Solid waste treatment machine
By designing a mold structure that can be quickly positioned and clamped, and a stationary platform device with adjustable amplitude, the problems of cumbersome mold replacement and poor tamping effect in traditional equipment have been solved, thereby improving the consistency of brick thickness and brick output efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-19
- Publication Date
- 2026-04-10
AI Technical Summary
Traditional non-fired brick forming equipment involves cumbersome mold replacement, poor vibration effect, and an unsmooth brick output process, affecting the consistency of brick thickness and output efficiency.
A solid waste processing machine was designed, which includes upper and lower mold structures that can be quickly positioned and clamped, combined with a static table device with adjustable amplitude and a movable material feeding device, to achieve convenient mold replacement, effective vibration and smooth brick output.
It enables rapid installation and disassembly of the upper and lower molds, ensuring consistent brick thickness and improving brick production efficiency and process smoothness.
Smart Images

Figure CN224103154U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of brick making equipment, especially relates to a solid waste treatment machine. BACKGROUND
[0002] Solid waste refers to solid and semi-solid waste substances generated in production, consumption and life, among which coal dry stone, soil and slag can be used to prepare non-burning bricks, realizing waste utilization.
[0003] Non-burning brick is a new type of wall material manufactured by using fly ash, coal cinder, coal gangue, tailing slag, chemical slag or natural sand, mud and the like (one or more of the above raw materials) as main raw materials without high-temperature calcination, and has been more and more widely applied and increasingly demanded due to its advantages of wide raw material sources, energy saving and waste utilization, high strength, water resistance, weathering and corrosion resistance and freeze-thaw resistance.
[0004] During the non-burning brick pressing and molding process, the staff found that the traditional molding equipment has certain defects: first, the upper mold and the lower mold are generally installed and fixed by a plurality of bolts and corresponding driving devices, when the upper and lower molds need to be replaced due to damage or change, the staff needs to use auxiliary tools to unscrew and remove the plurality of bolts one by one, so that the installation and disassembly of the upper and lower molds are relatively cumbersome; second, in order to improve the strength and quality of the non-burning brick, the material in the lower mold needs to be tamped by a tamping device, the existing tamping device has a relatively simple structure, mainly the vibration wave generated by the tamper is indirectly transmitted to the material in the lower mold through the bottom plate and the mold plate, but the tamping effect of the tamping device is relatively poor, which easily leads to inconsistent thickness of the same batch of bricks, and cannot meet the production standard of the bricks; finally, during the discharging operation, the mold plate supporting a plurality of non-burning bricks needs to be taken out from below the material distribution device, but the vertical position of the material distribution device in the traditional molding equipment is fixed, and cannot be displaced during the brick discharging process, which affects the smoothness and efficiency of the brick discharging process. UTILITY MODEL CONTENTS
[0005] The utility model discloses a solid waste treatment machine with reasonable structure design, which can quickly and effectively position, clamp and install upper and lower molds of different specifications and sizes, and the operation process is simple.
[0006] The utility model discloses a solid waste treatment machine, which belongs to the technical field of solid waste treatment machines and comprises a main frame, a lower die mounting seat fixedly connected to the middle part of the main frame, a static table device buffer-connected to the top of the lower die mounting seat, a tamping device installed at the bottom of the static table device and a template supported at the top of the static table device.
[0007] The utility model discloses a solid waste treatment machine, through setting up, the upper clamping component can realize detachable clamping installation of upper mould structure and upper mould installation device, and then conveniently select the type and replace upper mould structure, through setting up, two groups of lower mould installation device can realize detachable clamping installation of lower mould structure and two groups of lower mould installation device, and then conveniently select the type and replace lower mould structure, through setting up, the static platform device can support the template, and in the process of ramming and vibrating, the vibration of the template is limited, so that the thickness of the baking-free brick is not caused by the inclination of the template during the vibration process, simultaneously, in view of the height of the static platform strip in the amplitude limiting unit can be adjusted, the amplitude of the static platform device can be adjusted, and then a variety of different baking-free bricks are prepared, and the applicability is strong, through setting up, the yield cylinder and the longitudinal movable cloth frame no.
[0008] Preferably, the upper clamping assembly comprises an upper clamping seat penetrating in the clamping installation slot, an insertion sliding block integrally formed on the top of the upper clamping seat and slidably connected with the sliding groove on the lifting buffer seat, a plurality of spring installation seats uniformly distributed along the length direction of the upper clamping seat and fixedly connected on the upper clamping seat, and a plurality of air springs II installed on each spring installation seat for tightly pressing the upper mould body against the bottom surface of the lifting buffer seat.
[0009] Preferably, the lower mould installation device further comprises a protective fence with an open inner side surface fixedly connected on the clamping bottom plate, and the inner end of the clamping connecting plate penetrates out of the open inner side surface of the protective fence; a clamping cover plate is fixedly connected on the top open part of the protective fence, a plurality of pivot installation seats are fixedly connected on the bottom surface of the clamping cover plate, a plurality of clamping swing arms are pivotally connected on each pivot installation seat, and the clamping connecting plate is fixedly connected with the plurality of clamping swing arms.
[0010] Preferably, the positioning unit comprises two sets of positioning components I and two sets of positioning components II arranged oppositely on the clamping base plate; the positioning component I comprises a short positioning block with a strip-shaped hole, the short positioning block is connected to the clamping base plate through a bolt arranged in the strip-shaped hole, and further comprises a bolt mounting plate fixed to the clamping base plate and located outside the short positioning block, and a bolt is screwed into the bolt mounting plate and tightly contacts the outer side of the short positioning block; the clamping base plate comprises a long positioning block with a strip-shaped hole, the long positioning block is connected to the clamping base plate through a bolt arranged in the strip-shaped hole, and further comprises a bolt mounting plate fixed to the clamping base plate and located outside the long positioning block, and a bolt is screwed into the bolt mounting plate and tightly contacts the outer side of the long positioning block.
[0011] Preferably, the material distributing device I comprises a material distributing vehicle I movably connected to the material distributing frame I and in frictional contact with the bottom surface of the material distributing frame I, a walking assembly I installed on the material distributing frame I and used to drive the material distributing vehicle I to move towards or away from the lower mold structure, a material slot vertically penetrating through the material distributing vehicle I and used to receive materials discharged from the material distributing hopper I, and a material spreading assembly used to spread the materials in the material slot.
