Energy-saving recycled concrete processing and manufacturing equipment

By introducing swing rod-driven crushing rods and pre-crumbing units into the recycled concrete processing and manufacturing equipment, the problem of difficult crushing of large stones by cone crushers is solved, and efficient crushing and energy-saving production are achieved.

CN120268484AInactive Publication Date: 2025-07-08LINYI LUOJIAN BUILDING MATERIALS PROD CO LTD
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Patent Information

Application Number
CN202510519284.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing cone crushers are prone to rotor idling when dealing with stones with smooth surfaces or large volumes, resulting in the inability to effectively crush the stones, which increases the complexity of the processing process and production costs.

Method used

An energy-saving recycled concrete processing and manufacturing equipment is designed, and the crushing rod is driven by a swing rod. By extruding and crushing units and pre-crumbing units, efficient crushing of stone is achieved.

Benefits of technology

It effectively avoids the inability to crush stones, improves crushing efficiency, reduces multiple machine-type and complicated processes, and reduces production costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of concrete regeneration equipment, in particular to energy-saving recycled concrete processing and manufacturing equipment which comprises a feeding shell, an eccentric shaft rod, an eccentric shaft sleeve, a crushing wall main body, a movable cone, an extrusion crushing unit, a crushing wall main body and an extrusion crushing unit, according to the energy-saving recycled concrete processing and manufacturing equipment, when the movable cone swings, the swing rod can be driven to move, the arranged extrusion crushing unit can convert force generated by the swing rod so as to drive the crushing rod to move, and therefore the crushing rod can be driven to collide with stone materials, and the energy-saving recycled concrete processing and manufacturing equipment has the beneficial effects that the energy-saving recycled concrete processing and manufacturing equipment is more energy-saving and environment-friendly. The crushing rods can sequentially stretch out of the outer side of the dustproof shell to extrude and crush the stone, the arranged crushing rods can extrude and crush the stone on the crushing wall body and can continuously exert extrusion force on the stone in the crushing stage, and the stone can be promoted to rapidly fall down.
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Description

Technical Field

[0001] The present invention relates to the technical field of concrete recycling equipment, and particularly to an energy-saving recycled concrete processing and manufacturing equipment. Background Art

[0004] Currently, in concrete recycling processing and manufacturing equipment, crushers are one of the commonly used equipment. Among them, the cone crusher is particularly widely used. The cone crusher mainly realizes the crushing function of stones by the twisting of the set cone components.

[0005] However, in the actual use process, when encountering stones with overly smooth surfaces or overly large volumes, the cone crusher often experiences the situation of the rotor idling, resulting in the stones not being effectively crushed. Therefore, in actual operation, it is usually necessary to first perform a pre-crushing treatment, that is, the so-called "primary crushing", by another crusher, and then the cone crusher can be further used for fine crushing. This not only increases the complexity of the entire processing flow but also significantly increases the production cost. For this reason, we propose an energy-saving recycled concrete processing and manufacturing equipment. Summary of the Invention

[0006] One technical problem to be solved by the present application is: how to design an energy-saving recycled concrete processing and manufacturing equipment that can efficiently crush stones.

[0007] To solve the above technical problem, the embodiment of the present application provides an energy-saving recycled concrete processing and manufacturing equipment, including a feeding shell, a hydraulic device, an eccentric shaft rod, an eccentric shaft sleeve, a main crushing wall, and a moving cone. Two support rods are provided on the inner wall of the feeding shell, and further includes:

[0008] A swing rod, arranged at the top of the moving cone and moving along the movement trajectory of the top of the moving cone;

[0009] A dust-proof shell, arranged between the two support rods;

[0010] Crushing rods, movably arranged inside the dust-proof shell, multiple in number and evenly distributed on the outside of the dust-proof shell;

[0011] An extrusion crushing unit, arranged between the dust-proof shell and the moving cone, and working through the drive of the swing rod, indirectly applying the movement trajectory and force of the swing rod to the crushing rods, so that the crushing rods impact the stones.

