groove and the short shaft 14 are arranged, so that the short shaft 14 can continuously drive the revolving frame 3 when the vibration frame 2 reciprocally moves left and right, and the revolving frame 3 can coaxially and reversely rotate with the power shaft 4 when the short shaft 14 continuously drives the revolving frame 3 and makes the revolving frame 3 rotate.
[0026] A shaking frame 5 is slidingly installed on the vibration frame 2, and a reciprocating transmission module is installed between the shaking frame 5 and the processing frame 1. Specifically, the reciprocating transmission module comprises a positioning rotary ring 21 rotatably arranged on the processing frame 1, and a plurality of connecting rods 22 are hingedly connected between the positioning rotary ring 21 and the shaking frame 5.
[0027] When the shaking frame 2 moves back and forth in the horizontal direction, the position of the shaking frame 5 on the revolution frame 3 is changed back and forth through the arrangement of the positioning rotary ring 21 and the connecting rod 22, and the reciprocating change of the position of the shaking frame 5 on the revolution frame 3 enables the raw materials to be screened to move up and down in the sorting cylinder 6, and the vibration of the raw materials to be screened in the sorting cylinder 6 up and down and left and right synchronously occurs, so as to effectively improve the stirring and dispersion of the raw building materials to be screened in the sorting cylinder 6, thereby improving the sorting efficiency of the sorting cylinder 6, and at the same time, the stirring and dispersion of the raw building materials to be screened in the sorting cylinder 6 is improved, so as to effectively reduce the clumping rate of the raw building materials to be screened and the plugging rate of the sorting hole 9. The sorting cylinder 6 and the stirring shaft 7 are rotatably arranged on the shaking frame 5, the sorting cylinder 6 is provided with an elastic part 8, a plurality of sorting holes 9 are arranged in a circumferential array on the elastic part 8, and a sorting material discharge port 10 is arranged on the sorting cylinder 6. The sorting cylinder 6 is a hollow cylindrical structure with an open front end, and a partition ring 36 is arranged on the sorting cylinder 6 and corresponds to the position between the elastic part 8 and the sorting hole 9. The stirring shaft 7 is provided with a spiral hinge dragon 11, and the spiral hinge dragon 11 is attached to the sorting cylinder 6. The shaking frame 5 is provided with a fixed frame 34, and the sorting cylinder 6 is rotatably connected to the fixed frame 34. The revolution frame 3 is provided with a linkage module, the sorting cylinder 6 and the spiral hinge dragon 11 are driven by the linkage module, the outer side of the sorting cylinder 6 is provided with a beating frame 12, the inner wall of the beating frame 12 is rotatably provided with a beating roller 13, and the rotation axis of the beating roller 13 is parallel to the rotation axis of the sorting cylinder 6. The shaking frame 2 is provided with a knocking generating assembly for driving the beating frame 12 to reciprocally displace.
[0028] The application also provides the following preferred embodiments: The linkage module comprises a square shaft 23 rotatably connected to the revolution frame 3, a fourth bevel gear is arranged on the square shaft 23 and the power shaft 4, the two fourth bevel gears are meshed with each other, a differential shaft 24 and a rotation shaft 25 are rotatably arranged on the shaking frame 5, the rotation shaft 25 is driven by the square shaft 23, the differential shaft 24 is drivingly connected to the rotation shaft 25 through a chain belt, a rear gear 26 is arranged on the differential shaft 24 and the sorting cylinder 6, the two rear gears 26 are meshed with each other, a front gear 27 is arranged on the rotation shaft 25 and the stirring shaft 7, and the two front gears 27 are meshed with each other.
[0029] The shaft sleeve 28 is rotatably installed on the shaking frame 5, the inside of the shaft sleeve 28 is fixedly provided with a square groove with two open ends and in sliding connection with the square shaft 23, the cross section of the square shaft 23 and the square groove are both regular polygons, a fifth bevel gear is installed on the rotation shaft 25 and the shaft sleeve 28, the two fifth bevel gears are in meshing connection, the axis of the square shaft 23 is perpendicular to the axis of the power shaft 4.
[0030] When the motor 16 outputs the rotating speed, through the setting of the linkage module, the sorting cylinder 6 and the stirring shaft 7 can rotate at different speeds, and after the stirring shaft 7 outputs the rotating speed, the spiral hinge dragon 11 can move to the direction of the sorting outlet 10, thereby realizing the screening of the building materials to be screened.
[0031] The knocking generating assembly comprises a second cam 29 fixed on the rotation shaft 25 and a second guide wheel 30 rotatably connected to the knocking frame 12, the second guide wheel 30 is in adaptive connection with the second cam 29, and a group of second return springs 31 are installed between the knocking frame 12 and the shaking frame 5.
[0032] When the motor 16 outputs the rotating speed, the knocking frame 12 drives the knocking roller 13 to reciprocally knock the sorting cylinder 6, through the reciprocating knocking of the knocking roller 13 to the sorting cylinder 6, on the one hand, the elastic part 8 can be reciprocally deformed, thereby forcibly extruding and discharging the building materials blocked in the sorting hole 9, thereby realizing the unblocking of the building materials blocked in the sorting hole 9, on the other hand, the reciprocating knocking to the sorting cylinder 6 can realize the knocking discharge of the building materials blocked in the sorting hole 9, thereby maintaining the anti-blocking performance and self-unblocking effect of the sorting cylinder 6.