[0012] Preferably, the material spreading assembly comprises a plurality of material spreading shafts arranged side by side in the material slot and rotatably connected to the material distributing vehicle I, each of the material spreading shafts is provided with a plurality of stirring teeth, each of the material spreading shafts is provided with a material spreading swing arm fixed to both ends of the material spreading shaft, the upper ends of the material spreading swing arms arranged on the same side are pivotally connected to a swing arm connecting plate, the material distributing vehicle I is further provided with a linkage shaft rotatably connected thereto, the linkage shaft is provided with a material spreading eccentric wheel keyed to both ends of the linkage shaft, and a material spreading pull rod is pivotally connected between the rim of the material spreading eccentric wheel arranged on the same side and the swing arm connecting plate.
[0013] Preferably, the walking assembly I comprises a walking shaft I rotatably connected to the top of the material distributing frame I and arranged transversely, two sets of swing connecting pieces I fixed to both ends of the walking shaft I and arranged side by side, a long swing arm I fixed to each of the swing connecting pieces I, a short swing arm I pivotally connected to the outer end of each of the long swing arms I, and two pivot pieces I fixed to the side surface of the material distributing vehicle I, the outer end of each of the short swing arms I being pivotally connected to the corresponding pivot piece I; the material distributing frame I and the swing connecting pieces I are further provided with a walking oil cylinder I pivotally connected therebetween.
[0014] Preferably, the material distributing device II comprises a material distributing vehicle II movably connected to the material distributing frame II and in frictional contact with the bottom surface of the material distributing frame II, a walking assembly II installed on the material distributing frame II and used to drive the material distributing vehicle II to move towards or away from the lower mold structure, and a material slot vertically penetrating through the material distributing vehicle II and used to receive materials discharged from the material distributing hopper II; the inner end of the material distributing vehicle II is provided with an upper mold scraping plate used to clean the bottom surface of the upper mold body.
[0015] Preferably, the walking assembly two comprises a walking shaft two which is rotationally connected to the top of the cloth frame two and is arranged transversely, two groups of swing connecting pieces two which are fixedly connected to the walking shaft two and are arranged side by side, two long swing arms two which are fixedly connected to each swing connecting piece two, a short swing arm two which is pivotally connected to the outer end of each long swing arm two, two pivot pieces two which are fixedly connected to the side of the cloth vehicle two, and the outer end of the short swing arm two is pivotally connected to the corresponding pivot piece two; and a walking oil cylinder two which is pivotally connected between the cloth frame two and the swing connecting piece two.
[0016] Preferably, the vibrating device comprises an open-top vibrating installation box, two driving vibrating shafts which are rotationally connected to the two ends of the inner cavity of the vibrating installation box and are arranged transversely, a plurality of transmission vibrating shafts which are rotationally connected to the middle of the inner cavity of the vibrating installation box and are arranged transversely, eccentric vibrators which are fixedly connected to the two ends of each transmission vibrating shaft, eccentric vibrators and vibrating driven wheels which are respectively fixedly connected to the two ends of each driving vibrating shaft; transmission gears which are keyed connected to each driving vibrating shaft and each transmission vibrating shaft, and adjacent two transmission gears are engaged with each other; a box cover plate which is installed on the top of the vibrating installation box; four driving motors which are installed on the main frame and are respectively arranged corresponding to the four vibrating driven wheels, driving pulleys which are keyed connected to the output shafts of the driving motors, and transmission belts which are arranged corresponding to the driving pulleys and the vibrating driven wheels. BRIEF DESCRIPTION OF DRAWINGS
[0017] Figure 1 is a front view structural schematic diagram of the utility model;
[0018] Figure 2 is a three-dimensional structural schematic diagram of the upper die structure and the upper die installation device in the utility model;
[0019] Figure 3 is Figure 2 is an enlarged schematic diagram of the A area in
[0020] Figure 4 is a schematic diagram of the installation condition of the lower die structure and the lower die installation device in the utility model;
[0021] Figure 5 is a three-dimensional structural schematic diagram of the lower die installation device in the utility model;
[0022] Figure 6 is a schematic diagram of the installation condition of the lower die mounting seat, the static table device and the die plate in the utility model;
[0023] Figure 7 is Figure 6 is an enlarged schematic diagram of the B area in
[0024] Figure 8 is a three-dimensional structural schematic diagram of the vibrating device in the utility model;
[0025] Figure 9 is the installation condition schematic view of cloth frame one and cloth device one in the utility model;
[0026] Figure 10 is the three-dimensional structure schematic view of cloth device one in the utility model;
[0027] Figure 11 is the three-dimensional structure schematic view of cloth frame two and cloth device two in the utility model;
[0028] Figure 12 is the three-dimensional structure schematic view of cloth device two in the utility model.
[0029] In the figure: 1, main frame; 2, lower die mounting device; 2-1, positioning assembly one; 2-2, clamping block; 2-3, clamping connecting plate; 2-4, protective fence; 2-5, pivotal mounting seat; 2-6, air spring one; 2-7, clamping swing arm; 2-8, clamping cover plate; 2-9 clamping bottom plate; 2-10, positioning assembly two; 3, pressing guide rod; 4, lower die structure; 4-1, lower die body; 4-2, guide baffle; 5, upper die structure; 5-1, upper die body; 5-2, clamping installation slot; 6, cloth rack one; 6-1, cloth bottom plate one; 6-2, guide channel steel one; 6-3, material rack body one; 7, cloth device one; 7-1, walking assembly one; 7-1-1, pivotal piece one; 7-1-2, short swing arm one; 7-1-3, long swing arm one; 7-1-4, swing connecting piece one; 7-1-5, walking oil cylinder one; 7-1-6, walking shaft one; 7-2, cloth car one; 7-2-1, boss one; 7-2-2, material car side plate one; 7-2-3, material car scraper one; 7-2-4, walking wheel one; 7-3, material spreading assembly; 7-3-1, material spreading driving mechanism; 7-3-2, linkage rotating shaft; 7-3-3, material spreading eccentric wheel; 7-3-4, material spreading pull rod; 7-3-5, swing arm connecting plate; 7-3-6, material spreading swing arm; 7-3-7, material spreading rotating shaft; 8, cloth hopper one; 9, pressing oil cylinder; 10, upper die mounting device; 10-1, guide sleeve mounting block; 10-2, lifting mounting seat; 10-3, upper buffer rubber block; 10-4, upper clamping assembly; 10-4-1, spring mounting seat; 10-4-2, air spring two; 10-4-3, upper clamping seat; 10-4-4, plug-in sliding block; 10-5, lifting buffer seat; 11, cloth hopper two; 12, lifting guide rod; 13, cloth device two; 13-1, walking assembly two; 13-1-1, pivotal piece two; 13-1-2, short swing arm two; 13-1-3, long swing arm two; 13-1-4, swing connecting piece two; 13-1-5, walking oil cylinder two; 13-1-6, walking shaft two; 13-2, cloth car two; 13-2-1, boss two; 13-2-2, material car side plate two; 13-2-3, material car scraper two; 13-2-4, upper die scraper; 13-2-5, walking wheel two; 14, cloth rack two; 14-1, material rack body two; 14-2, guide channel steel two; 14-3, cloth bottom plate two; 15, static table device; 15-1, mounting seat block; 15-2, static table strip; 15-3, template seat plate; 15-4, template supporting block one; 15-5, template guide slot; 15-6, template support plate; 15-7, template supporting block two; 16, lower die mounting seat; 16-1, lower buffer rubber block; 16-2, lower die seat body; 17, tamping device; 17-1, driving tamping shaft; 17-2, transmission tamping shaft; 17-3, eccentric vibrator; 17-4, tamping mounting box; 17-5, box cover plate; 17-6, transmission gear; 17-7, tamping driven wheel; 18, let-place oil cylinder; 19, demolding oil cylinder;20. Template. DETAILED DESCRIPTION