[0012] In some embodiments, the extrusion and crushing unit includes a connection disk provided at the bottom of the dust-proof housing. The bottom of the connection disk is movably provided at the top of the moving cone. A large rounded square groove is formed at the bottom of the connection disk. A triangular plate is movably sleeved on the outer side of the swing rod. Grooves are formed at the three corners of the triangular plate. Connecting rods are provided on the inner walls of the three grooves. Rollers are movably sleeved on the three connecting rods. The outer surfaces of the three rollers are movably provided on the inner wall of the large rounded square groove.

[0013] In some embodiments, a sliding rod is fixedly provided at the top of one of the corners of the triangular plate. A small rounded square groove is formed at the top of the connection disk. The large rounded square groove and the connection disk communicate with each other through the small rounded square groove. The sliding rod is movably provided on the inner wall of the small rounded square groove. A double-sided inclined plate is fixedly provided at the top end of the sliding rod. A wedge block is provided at the end face of the crushing rod inside the dust-proof housing. The double-sided inclined plate is movably provided on both sides of the wedge block.

[0014] In some embodiments, a second spring is sleeved on the crushing rod. One end of the second spring is fixedly provided on the inner wall of the dust-proof housing. A circular groove is formed inside the crushing rod. An impact rod is movably provided on the inner wall of the circular groove. One end of the impact rod penetrates through the inner wall of the crushing rod and extends to the end face of the crushing rod. A counterweight block is provided at the other end of the impact rod. A first spring is provided between the inner wall of the circular groove and the end face of the counterweight block.

[0015] In some embodiments, a driving member is provided at the bottom of the feeding housing for driving the moving cone and the main body of the crushing wall to shake. The driving member includes a blanking cylinder provided at the bottom of the feeding housing. A support sleeve is fixedly provided inside the blanking cylinder. A driving shaft is provided inside the support sleeve. A driving helical gear is provided at the output end of the driving shaft. A driven helical gear is provided at the bottom end of the eccentric shaft sleeve. The driven helical gear is sleeved on the outer side of the eccentric shaft rod. The driven helical gear and the driving helical gear are meshed with each other.

[0016] In some embodiments, a power storage member is provided inside the crushing rod for storing power for the impact rod when the crushing rod extends and then firing it. The power storage member includes a frustum-shaped block provided between the impact rod and the first spring. The frustum-shaped block is movably provided on the inner wall of the circular groove. A straight groove is formed at the top end of the connection disk. An inclined head rod is movably provided on the inner wall of the straight groove. The top end of the inclined head rod penetrates through the outer side of the crushing rod and is movably provided on the inclined surface of the frustum-shaped block. A third spring is sleeved on the outer side of the inclined head rod. The bottom end of the third spring is fixedly provided at the top end of the connection disk.

[0017] In some embodiments, a pre-crushing unit is provided inside the feed housing for pre-crushing before the stone is put in. The pre-crushing unit includes a plurality of side baffles, and the plurality of side baffles are all fixedly arranged on the inner wall of the feed housing and are distributed in a circular pattern. A fixed jaw plate is arranged between every two of the plurality of side baffles, and a straight rod is arranged between every two of the plurality of side baffles. A movable jaw plate is movably sleeved on the outer surface of each of the plurality of straight rods.

[0018] In some embodiments, an upper top plate is arranged at the top between the plurality of side baffles. A placement shell is arranged on the inner wall of the plurality of side baffles. The placement shell is arranged at the top end of the dust-proof shell, and a through groove is opened at the top end of the dust-proof shell. The interior of the placement shell and the dust-proof shell are communicated through the through groove, and a transmission member for driving the movable jaw plate to extrude the stone is arranged at the through groove.

[0019] In some embodiments, the transmission member includes an inclined rod arranged at the top end of a triangular plate. A collar is movably sleeved on the outer side of the through groove by the inclined rod. An L-shaped plate is arranged at the top of the dust-proof shell. A rotating rod is rotatably arranged inside the L-shaped plate. A connecting plate is fixedly arranged between the collar and the rotating rod, and the connecting plate has a certain telescopic function. The top end of the rotating rod penetrates through the placement shell and is rotatably arranged at the bottom end of the upper top plate.