[0033] The above only describes the preferred embodiments of the present application and is not used to limit the present application, any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A method for processing raw materials used in the production and processing of energy-saving building materials, characterized in that, Includes the following steps: SS01, Setting: Before the raw material processing device starts working, connect the raw material processing device to the building material feeding equipment, and the feeding equipment continuously feeds the raw materials into the interior of the raw material processing device. SS02 Processing: After steps SS01, the raw material processing device sorts and processes the building materials, and finally separates the qualified and unqualified materials from the building materials. The raw material processing device includes a processing frame (1), on which a power module is installed. The power module is connected to a vibratory separator (2) that can move back and forth, a rotatable orbital frame (3) and a power shaft (4). The orbital frame (3) is rotatably connected to the vibratory separator (2), and the power shaft (4) is rotatably connected to the orbital frame (3).
2. The method for processing raw materials for the production and processing of energy-saving building materials according to claim 1, characterized in that, A vibrating frame (5) is slidably mounted on the vibrating frame (2). A reciprocating transmission module is installed between the vibrating frame (5) and the processing frame (1). A sorting cylinder (6) and a feeding shaft (7) are rotatably mounted on the vibrating frame (5). An elastic part (8) is provided on the sorting cylinder (6).
3. The method for processing raw materials for the production and processing of energy-saving building materials according to claim 2, characterized in that, The elastic part (8) has multiple sets of sorting holes (9) arranged in a circular array. The sorting cylinder (6) has a set of material discharge ports (10). The material feeding shaft (7) is equipped with a spiral hinge (11). The spiral hinge (11) is in contact with the sorting cylinder (6). The revolution frame (3) is equipped with a linkage module. The sorting cylinder (6) and the spiral hinge (11) are both driven by the linkage module. The outer side of the sorting cylinder (6) is equipped with a striking frame (12). The inner wall of the striking frame (12) is rotatably equipped with a striking roller (13). The vibrating frame (2) is equipped with... A striking assembly that drives the striking frame (12) to move back and forth; the power module includes a short shaft (14) and a large round shaft (15) rotatably connected to the processing frame (1), a motor (16) is mounted on the processing frame (1), the output shaft end of the motor (16) is fixedly connected to the short shaft (14), a first bevel gear is mounted on both the power shaft (4) and the short shaft (14), the two first bevel gears mesh with each other, a first protrusion (17) is mounted on the large round shaft (15), and a first guide wheel (18) is rotatably mounted on the vibration selection frame (2), the first guide wheel ( 18) Adaptively connected to the first protrusion (17), a set of first return springs (19) are installed between the vibratory selection frame (2) and the processing frame (1). The power shaft (4) and the revolution frame (3) are both driven by the short shaft (14). A connecting groove is fixedly opened on the power shaft (4) and slidably connected to the short shaft (14). The cross-section of the connecting groove and the short shaft (14) are both regular polygons. A small round shaft (20) is rotatably installed on the vibratory selection frame (2). A second bevel gear is installed on the small round shaft (20). A third bevel gear is installed on both the revolution frame (3) and the power shaft (4). Both of the third bevel gears are connected to the second bevel gear in a transmission, and the two third bevel gears are respectively set on both sides of the second bevel gear; the linkage module includes a square shaft (23) rotatably connected to the revolution frame (3), and a fourth bevel gear is installed on both the square shaft (23) and the power shaft (4). The two fourth bevel gears mesh with each other. A differential shaft (24) and a spin shaft (25) are rotatably installed on the shaking frame (5). The spin shaft (25) is driven by the square shaft (23), and the differential shaft (24) is connected to the spin shaft (25) in a transmission through a chain belt.
4. The method for processing raw materials for the production and processing of energy-saving building materials according to claim 3, characterized in that, The reciprocating transmission module includes a positioning ring (21) rotatably sleeved on the processing frame (1), and a set of connecting rods (22) are hinged between the positioning ring (21) and the shaking frame (5).
5. A method for processing raw materials for the production and processing of energy-saving building materials according to claim 3, characterized in that, A rear gear (26) is installed on both the differential shaft (24) and the sorting cylinder (6), and the two rear gears (26) mesh with each other. A front gear (27) is installed on both the rotation shaft (25) and the feeding shaft (7), and the two front gears (27) mesh with each other.
6. The method for processing raw materials for the production and processing of energy-saving building materials according to claim 5, characterized in that, A bushing (28) is rotatably mounted on the shaking frame (5). The bushing (28) has a square groove with open ends that is slidably connected to the square shaft (23). The cross-sections of the square shaft (23) and the square groove are both regular polygons. A fifth bevel gear is mounted on both the rotating shaft (25) and the bushing (28). The two fifth bevel gears mesh with each other. The axis of the square shaft (23) is perpendicular to the axis of the power shaft (4).
7. The method for processing raw materials for the production and processing of energy-saving building materials according to claim 5, characterized in that, The striking component includes a second cam (29) fixed on the rotation shaft (25) and a second guide wheel (30) rotatably connected to the striking frame (12). The second guide wheel (30) is adapted to the second cam (29), and a set of second return springs (31) is installed between the striking frame (12) and the shaking frame (5).
8. The method for processing raw materials for the production and processing of energy-saving building materials according to claim 3, characterized in that, It also includes a driven frame (32) that is rotatably mounted on the revolution frame (3), an elastic limiting member (33) is installed between the driven frame (32) and the processing frame (1), a shaping frame (34) is installed on the shaking frame (5), and the sorting cylinder (6) is rotatably connected to the shaping frame (34).
9. A method for processing raw materials for the production and processing of energy-saving building materials according to claim 3, characterized in that, It also includes a microcontroller (35) mounted on the processing frame (1), the sorting cylinder (6) is a hollow cylindrical structure with an open front end, the rotation axis of the striking roller (13) is parallel to the rotation axis of the sorting cylinder (6), and a separator ring (36) is installed on the sorting cylinder (6) at the position corresponding to the elastic part (8) and the sorting hole (9).
Citation Information
Patent Citations
Material sorting machine for building energy-saving material production
CN117282665A