[0030] In order to further understand the application content, characteristics and effects of the present application, the following embodiments are described in detail as follows:
[0031] Please refer to Figure 1 The solid waste treatment machine comprises a main frame 1, a lower die mounting seat 16 is fixedly connected to the middle part of the main frame 1, a static table device 15 is connected to the top of the lower die mounting seat 16 in a buffering mode, a tamping device 17 is installed at the bottom of the static table device 15, and a template 20 is supported at the top of the static table device 15; two groups of lower die mounting devices 2 are longitudinally and slidably connected to the main frame 1 in a relative arrangement mode, a lower die structure 4 is clamped and installed between the two groups of lower die mounting devices 2, a demolding oil cylinder 19 for driving the lower die structure 4 to move up and down is further included, in the embodiment, the cylinder barrel of the demolding oil cylinder 19 is pivotally connected to the main frame 1 through a hinge seat and a pin shaft, and the piston end of the demolding oil cylinder 19 is pivotally connected to the lower die mounting device 2 through a fish eye joint, a pin shaft and a hinge seat. An upper die mounting device 10 is longitudinally and slidably connected to the main frame 1, an upper die structure 5 matched with the lower die structure 4 is installed on the upper die mounting device 10, and a pressing oil cylinder 9 installed on the main frame 1 is further included for driving the upper die mounting device 10 to move up and down. A floating joint is installed at the extending end of the pressing oil cylinder 9 and connected to the upper die mounting device 10 through the floating joint.
[0032] In addition, the embodiment further comprises a plurality of longitudinally arranged pressing guide rods 3 fixedly connected to the main frame 1, and the upper die mounting device 10 and the two groups of lower die mounting devices 2 are slidably connected to the plurality of pressing guide rods 3 through linear bearings; the upper die mounting device 10 moves along the corresponding plurality of pressing guide rods 3, so that the upper die structure 5 can stably move up and down in the vertical direction under the driving action of the corresponding oil cylinder.
[0033] As shown in Figure 6 The lower die mounting seat 16 comprises a lower die seat body 16-2 fixedly connected to the main frame 1, a plurality of lower buffering rubber blocks 16-1 are installed at the top of the lower die seat body 16-2, and the lower die seat body 16-2 is connected to the static table device 15 through the plurality of lower buffering rubber blocks 16-1.
[0034] Further refer to Figure 7The static table device 15 comprises a template supporting mechanism connected to the lower mold mounting seat 16 through the plurality of lower buffer rubber blocks 16-1, and further comprises a plurality of amplitude limiting units installed on the lower mold mounting seat 16 and arranged side by side across the template supporting mechanism, wherein each amplitude limiting unit comprises two mounting blocks 15-1 fixedly connected to the lower mold mounting seat 16 and arranged on both sides of the template supporting mechanism, and a static table strip 15-2 installed between the two mounting blocks 15-1 and having a top surface lower than a supporting surface of the template supporting mechanism and adjustable in longitudinal position. The static table strip 15-2 has a convex structure, each mounting block 15-1 has an L-shaped structure, and a notch is formed in each mounting block 15-1 and adapted to the end of the static table strip 15-2. A plurality of pads are arranged in the notch for adjusting the height of the static table strip 15-2, and the static table strip 15-2 is connected to the mounting block 15-1 by locking bolts.
[0035] Further, the template supporting mechanism comprises a template seat plate 15-3 connected to the lower mold mounting seat 16, two groups of template supporting blocks I 15-4 arranged oppositely on the top surface of the template seat plate 15-3, a template guide slot 15-5 formed in the bottom surface of each template supporting block I 15-4 for guiding the template 20, a plurality of template supporting blocks II 15-7 arranged side by side and installed on the template seat plate 15-3 between the two groups of template supporting blocks I 15-4, and a template supporting plate 15-6 installed on the top of each template supporting block II 15-7 for supporting the template 20. Each amplitude limiting unit is arranged between two adjacent template supporting blocks.
[0036] In actual work, the vibrating device 17 vibrates the static table device 15 to compact the baking-free bricks. The plurality of lower buffer rubber blocks 16-1 arranged on the upper part of the lower mold seat body 16-2 are used to assist the vibrating and compacting of the baking-free bricks and to avoid the vibration from being transmitted to other parts of the solid waste treatment machine. During the vibrating process, the template supporting mechanism and the template 20 in the static table device 15 vibrate under the driving of the vibrating device 17, and the plurality of amplitude limiting units in the static table device 15 limit the vibration of the template supporting mechanism and the template 20 to avoid the thickness of the baking-free bricks from being inconsistent due to the inclination of the template 20 during the vibrating process. Meanwhile, the height of the static table strip 15-2 in the amplitude limiting unit is adjustable, so that the amplitude of the static table device 15 can be adjusted to adapt to the preparation of various baking-free bricks.
[0037] Further referring to Figure 8The tamping device 17 comprises a top-open tamping installation box 17-4, two driving tamping shafts 17-1 are rotatably connected to the left and right ends of the inner cavity of the tamping installation box 17-4, a plurality of transmission tamping shafts 17-2 are rotatably connected to the middle of the inner cavity of the tamping installation box 17-4, eccentric vibrators 17-3 are bolted to the two ends of each transmission tamping shaft 17-2, eccentric vibrators 17-3 and tamping driven wheels 17-7 are respectively installed at the two ends of each driving tamping shaft 17-1; transmission gears 17-6 are keyed to each driving tamping shaft 17-1 and each transmission tamping shaft 17-2, and adjacent two transmission gears 17-6 are meshed; the plurality of transmission gears 17-6 are located in the tamping installation box 17-4, and the four tamping driven wheels 17-7 are arranged in pairs and located on the two sides of the tamping installation box 17-4.