[0020] In some embodiments, a protective plate is arranged between the two side baffles. A telescopic rod is movably arranged inside the protective plate. A fourth spring is sleeved on the outer side of the telescopic rod. One end of the fourth spring is fixedly arranged on the inner side of the protective plate. A movable plate is arranged on the side of the movable jaw plate. The end face of the telescopic rod is movably connected to the side of the movable plate. A concave-convex disk is fixedly sleeved on the outer surface of the rotating rod. The other end of the telescopic rod is movably arranged on the outer side of the concave-convex disk.

[0021] The present invention has at least the following beneficial effects:

[0022] 1. When the moving cone swings, it will drive the swinging rod to move. At the same time, the arranged extrusion and crushing unit can convert the force generated by the swinging rod, thereby driving the crushing rod to move. Under this action, the plurality of crushing rods will sequentially extend out from the outside of the dust-proof shell to extrude the stones on the crushing wall body that are difficult to fall by themselves, and then crush them. In this way, the phenomenon that the stones cannot be crushed can be effectively avoided.

[0023] 2. During the crushing operation, the arranged crushing rods can not only extrude and crush the stones at the crushing wall body, but also continuously apply an extrusion force to the stones that are in the crushing stage, so as to promote the rapid falling of the stones, and thus significantly improve the working efficiency.

[0024] 3. Before the crushing rod performs extrusion operation on the stone material, the energy storage member will first come into contact with the stone materials that cannot fall by themselves. This early impact effect can effectively improve the success rate of the crushing operation.

[0025] 4. The pre-crushing unit provided in the feeding housing adopts a detachable design. During actual use, it can be installed in place to first perform pre-crushing treatment on the stone materials. In this way, the particle size of the stone materials can be further reduced, thereby avoiding the complicated processes of using multiple crushers. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 is a schematic diagram of the overall structure of the present invention;

[0027] Figure 2 is a schematic cross-sectional structure diagram of the feeding housing of the present invention;

[0028] Figure 3 is a schematic structure diagram of the driving member of the present invention;

[0029] Figure 4 is a schematic structure diagram of the moving cone, the main body of the crushing wall and the eccentric bushing of the present invention;

[0030] Figure 5 is a schematic structure diagram of the moving cone, the support rod and the dust-proof housing of the present invention;

[0031] Figure 6 is a schematic cross-sectional structure diagram of the dust-proof housing of the present invention;

[0032] Figure 7 is a schematic structure diagram of the swing rod, the connecting plate and the roller of the present invention;

[0033] Figure 8 is a schematic structure diagram of the swing rod, the crushing rod and the wedge block of the present invention;

[0034] Figure 9 is a schematic cross-sectional structure diagram of the connecting plate of the present invention;

[0035] Figure 10 is Figure 9 an enlarged structure diagram at A;

[0036] Figure 11 is an exploded structure diagram of the energy storage member of the present invention;

[0037] Figure 12 is a schematic structure diagram of the feeding housing and the pre-crushing unit of the present invention;

[0038] Figure 13 is a schematic structure diagram of the pre-crushing unit of the present invention;

[0039] Figure 14 is a schematic cross-sectional structure diagram of the upper top plate of the present invention;

[0040] Figure 15 For the concave-convex disc, rotating rod and dust-proof housing of the present invention;

[0041] Figure 16 Schematic structural diagram of the transmission member of the present invention;

[0042] Figure 17 Schematic structural diagram of the protection plate, moving jaw plate and telescopic rod of the present invention.

[0043] In the figure: 1, feeding housing; 2, hydraulic device; 3, driving member; 31, blanking cylinder; 32, support sleeve; 33, driving shaft; 34, driving bevel gear; 35, driven bevel gear; 4, support rod; 5, eccentric shaft rod; 6, eccentric shaft sleeve; 7, main body of crushing wall; 8, moving cone; 9, swinging rod; 10, dust-proof housing; 11, extrusion crushing unit; 111, connecting plate; 112, triangular plate; 113, groove; 114, connecting rod; 115, roller; 116, large rounded square groove; 117, small rounded square groove; 118, impact rod; 119, circular groove; 120, counterweight block; 121, first spring; 122, double-sided inclined plate; 123, sliding rod; 124, second spring; 125, wedge block; 12, crushing rod; 13, energy storage member; 131, frustum block; 132, inclined head rod; 133, straight groove; 134, third spring; 14, pre-crushing unit; 141, fixed jaw plate; 142, upper top plate; 143, side baffle; 144, moving jaw plate; 145, placing housing; 146, through groove; 147, straight rod; 15, transmission member; 151, rotating rod; 152, concave-convex disc; 153, L-shaped plate; 154, collar; 155, connecting plate; 156, inclined rod; 157, protection plate; 158, telescopic rod; 159, fourth spring; 1510, movable plate. Specific embodiments

[0044] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.

[0045] Embodiment 1: Please refer to Figures 1-8, the present invention provides a technical solution: an energy-saving recycled concrete processing and manufacturing device, including a feeding shell 1, a hydraulic device 2, an eccentric shaft rod 5, an eccentric shaft sleeve 6, a main crushing wall 7 and a moving cone 8. The connection relationships of the above structures are all existing structures and will not be elaborated here. When the whole concrete is crushed, it will become small fragments. At this time, the crushed concrete fragments are screened, and the required ones are left. Then, by controlling environmental conditions such as temperature and humidity, the cement hydration reaction inside the concrete is promoted to proceed fully, thereby enhancing its strength and durability. This technological process is called curing. Finally, its quality is detected to complete the recycled use of the concrete, thus achieving the effect of energy conservation. There are two support rods 4 arranged on the inner wall of the feeding shell 1, and further included are:

[0046] A swing rod 9, arranged at the top of the moving cone 8 and moving along the movement track of the top of the moving cone 8;

[0047] A dust-proof shell 10, arranged between the two support rods 4;

[0048] Crushing rods 12, movably arranged inside the dust-proof shell 10, with multiple of them and evenly distributed on the outer side of the dust-proof shell 10. There are multiple protrusions arranged on the end face of the crushing rod 12 in contact with the stone material, and they are circumferentially distributed, so as to better crush the stone material;

[0049] An extrusion crushing unit 11, arranged between the dust-proof shell 10 and the moving cone 8, and working by the drive of the swing rod 9. The movement track and force of the swing rod 9 are indirectly applied to the crushing rod 12, so that the crushing rod 12 impacts the stone material.

[0050] The extrusion crushing unit 11 includes a connection disk 111 arranged at the bottom of the dust-proof shell 10. The bottom of the connection disk 111 is movably arranged on the top of the moving cone 8. A large rounded square groove 116 is opened at the bottom of the connection disk 111. A triangular plate 112 is movably sleeved on the outer side of the swing rod 9. Grooves 113 are opened at the three corners of the triangular plate 112. Connecting rods 114 are arranged on the inner walls of the three grooves 113. Roller 115 is movably sleeved on each of the three connecting rods 114, and the outer surfaces of the three rollers 115 are movably arranged on the inner wall of the large rounded square groove 116. When the swing rod 9 drives the triangular plate 112 to move, the triangular plate 112 will slide on the inner wall of the large rounded square groove 116, and its movement track is also erratic but will rotate.

[0051] At the top of one corner of the triangular plate 112, a sliding rod 123 is fixedly arranged. At the top of the connecting plate 111, a small rounded-corner square groove 117 is formed. The large rounded-corner square groove 116 and the connecting plate 111 communicate with each other through the small rounded-corner square groove 117. The sliding rod 123 is movably arranged on the inner wall of the small rounded-corner square groove 117. At the top end of the sliding rod 123, a double-sided inclined plate 122 is fixedly arranged. At the end face of the crushing rod 12 inside the dust-proof shell 10, a wedge block 125 is arranged. The double-sided inclined plate 122 is movably arranged on both sides of the wedge block 125. By rotating one end of the triangular plate 112 to move, the sliding rod 123 can be driven to move in the small rounded-corner square groove 117, so that the sliding rod 123 drives the double-sided inclined plate 122 to move, and then contacts the wedge block 125, thereby squeezing the crushing rod 12 to move.