[0038] The tamping device 17 further comprises a box cover plate 17-5 installed on the top of the tamping installation box 17-4; the box cover plate 17-5 is connected with the template seat plate 15-3 in the static table device 15; four external driving motors corresponding to the four tamping driven wheels 17-7 are installed on the main rack 1, driving pulleys are keyed to the output shafts of the driving motors, and transmission belts are arranged between the corresponding driving pulleys and tamping driven wheels 17-7. The tamping device 17 has four connection positions with the driving motors, two on the left and two on the right, and the tamping driven wheels 17-7 on the left and right are not arranged on the same side but on the two sides. In this way, after the tamping device 17 is installed on the solid waste treatment machine, the positions of the driving motors can be relatively flexibly arranged according to the design of the equipment structure, and the driving motors are connected with the corresponding tamping driven wheels 17-7 through belts.
[0039] Further referring to Figure 5 The lower die installation device 2 comprises a clamping bottom plate 2-9 slidably connected with a plurality of pressing guide rods 3 through linear bearings, an inner side of the clamping bottom plate 2-9 is fixedly connected with a protective fence 2-4 in an open-top manner, a clamping cover plate 2-8 is fixedly connected to the top open end of the protective fence 2-4, a plurality of pivot mounting seats 2-5 are fixedly connected to the bottom surface of the clamping cover plate 2-8, clamping swing arms 2-7 are pivotally connected to each pivot mounting seat 2-5, a clamping connecting plate 2-3 is fixedly connected between the clamping swing arms 2-7, and the inner end of the clamping connecting plate 2-3 passes out from the inner side opening of the protective fence 2-4; the lower die installation device 2 further comprises a support stand plate fixedly connected to the clamping bottom plate 2-9 and located at the inner side opening of the protective fence 2-4, and a strip-shaped hole is formed in the clamping connecting plate 2-3 and penetrates through the support stand plate.
[0040] A plurality of clamping blocks 2-2 are arranged side by side on the inner end of the clamping connecting plate 2-3, and the clamping blocks 2-2 are made of hard rubber; a plurality of air springs 2-6 are arranged between the outer end of the clamping connecting plate 2-3 and the clamping bottom plate 2-9, and are used to drive the clamping connecting plate 2-3 to swing around the pivot point; and a positioning unit for positioning the edge of the lower mold structure 4 is arranged on the clamping bottom plate 2-9.
[0041] The positioning unit comprises two groups of positioning assemblies one 2-1 and a positioning assembly two 2-10 arranged oppositely on the clamping bottom plate 2-9; the positioning assembly two 2-10 and the two groups of positioning assemblies one 2-1 are distributed in a circumferential direction; the positioning assembly one 2-1 comprises a short positioning block provided with a strip-shaped hole, and the short positioning block is connected to the clamping bottom plate 2-9 through a bolt arranged in the strip-shaped hole; the positioning assembly one 2-1 further comprises a bolt mounting plate fixed to the clamping bottom plate 2-9 and located outside the short positioning block, and a bolt is screwed into the bolt mounting plate and in tight contact with the outer side of the short positioning block; the structure of the clamping bottom plate 2-9 is basically the same as that of the positioning assembly one 2-1; the clamping bottom plate 2-9 comprises a long positioning block provided with a strip-shaped hole, and the long positioning block is connected to the clamping bottom plate 2-9 through a bolt arranged in the strip-shaped hole; the clamping bottom plate 2-9 further comprises a plurality of bolt mounting plates fixed to the clamping bottom plate 2-9 and located outside the long positioning block, and a bolt is screwed into each of the bolt mounting plates and in tight contact with the outer side of the long positioning block.
[0042] When the lower mold structure 4 needs to be replaced, the air source pressure of the air spring 2-6 is adjusted to drive the rotation of the clamping swing arm 2-7, so as to realize automatic clamping and loosening, and the clamping force can be adjusted without manual operation. In this embodiment, further, the length of the arm outside the pivot end of the clamping swing arm 2-7 is greater than the length of the arm inside the pivot end, and this structure can achieve the effect of requiring less force according to the principle of lever. The specific operation of installing the lower mold structure 4 is as follows: the air source of the air spring 2-6 is loosened to first lift the clamping connecting plate 2-3 and the plurality of clamping blocks 2-2, the edge of the lower mold structure 4 is arranged in the positioning area formed by the two positioning assemblies one 2-1 and the positioning assembly two 2-10 in the lower mold installation device 2, and then the air source is introduced into the air spring 2-6, so that the plurality of clamping blocks 2-2 press the edge of the lower mold structure 4, and the clamping is completed, which is conducive to improving the production efficiency and production quality of the solid waste treatment machine.
[0043] As Figure 4As shown, the lower mold structure 4 includes a lower mold body 4-1, two edges are symmetrically arranged on the bottom of the lower mold body 4-1, two guide baffles 4-2 are fixedly connected to the top of the lower mold body 4-1, and the cloth arranging device moves between the two guide baffles 4-2 in actual operation. When the lower mold is clamped by the lower mold mounting device 2, the edges are positioned by the matched two sets of positioning assembly one 2-1 and positioning assembly two 2-10, and then the air spring one 2-6 is inflated. The inflated air spring one 2-6 can drive the outer end of the clamping swing arm 2-7 to be raised, thereby driving the inner end of the clamping connecting plate 2-3 to install a plurality of clamping blocks 2-2 to clamp the edges of the lower mold structure 4.
[0044] Further participate Figure 2 And Figure 3 In this embodiment, the upper mold structure 5 includes an upper mold body 5-1 matched with the lower mold structure 4, and a plurality of clamping installation grooves 5-2 are formed in the top of the upper mold body 5-1.
[0045] The upper mold mounting device 10 includes a lifting mounting seat 10-2 in longitudinal sliding connection with the main frame 1, and the upper mold mounting device 10 further includes two guide sleeve mounting blocks 10-1 fixedly connected to the lifting mounting seat 10-2, and a plurality of sliding sleeves in sliding connection with the pressing guide rods 3 are installed on each guide sleeve mounting block 10-1. The piston rod of the pressing oil cylinder 9 is connected with the lifting mounting seat 10-2. Considering that the upper mold structure 5 and the lower mold structure 4 should provide certain buffering action when producing the pressing forming action of the green brick, avoiding the completely rigid pressing action to the green body in the mold cavity, which is not conducive to controlling the compactness of the green brick, and the rigid collision of the lower mold structure 4 and the upper mold structure 5 due to the error, therefore, in this embodiment, a plurality of upper buffer rubber blocks 10-3 are installed on the bottom surface of the lifting mounting seat 10-2, and the lifting buffer seat 10-5 is connected with the guide rod through the plurality of upper buffer rubber blocks 10-3, for providing buffering.