[0052] A second spring 124 is sleeved on the crushing rod 12. One end of the second spring 124 is fixedly arranged on the inner wall of the dust-proof shell 10. A circular groove 119 is formed inside the crushing rod 12. An impact rod 118 is movably arranged on the inner wall of the circular groove 119. One end of the impact rod 118 penetrates through the inner wall of the crushing rod 12 and extends to the end face of the crushing rod 12. A counterweight block 120 is arranged at the other end of the impact rod 118. A first spring 121 is arranged between the inner wall of the circular groove 119 and the end face of the counterweight block 120. The arranged second spring 124 can reset after the crushing rod 12 impacts, and the impact rod 118 will slide out of the circular groove 119 under the action of inertia and then impact the stone material.

[0053] A driving member 3 is arranged at the bottom of the feeding shell 1 for driving the moving cone 8 and the main body 7 of the crushing wall to shake. The driving member 3 includes a feeding cylinder 31 arranged at the bottom of the feeding shell 1. A support sleeve 32 is fixedly arranged inside the feeding cylinder 31. A driving shaft 33 is arranged inside the support sleeve 32. A driving helical gear 34 is arranged at the output end of the driving shaft 33. A driven helical gear 35 is arranged at the bottom end of the eccentric bushing 6. The driven helical gear 35 is sleeved outside the eccentric shaft rod 5. The driven helical gear 35 and the driving helical gear 34 are meshed with each other. By rotating the eccentric bushing 6, the moving cone 8 can be driven to move, and the stone material entering the main body 7 of the crushing wall is crushed by rolling.

[0054] When using the device, first start the drive shaft 33 to rotate, so that the drive shaft 33 drives the driving bevel gear 34 to rotate, and the driving bevel gear 34 drives the driven bevel gear 35 to rotate, and at this time the driven bevel gear 35 drives the eccentric sleeve 6 to rotate on the outer surface of the eccentric shaft 5, thereby driving the movable cone 8 and the crushing wall body 7 to swing. At this time, when the stone cannot enter the crushing wall body 7, the movable cone 8 will swing, and the movable cone 8 will drive the triangular plate 112 set at the top to move. Since the triangular plate 112 is limited inside the large-angle square groove 116, and the triangles are all provided with rollers 115, the triangular plate 112 will be driven to move at the large-angle square groove 116. The inner wall of the square groove 116 rotates, and the triangular plate 112 drives the sliding bar 123 set on the top to move against the inner wall of the small rounded square groove 117, and drives the double-sided inclined plate 122 to move. At this time, the triangular plate 112 squeezes multiple wedge blocks 125 in sequence, thereby driving the crushing rod 12 to squeeze and crush the stone, so that the stone can enter the crushing wall body 7. At this time, the crushing rod 12 will reset under the action of the second spring 124. Before the crushing rod 12 is crushed, the counterweight block 120 will slide on the inner wall of the circular groove 119 under the action of inertia, driving the impact rod 118 to hit the stone in advance, and it will reset under the action of the first spring 121.

[0055] Example 2: Please refer to Figures 9-11 The present invention provides a technical solution: a force storage piece 13 is arranged inside the breaker rod 12, which is used to store force on the impact rod 118 when the breaker rod 12 is extended, and then fire it. The force storage piece 13 includes a truncated cone block 131 arranged between the impact rod 118 and the spring 121, and the truncated cone block 131 is movably arranged on the inner wall of the circular groove 119. A straight groove 133 is opened at the top of the connecting disk 111, and an oblique head rod 132 is movably arranged on the inner wall of the straight groove 133. The top of the oblique head rod 132 passes through the outer side of the breaker rod 12 and is movably arranged on the inclined surface of the truncated cone block 131. A spring 3 134 is sleeved on the outer side of the oblique head rod 132, and the bottom end of the spring 3 134 is fixedly arranged on the top of the connecting disk 111. By changing the impact rod 118 driven by inertia into a firing type, force can be stored through the spring 3 134, and work can be performed more efficiently.

[0056] When 21 is about to hit the stone, it will drive the breaker rod 12 to move. At this time, the truncated cone block 131 connected to the impact rod 118 will be supported by the inclined surface of the bevel rod 132, and at this time it will be limited by the action of spring three 134. When the force of the breaker rod 12 squeezing the spring one 121 is too large, the bevel rod 132 and the spring three 134 cannot limit the truncated cone block 131, so that the bevel rod 132 enters the inner wall of the straight groove 133, and the impact rod 118 will quickly hit the stone under the accumulated force of the truncated cone block 131 and the spring one 121, so that the breaker rod 12 is more efficient in crushing.

[0057] Example 3: Please refer toFigures 12-17 The present invention provides a technical solution: a pre-crushing unit 14 is provided inside the feeding shell 1 for pre-crushing before stones are put in. The pre-crushing unit 14 includes a plurality of side baffles 143, and the plurality of side baffles 143 are all fixedly arranged on the inner wall of the feeding shell 1 and are distributed in a circumferential manner. A fixed jaw plate 141 is arranged between every two of the plurality of side baffles 143, and a straight rod 147 is arranged between every two of the plurality of side baffles 143. A moving jaw plate 144 is movably sleeved on the outer surface of the plurality of straight rods 147. The stones between the fixed jaw plates 141 are squeezed by the moving jaw plate 144 to be pre-crushed.

[0058] A top disc 142 is arranged at the top between the plurality of side baffles 143. A placing shell 145 is arranged on the inner wall of the plurality of side baffles 143. The placing shell 145 is arranged at the top end of the dust-proof shell 10, and a through groove 146 is opened at the top end of the dust-proof shell 10. The inside of the placing shell 145 and the dust-proof shell 10 are communicated through the through groove 146, and a transmission member 15 for driving the moving jaw plate 144 to squeeze the stones is arranged at the through groove 146.

[0059] The transmission member 15 includes an inclined rod 156 arranged at the top end of the triangular plate 112. A collar 154 is movably sleeved on the outer side of the inclined rod 156 through the through groove 146. An L-shaped plate 153 is arranged at the top of the dust-proof shell 10. A rotating rod 151 is rotatably arranged inside the L-shaped plate 153. A connecting plate 155 is fixedly arranged between the collar 154 and the rotating rod 151, and the connecting plate 155 has a certain telescopic function. The top end of the rotating rod 151 penetrates through the placing shell 145 and is rotatably arranged at the bottom end of the top disc 142. The inclined rod 156 is connected to the triangular plate 112 to make it rotate around the swing rod 9, so that the connecting plate 155 and the connected rotating rod 151 can be driven to rotate. Since the triangular plate 112 rotates up and down in a large and small manner, the connecting plate 155 connected to the two has a certain telescopic function.

[0060] A protection plate 157 is arranged between two side baffles 143. A telescopic rod 158 is movably arranged inside the protection plate 157. A fourth spring 159 is sleeved on the outer side of the telescopic rod 158. One end of the fourth spring 159 is fixedly arranged on the inner side of the protection plate 157. A movable plate 1510 is arranged on the side of the moving jaw plate 144. The end face of the telescopic rod 158 is movably connected to the side of the movable plate 1510. A concave-convex disc 152 is fixedly sleeved on the outer surface of the rotating rod 151. The other end of the telescopic rod 158 is movably arranged on the outer side of the concave-convex disc 152. By rotating the concave-convex disc 152, when the telescopic rod 158 touches the concave part of the concave-convex disc 152, the moving jaw plate 144 can be made to move away from the fixed jaw plate 141. When it reaches the convex part, the moving jaw plate 144 will be made to squeeze the top jaw plate.