[0046] A plurality of sliding grooves are formed in the bottom surface of the lifting buffer seat 10-5, and an upper clamping assembly 10-4 is slidably inserted into each sliding groove. The plurality of upper clamping assemblies 10-4 are respectively inserted into the plurality of clamping installation grooves 5-2 and clamp the upper mold structure 5 to be installed on the lifting buffer seat 10-5.
[0047] As Figure 3As shown, the upper clamping assembly 10-4 includes an upper clamping seat 10-4-3 arranged in the clamping mounting groove 5-2, and an insertion sliding block 10-4-4 is integrally formed on the top of the upper clamping seat 10-4-3 and is in sliding connection with the sliding groove arranged on the lifting buffer seat 10-5; a plurality of spring mounting seats 10-4-1 are fixedly connected to the upper clamping seat 10-4-3 and are uniformly distributed along the length direction of the upper clamping seat 10-4-3, and a plurality of air springs II 10-4-2 are arranged on each spring mounting seat 10-4-1, for pressing the upper die body 5-1 against the bottom surface of the lifting buffer seat 10-5. In addition, a plurality of pin shaft positioning holes are arranged on the top surface of the upper die body 5-1 and the lifting buffer seat 10-5.
[0048] When it is necessary to select and replace the upper die structure 5, the air source pressure of each air spring II 10-4-2 is adjusted to release the pressing and clamping operation of each air spring II 10-4-2 on the upper die body 5-1 and the lifting buffer seat 10-5, and then the upper clamping seat 10-4-3 is manually pulled out to pull out the upper clamping assembly 10-4 as a whole, so that the upper die structure 5 can be disassembled. Conversely, when it is necessary to install the upper die structure 5 and the upper die mounting device 10, the pin shaft holes arranged on the top surface of the upper die body 5-1 and the lifting buffer seat 10-5 are aligned, and the upper die structure 5 and the upper die mounting device 10 are positioned by using the positioning pin shaft, then the upper clamping assembly 10-4 is inserted into the sliding groove arranged on the clamping mounting groove 5-2 and the lifting buffer seat 10-5, and the air source pressure of each air spring II 10-4-2 is adjusted to press and clamp the upper die body 5-1 and the lifting buffer seat 10-5 by each air spring II 10-4-2, so that the upper die structure 5 and the upper die mounting device 10 can be conveniently installed.
[0049] In order to carry out the cloth operation, such as Figure 1As shown in the drawings, the main rack 1 is fixedly connected with a cloth rack one 6 and longitudinally slidably connected with a cloth rack two 14, and the cloth rack one 6 and the cloth rack two 14 are distributed on both sides of the lower mold structure 4, and further comprising a plurality of longitudinally arranged lifting guide rods 12 fixedly connected on the main rack 1, and the cloth rack two 14 is slidably connected with the plurality of lifting guide rods 12 through linear bearings. The embodiment further comprises a let-in oil cylinder 18 installed on the main rack 1, for driving the cloth rack two 14 to move up and down. A floating joint is installed on the extension end of the let-in oil cylinder 18, and is connected with the cloth rack two 14 through the floating joint. A cloth device one 7 is installed on the cloth rack one 6, which can move transversely along the direction of approaching or moving away from the lower mold structure 4, for injecting a blank into the lower mold structure 4, and a cloth hopper one 8 is installed on the cloth rack one 6, for providing material for the cloth device one 7; a cloth device two 13 is installed on the cloth rack two 14, which can move transversely along the direction of approaching or moving away from the lower mold structure 4, for injecting a fabric into the lower mold structure 4, and a cloth hopper two 11 is installed on the cloth rack two 14, for providing material for the cloth device two 13. In addition, a discharge valve is arranged at the lower end outlet of the cloth hopper one 8 and the cloth hopper two 11.
[0050] As shown in the drawings, Figure 9 The cloth device one 7 comprises a cloth car one 7-2 movably connected on the cloth rack one 6 and in frictional contact with the bottom surface of the cloth rack one 6, a walking assembly one 7-1 installed on the cloth rack one 6 for driving the cloth car one 7-2 to move transversely towards / away from the lower mold structure 4, a material groove passing through up and down and formed on the cloth car one 7-2 for receiving material flowing out from the cloth hopper one 8, and a material spreading assembly 7-3 for spreading the material in the material groove.
[0051] Further, the cloth rack one 6 comprises a rack body one 6-3 weldedly connected on the main rack 1, a cloth bottom plate one 6-1 fixedly connected on the lower part of the rack body one 6-3, a wear-resistant plate installed on the cloth bottom plate one 6-1 and in frictional contact with the cloth car one 7-2, and two sets of oppositely arranged guide channel steels one 6-2 fixedly connected on the rack body one 6-3, and the cloth car one 7-2 is in rolling contact with the two sets of guide channel steels one 6-2.
[0052] As shown in the drawings, Figure 10As shown in the drawings, the above-mentioned material distribution vehicle 7-2 comprises two sets of material distribution vehicle side plates 7-2-2 arranged oppositely, and a boss 7-2-1 welded and connected between the two sets of material distribution vehicle side plates 7-2-2, and a connecting plate fixedly connected between the inner end portions of the two sets of material distribution vehicle side plates 7-2-2, and a material distribution vehicle scraper 7-2-3 installed on the connecting plate, wherein the material distribution vehicle scraper 7-2-3 is in frictional contact with the top of the lower mold structure 4 during the movement of the material distribution vehicle 7-2, and is used for scraping the excess material on the top of the lower mold structure 4. Walking wheels 7-2-4 are installed on the outer side surfaces of the two sets of material distribution vehicle side plates 7-2-2 and embedded into the guide channel steel 6-2 and in rolling contact with the guide channel steel 6-2.
[0053] As shown in the drawings, Figure 10 As shown in the drawings, the above-mentioned material distribution vehicle 7-2 comprises two sets of material distribution vehicle side plates 7-2-2 arranged oppositely, and a boss 7-2-1 welded and connected between the two sets of material distribution vehicle side plates 7-2-2, and a connecting plate fixedly connected between the inner end portions of the two sets of material distribution vehicle side plates 7-2-2, and a material distribution vehicle scraper 7-2-3 installed on the connecting plate, wherein the material distribution vehicle scraper 7-2-3 is in frictional contact with the top of the lower mold structure 4 during the movement of the material distribution vehicle 7-2, and is used for scraping the excess material on the top of the lower mold structure 4. Walking wheels 7-2-4 are installed on the outer side surfaces of the two sets of material distribution vehicle side plates 7-2-2 and embedded into the guide channel steel 6-2 and in rolling contact with the guide channel steel 6-2.