[0061] When putting the stone material into the interior of the feeding shell 1, it will enter between different fixed jaw plates 141 and moving jaw plates 144 respectively. At this time, the moving cone 8 will drive the swing rod 9 to drive the triangular plate 112 to rotate. The top inclined rod 156 of the triangular plate 112 moves, causing the inclined rod 156 and the collar 154 to rotate around the rotating rod 151. The connecting plate 155 connected between the rotating rod 151 and the collar 154 is the connection part between the two. When the rotating rod 151 rotates, it will drive the concave-convex disk 152 fixedly sleeved on its outer surface to rotate, so that the telescopic rod 158 on the outer surface of the concave-convex disk 152 reciprocates between the concave and convex parts of the concave-convex disk 152, driving the moving jaw plate 144 to reciprocate. Therefore, the stone material entering can be pre-crushed, and the feeding shell 1 can be replaced for disassembly.

[0062] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.

[0063] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention.

Claims

1. An energy-saving recycled concrete processing and manufacturing device, comprising a feeding shell (1), a hydraulic device (2), an eccentric shaft rod (5), an eccentric bushing (6), a main body of the crushing wall (7) and a moving cone (8), characterized in that: Two support rods (4) are provided on the inner wall of the feeding shell (1), and further included are: A swing rod (9) is arranged at the top end of the moving cone (8) and moves along the movement track of the top end of the moving cone (8); A dust-proof shell (10) is arranged between the two support rods (4); Crushing rods (12) are movably arranged inside the dust-proof shell (10), there are multiple of them, and they are evenly distributed on the outer side of the dust-proof shell (10); An extrusion crushing unit (11) is arranged between the dust-proof shell (10) and the moving cone (8), and works by the drive of the swing rod (9), indirectly acting the movement track and force of the swing rod (9) on the crushing rods (12), so that the crushing rods (12) impact the stones.

2. The energy-saving recycled concrete processing and manufacturing equipment according to claim 1, characterized in that: The extrusion crushing unit (11) includes a connecting disk (111) arranged at the bottom of the dust-proof shell (10), the bottom of the connecting disk (111) is movably arranged on the top of the moving cone (8), a large rounded square groove (116) is opened at the bottom of the connecting disk (111), a triangular plate (112) is movably sleeved on the outer side of the swing rod (9), grooves (113) are opened at the three corners of the triangular plate (112), connecting rods (114) are arranged on the inner walls of the three grooves (113), rollers (115) are movably sleeved on the three connecting rods (114), and the outer surfaces of the three rollers (115) are movably arranged on the inner wall of the large rounded square groove (116).

3. The energy-saving recycled concrete processing and manufacturing equipment according to claim 2, characterized in that: A slide rod (123) is fixedly arranged at the top of one of the corners of the triangular plate (112), a small rounded square groove (117) is opened at the top of the connecting disk (111), and the large rounded square groove (116) communicates with the connecting disk (111) through the small rounded square groove (117), the slide rod (123) is movably arranged on the inner wall of the small rounded square groove (117), a double-sided inclined plate (122) is fixedly arranged at the top end of the slide rod (123), a wedge block (125) is arranged at the end face of the crushing rod (12) inside the dust-proof shell (10), and the double-sided inclined plate (122) is movably arranged on both sides of the wedge block (125).

4. The energy-saving recycled concrete processing and manufacturing equipment according to claim 3, wherein: A second spring (124) is sleeved on the crushing rod (12), one end of the second spring (124) is fixedly arranged on the inner wall of the dust-proof shell (10), a circular groove (119) is opened inside the crushing rod (12), an impact rod (118) is movably arranged on the inner wall of the circular groove (119), one end of the impact rod (118) penetrates through the inner wall of the crushing rod (12) and extends to the end face of the crushing rod (12), and a counterweight block (120) is arranged at the other end of the impact rod (118), and a first spring (121) is arranged between the inner wall of the circular groove (119) and the end face of the counterweight block (120).

5. The energy-saving recycled concrete processing and manufacturing equipment according to claim 1, characterized in that: A driving member (3) is provided at the bottom of the feeding housing (1) for driving the moving cone (8) and the main body of the crushing wall (7) to shake. The driving member (3) includes a blanking cylinder (31) provided at the bottom of the feeding housing (1). A support sleeve (32) is fixedly provided inside the blanking cylinder (31). A driving shaft (33) is provided inside the support sleeve (32). A driving bevel gear (34) is provided at the output end of the driving shaft (33). A driven bevel gear (35) is provided at the bottom end of the eccentric bushing (6), and the driven bevel gear (35) is sleeved outside the eccentric shaft rod (5). The driven bevel gear (35) and the driving bevel gear (34) are meshed with each other.

6. The energy-saving recycled concrete processing and manufacturing equipment according to claim 4, wherein: A power storage member (13) is provided inside the crushing rod (12) for storing power for the impact rod (118) when the crushing rod (12) extends and then firing it. The power storage member (13) includes a frustum block (131) provided between the impact rod (118) and the first spring (121). The frustum block (131) is movably provided on the inner wall of the circular groove (119). A straight groove (133) is formed at the top end of the connecting disk (111). An inclined head rod (132) is movably provided on the inner wall of the straight groove (133). The top end of the inclined head rod (132) penetrates outside the crushing rod (12) and is movably provided on the inclined surface of the frustum block (131). A third spring (134) is sleeved outside the inclined head rod (132), and the bottom end of the third spring (134) is fixedly provided at the top end of the connecting disk (111).

7. The energy-saving recycled concrete processing and manufacturing equipment according to claim 1, characterized in that: A pre-crushing unit (14) is provided inside the feeding housing (1) for pre-crushing before putting the stone material. The pre-crushing unit (14) includes a plurality of side baffles (143). The plurality of side baffles (143) are all fixedly provided on the inner wall of the feeding housing (1) and are circumferentially distributed. A fixed jaw plate (141) is provided between every two of the plurality of side baffles (143), and a straight rod (147) is provided between every two of the plurality of side baffles (143). A moving jaw plate (144) is movably sleeved on the outer surface of the plurality of straight rods (147).

8. The energy-saving recycled concrete processing and manufacturing equipment according to claim 7, characterized in that: A top disk (142) is provided at the top between the plurality of side baffles (143). A placing housing (145) is provided on the inner wall of the plurality of side baffles (143). The placing housing (145) is provided at the top end of the dust-proof housing (10), and a through groove (146) is formed at the top end of the dust-proof housing (10). The inside of the placing housing (145) and the dust-proof housing (10) are communicated through the through groove (146). A transmission member (15) for driving the moving jaw plate (144) to squeeze the stone material is provided at the through groove (146).

9. The energy-saving recycled concrete processing and manufacturing equipment according to claim 8, characterized in that: The transmission member (15) includes an inclined rod (156) arranged at the top end of the triangular plate (112). A collar (154) is movably sleeved on the outer side of the through groove (146) of the inclined rod (156). An L-shaped plate (153) is arranged at the top of the dust-proof shell (10). A rotating rod (151) is rotatably arranged inside the L-shaped plate (153). A connecting plate (155) is fixedly arranged between the collar (154) and the rotating rod (151), and the connecting plate (155) has a certain telescopic function. The top end of the rotating rod (151) penetrates through the placing shell (145) and is rotatably arranged at the bottom end of the upper top plate (142).

10. The energy-saving recycled concrete processing and manufacturing equipment according to claim 9, characterized in that: A protection plate (157) is arranged between the two side baffles (143). A telescopic rod (158) is movably arranged inside the protection plate (157). A fourth spring (159) is sleeved on the outer side of the telescopic rod (158). One end of the fourth spring (159) is fixedly arranged on the inner side of the protection plate (157). A movable plate (1510) is arranged on the side of the movable jaw plate (144). The end face of the telescopic rod (158) is movably connected to the side of the movable plate (1510). A concave-convex disc (152) is fixedly sleeved on the outer surface of the rotating rod (151). The other end of the telescopic rod (158) is movably arranged on the outer side of the concave-convex disc (152).