[0054] The mixed material is located in the material groove, and the material distribution vehicle 7-2 moves on the material distribution bottom plate 6-1 through the action of the walking oil cylinder 7-1-5. The external drive drives the two material spreading eccentric wheels 7-3-3 to rotate through the linkage shaft 7-3-2, and then the material spreading pull rod 7-3-4 drives the swing arm connecting plate 7-3-5 to reciprocate, and then the material spreading shaft 7-3-7 and the plurality of poking teeth installed thereon reciprocate, thereby producing a material poking effect on the mixed material, which can better enable the mixed material to enter the mold holes of the lower mold structure 4. In addition, the linkage shaft 7-3-2 is located in the boss 7-2-1, and a slot for penetrating the chain is formed in the above-mentioned boss 7-2-1;
[0055] As shown in the drawings, Figure 10As shown, the walking assembly 7-1 includes a walking shaft 7-1-6 rotatably connected to the top of the material frame 6 and arranged transversely, two groups of swing connecting pieces 7-1-4 fixedly connected to the walking shaft 7-1-6 and arranged side by side, a long swing arm 7-1-3 fixedly connected to each swing connecting piece 7-1-4, a short swing arm 7-1-2 pivotally connected to the outer end of each long swing arm 7-1-3, two pivot pieces 7-1-1 fixedly connected to the side of the material car 7-2, and the outer end of the short swing arm 7-1-2 is pivotally connected to the corresponding pivot piece 7-1-1. The walking oil cylinder 7-1-5 is pivotally connected between the material frame 6 and the swing connecting piece 7-1-4.
[0056] When the blank material is to be distributed, the material car 7-2 is pushed by the walking assembly 7-1 to above the lower mold structure 4, and then the blank distribution is started. Compared with the arc-shaped structure of the prior art rotating arm, the stress points and driving force of the short swing arm 7-1-2 and the long swing arm 7-1-3 are more in line with the mechanical principle.
[0057] As shown in Figure 11 The above-mentioned material distribution device 13 includes a material car 13-2 movably connected to the material frame 14 and in frictional contact with the bottom surface of the material frame 14, a walking assembly 13-1 installed on the material frame 14 for driving the material car 13-2 to move transversely towards / away from the lower mold structure 4, and a material slot opened through the material car 13-2 for receiving the material flowing out of the material distribution hopper 11.
[0058] The material frame 14 includes a material frame body 14-1 slidably connected to the lifting guide rod 12 through a linear bearing, a material bottom plate 14-3 fixedly connected to the bottom of the material frame body 14-1, and a wear-resistant plate installed on the material bottom plate 14-3 and in frictional contact with the material car 13-2. Two groups of guide channel steels 14-2 are fixedly connected to the material frame body 14-1.
[0059] As shown in Figure 12 The material car 13-2 includes two groups of material car side plates 13-2-2 arranged oppositely, a boss 13-2-1 welded between the two groups of material car side plates 13-2-2, and a connecting plate fixedly connected between the inner ends of the two groups of material car side plates 13-2-2. The two groups of material car side plates 13-2-2, the boss 13-2-1, and the connecting plate constitute the material slot.
[0060] Considering that blanks may adhere to the upper mold body 5-1 after it is raised, and that failure to clean them may affect the next pressing and molding process, in this embodiment, an upper mold scraper 13-2-4 can be installed on the connecting plate at the front of the material carrier 2 13-2. When the material carrier 2 13-2 moves, the upper mold scraper 13-2-4 scrapes the bottom of the upper mold body 5-1 when it passes under the upper mold body 5-1 to remove the adhered material.
[0061] In addition, a material cart scraper 13-2-3 is installed on the connecting plate mentioned above. During the movement of the material cart 13-2, the material cart scraper 13-2-3 comes into frictional contact with the top of the lower mold structure 4 to scrape off excess material from the top of the lower mold structure 4.
[0062] like Figure 12 As shown, the aforementioned walking assembly 13-1 includes a walking shaft 13-1-6 rotatably connected to the top of the fabric frame 14 and arranged laterally. Two sets of swing connectors 13-1-4 are fixedly connected to the walking shaft 13-1-6 in parallel. A long swing arm 13-1-3 is fixedly connected to each swing connector 13-1-4. A short swing arm 13-1-2 is pivotally connected to the outer end of each long swing arm 13-1-3. The assembly also includes two pivoting parts 13-1-1 fixedly connected to the side of the fabric carriage 13-2. The outer end of the short swing arm 13-1-2 is pivotally connected to the corresponding pivoting part 13-1-1. The assembly also includes a walking cylinder 13-1-5 pivotally connected between the fabric frame 14 and the swing connectors 13-1-4.
[0063] In actual operation, this solid waste treatment machine can be used in conjunction with the upper plate device, the feeding device, and the brick discharge device. The upper plate device is used to supply template 20 to the solid waste treatment machine (the non-fired brick products are formed on the template 20, which serves as a supporting base plate and moves with the non-fired bricks until the curing is completed and then reused). The feeding device is used to generate the mixing material and transport it to the solid waste treatment machine. The brick discharge device is used to receive the non-fired brick blanks (along with the template 20) produced by the solid waste treatment machine, stack them, and then transfer them to the curing site for curing using forklifts or other tools.
[0064] Work process:
[0065] In its initial state, the solid waste treatment machine is in Figure 1 The initial state shown:
[0066] The brick blanks are conveyed into the feeding hopper 8, and the discharge valve of the feeding hopper 8 is activated to allow the blanks inside to flow downwards into the material trough of the feeding device 7.
[0067] The template 20 is placed on the static table device 15, and then the demolding oil cylinder 19 is started, the two lower mold installation devices 2 are clamped and installed The lower mold structure 4 is driven downward until the template 20 abuts against the bottom of the lower mold body 4-1 of the lower mold structure 4, and the template 20 closes the bottom of the mold cavity of the lower mold body 4-1; After that, the walking assembly 7-1 in the material distribution device 7 is started, and the material distribution vehicle 7-2 is driven to move from the material distribution rack 6 to the lower mold structure 4, then the blank falls into the mold cavity of the lower mold body 4-1, and the walking oil cylinder 7-1-5 repeatedly moves the material distribution vehicle 7-2 on the lower mold body 4-1 Small amplitude reciprocating movement, while the material distribution shaft 7-3-7 reciprocating swing action, the above-mentioned double agitation can make the blank more smoothly enter the mold cavity of the lower mold body 4-1, in the process, the motor in the tamping device 17 can be started, to provide a certain vibration effect for the blank into the mold cavity, to ensure that the blank in the mold cavity is sufficient; During the tamping process, the static table device 15 can limit the vibration of the template 20 and the lower mold structure 4, to avoid the inclination of the template 20 and the lower mold structure 4 during the vibration process, which can cause the thickness of the brick to be inconsistent; After that, the material distribution vehicle 7-2 in the material distribution device 7 retreats to the original position, and the pressing oil cylinder 9 acts to lower the upper mold installation device 10 and the upper mold structure 5 installed thereon, the lower end of the upper mold body 5-1 is inserted into the mold cavity of the lower mold body 4-1, and the pressing and forming of the brick blank is realized, in the process The tamping device 17 started to provide vibration, after the brick blank is pressed and formed, the pressing oil cylinder 9 acts to reset the upper mold structure 5 upward;
[0068] The green brick fabric is conveyed to the cloth hopper two 11, the discharge valve of the cloth hopper two 11 is started to make the fabric in it flow downward into the material groove of the cloth device two 13; the walking assembly two 13-1 in the cloth device two 13 is started, the cloth car two 13-2 is driven to move from the cloth frame two 14 to the lower mold structure 4, then the fabric falls into the mold cavity of the lower mold body 4-1, to place the fabric on the base material, in the process of the cloth car two 13-2 moving from the cloth frame two 14 to the lower mold structure 4, the upper mold scraper 13-2-4 installed on the cloth car two 13-2 can scrape the bottom surface of the upper mold body 5-1, to clean the residual green brick on the upper mold body 5-1, avoid the residual to pollute the brick in the subsequent fabric green brick pressing process, then the cloth car two 13-2 in the cloth device two 13 retreats to the original position, then the pressing oil cylinder 9 is started, the upper mold body 5-1 is lowered again to compact the fabric and the base material in the mold cavity of the lower mold body 4-1 to form a brick, then the upper mold body 5-1 is raised again to reset; then the demolding oil cylinder 19 acts to make the two groups of lower mold mounting devices 2 and the lower mold structure 4 clamped by them rise until the lower mold body 4-1 is separated from the brick, then the formed brick is arranged neatly on the mold plate 20, then the let-in oil cylinder 18 acts to drive the cloth frame two 14 to rise, then the subsequent brick transfer operation is given a place to let in operation, after the mold plate 20 loaded with green bricks is transferred out, the let-in oil cylinder 18 is again actuated to drive the cloth frame two 14 to reset.
Claims
1. A solid waste processor characterized by: The utility model relates to a moulding machine, including main frame (1), the middle part of main frame (1) is fixed with lower mould mounting seat (16), the top buffering of lower mould mounting seat (16) is connected with static station device (15), installs the rammer (17) in the bottom of static station device (15), and the top of static station device (15) is supported with formwork (20), static station device (15) includes the formwork support mechanism of buffering connection in lower mould mounting seat (16), still includes the vibration amplitude limiting unit of being installed on lower mould mounting seat (16) and being arranged side by side across formwork support mechanism, vibration amplitude limiting unit includes two mounting seat blocks (15-1) of being fixed on lower mould mounting seat (16) and being distributed in the both sides of formwork support mechanism, installs static station strip (15-2) of top surface lower than the support surface of formwork support mechanism between two mounting seat blocks (15-1) and the longitudinal position is adjustable, the main frame (1) is longitudinally slidably connected with the lower mould mounting device (2) of being arranged oppositely between two groups, and the lower mould structure (4) is clamped and installed between two groups lower mould mounting device (2), still includes the stripper cylinder (19) for driving lower mould structure (4) to lift and move, lower mould mounting device (2) includes the clamping bottom plate (2-9) of sliding connection with main frame (1), is pivotally connected with the clamping connecting plate (2-3) on clamping bottom plate (2-9), is arranged side by side and is installed in the inner end of clamping connecting plate (2-3) a plurality of clamping blocks (2-2), a plurality of air springs (2-6) are installed between the outer end of clamping connecting plate (2-3) and clamping bottom plate (2-9), for driving clamping connecting plate (2-3) swing around pivot point, still include the positioning unit for the edge of lower mould structure (4) positioning that is installed on clamping bottom plate (2-9), the upper mould mounting device (10) is longitudinally slidably connected on main frame (1), the upper mould structure (5) that is cooperated with lower mould structure (4) is installed on upper mould mounting device (10), still includes the pressing cylinder (9) that is installed on main frame (1), for driving upper mould mounting device (10) to lift and move, the upper mould structure (5) includes the upper mould body (5-1) of being adapted with lower mould structure (4), a plurality of clamping installation grooves (5-2) are set up on the top of upper mould body (5-1), upper mould mounting device (10) includes the lift mounting seat (10-2) of longitudinal sliding connection with main frame (1), a plurality of upper buffer rubber pads (10-3) are installed on the bottom surface of lift mounting seat (10-2) and are connected with lift buffer seat (10-5) through a plurality of upper buffer rubber pads (10-3) and guide rod buffering, a plurality of slide grooves are set up on the bottom surface of lift buffer seat (10-5), and the upper clamping assembly (10-4) is slidably inserted in each slide groove, a plurality of upper clamping assemblies (10-4) are respectively threaded in a plurality of clamping installation grooves (5-2) and are clamped and installed with upper mould structure (5) on lift buffer seat (10-5).The utility model is installed cloth frame one (6) and longitudinal sliding connection cloth frame two (14) on host frame (1), and cloth frame one (6) and cloth frame two (14) distribute in the both sides of lower mould structure (4), still include the installation of let place oil cylinder (18) on host frame (1) is used for driving cloth frame two (14) to go up and down and move, install cloth device one (7) on cloth frame one (6) and can move to the direction of approaching or away from lower mould structure (4) transversely reciprocating, be used for injecting blank into lower mould structure (4), install cloth hopper one (8) on cloth frame one (6) and be used for providing material for cloth device one (7), install cloth device two (13) on cloth frame two (14) and can move to the direction of approaching or away from lower mould structure (4) transversely reciprocating, be used for injecting face material into lower mould structure (4), install cloth hopper two (11) on cloth frame two (14) and be used for providing material for cloth device two (13).
2. The solid waste processor of claim 1, wherein: The upper clamping assembly (10-4) comprises an upper clamping seat (10-4-3) arranged in the clamping mounting groove (5-2), an insertion sliding block (10-4-4) is integrally formed on the top of the upper clamping seat (10-4-3) and is in sliding connection with the sliding groove of the lifting buffer seat (10-5); a plurality of spring mounting seats (10-4-1) are uniformly distributed along the length direction of the upper clamping seat (10-4-3), and a plurality of air springs II (10-4-2) are mounted on each spring mounting seat (10-4-1) for tightly pressing the upper die body (5-1) against the bottom surface of the lifting buffer seat (10-5).
3. The solid waste processor of claim 1, wherein: The lower die mounting device (2) further comprises a protective fence (2-4) integrally connected to the clamping bottom plate (2-9) and having an open inner side, and the inner end of the clamping connecting plate (2-3) is arranged to pass through the open inner side of the protective fence (2-4); the clamping cover plate (2-8) is integrally connected to the top opening of the protective fence (2-4), a plurality of pivot mounting seats (2-5) are integrally connected to the bottom surface of the clamping cover plate (2-8), and a plurality of clamping swing arms (2-7) are pivotally connected to each pivot mounting seat (2-5), and the clamping connecting plate (2-3) is integrally connected to the plurality of clamping swing arms (2-7).
4. The solid waste processor of claim 1 wherein: The positioning unit comprises two groups of positioning assembly I (2-1) and positioning assembly II (2-10) arranged opposite to each other on the clamping bottom plate (2-9); the positioning assembly I (2-1) comprises a short positioning block provided with a strip-shaped hole, the short positioning block is connected to the clamping bottom plate (2-9) through a bolt arranged in the strip-shaped hole, and further comprises a bolt mounting plate integrally connected to the outer side of the short positioning block on the clamping bottom plate (2-9), and a bolt is screwed into the bolt mounting plate and tightly contacts the outer side of the short positioning block; the clamping bottom plate (2-9) comprises a long positioning block provided with a strip-shaped hole, the long positioning block is connected to the clamping bottom plate (2-9) through a bolt arranged in the strip-shaped hole, and further comprises a bolt mounting plate integrally connected to the outer side of the long positioning block on the clamping bottom plate (2-9), and a bolt is screwed into the bolt mounting plate and tightly contacts the outer side of the long positioning block.
5. The solid waste processor of claim 1 wherein: The material distribution device I (7) comprises a material distribution vehicle I (7-2) movably connected to the material distribution frame I (6) and in frictional contact with the bottom surface of the material distribution frame I (6), a walking assembly I (7-1) is mounted on the material distribution frame I (6) for driving the material distribution vehicle I (7-2) to move transversely towards / away from the lower die structure (4), a material slot is formed in the material distribution vehicle I (7-2) and extends vertically, for receiving materials flowing out of the material distribution hopper I (8), and further comprises a material spreading assembly (7-3) for spreading the materials in the material slot.
6. The solid waste processor of claim 5 wherein: The material spreading assembly (7-3) comprises a plurality of material spreading shafts (7-3-7) arranged in parallel and rotatably connected with the first distributing vehicle (7-2) in the material groove, a plurality of poking teeth are mounted on each material spreading shaft (7-3-7); a material spreading swing arm (7-3-6) is fixedly connected at each end of each material spreading shaft (7-3-7), a swing arm connecting plate (7-3-5) is pivotally connected at the upper end of each material spreading swing arm (7-3-6) on the same side, a linkage shaft (7-3-2) is rotatably connected on the first distributing vehicle (7-2), a material spreading eccentric wheel (7-3-3) is keyed connected at each end of the linkage shaft (7-3-2), a material spreading pull rod (7-3-4) is pivotally connected between the rim of the material spreading eccentric wheel (7-3-3) on the same side and the swing arm connecting plate (7-3-5); and a material spreading driving mechanism (7-3-1) is arranged for driving the linkage shaft (7-3-2) to rotate.
7. The solid waste processor of claim 5 wherein: The walking assembly one (7-1) comprises a walking shaft one (7-1-6) rotatably connected at the top of the first distributing frame (6) and arranged transversely, two groups of swing connecting pieces one (7-1-4) are fixedly connected in parallel on the walking shaft one (7-1-6), a long swing arm one (7-1-3) is fixedly connected on each swing connecting piece one (7-1-4), a short swing arm one (7-1-2) is pivotally connected at the outer end of each long swing arm one (7-1-3), two pivot pieces one (7-1-1) are fixedly connected on the side surface of the first distributing vehicle (7-2), the outer end of the short swing arm one (7-1-2) is pivotally connected with the corresponding pivot piece one (7-1-1); and a walking oil cylinder one (7-1-5) is pivotally connected between the first distributing frame (6) and the swing connecting piece one (7-1-4).
8. The solid waste processor of claim 1 wherein: The material distributing device two (13) comprises a material distributing vehicle two (13-2) movably connected on the second distributing frame (14) and in frictional contact with the bottom surface of the second distributing frame (14), a walking assembly two (13-1) for driving the material distributing vehicle two (13-2) to move transversely towards / away from the lower mold structure (4) is mounted on the second distributing frame (14), a material groove penetrating up and down is formed on the material distributing vehicle two (13-2) for receiving the material flowing out from the material distributing hopper two (11); an upper mold scraper (13-2-4) is mounted at the inner end of the material distributing vehicle two (13-2) for cleaning the bottom surface of the upper mold body (5-1).
9. The solid waste processor of claim 1 wherein: The walking assembly two (13-1) comprises a walking shaft two (13-1-6) which is rotatably connected to the top of the material frame two (14) and is arranged transversely, two groups of swing connecting pieces two (13-1-4) which are arranged in parallel and are fixed to the walking shaft two (13-1-6), two long swing arms two (13-1-3) which are fixed to each of the swing connecting pieces two (13-1-4), two short swing arms two (13-1-2) which are pivotally connected to the outer ends of the long swing arms two (13-1-3), two pivot pieces two (13-1-1) which are fixed to the sides of the material car two (13-2), and the outer ends of the short swing arms two (13-1-2) are pivotally connected to the corresponding pivot pieces two (13-1-1); and a walking oil cylinder two (13-1-5) which is pivotally connected between the material frame two (14) and the swing connecting pieces two (13-1-4).
10. The solid waste processor of claim 1 wherein: The vibrating device (17) comprises an open-top vibrating installation box (17-4), two driving vibrating shafts (17-1) which are arranged transversely and are rotatably connected to the two ends of the inner cavity of the vibrating installation box (17-4), a plurality of transmission vibrating shafts (17-2) which are arranged transversely and are rotatably connected to the middle of the inner cavity of the vibrating installation box (17-4), eccentric vibrators (17-3) which are bolted to the two ends of each transmission vibrating shaft (17-2), eccentric vibrators (17-3) and vibrating driven wheels (17-7) which are respectively installed at the two ends of each driving vibrating shaft (17-1); The transmission gears (17-6) are keyed to each of the driving vibrating shafts (17-1) and the transmission vibrating shafts (17-2), and adjacent two transmission gears (17-6) are engaged with each other; the vibrating device (17) further comprises a box cover plate (17-5) which is installed on the top of the vibrating installation box (17-4); and four driving motors which are respectively arranged corresponding to the four vibrating driven wheels (17-7) and are installed on the main frame (1), driving pulleys which are keyed to the output shafts of the driving motors, and transmission belts which are arranged corresponding to the driving pulleys and the vibrating driven wheels (17-7).