Bamboo product processing assembly line and working method thereof
By designing a bamboo product processing line with drying components and a collection frame to collect waste chips, the problems of moisture absorption and waste chip scattering during bamboo cutting are solved, achieving a dry cutting environment and efficient waste chip treatment, and adapting to the cutting needs of bamboo of different specifications.
Patent Information
- Application Number
- CN202511433016.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-09
- Publication Date
- 2025-12-23
AI Technical Summary
Existing bamboo cutting production lines cannot provide a dry environment, and the waste chips generated during the cutting process affect the construction environment, resulting in poor performance.
A bamboo product processing production line including a processing mechanism and a lifting mechanism was designed. A drying component is used to keep the cutting environment dry, and waste is collected by a collection frame. A combustion frame is used to provide heat to maintain dryness. The saw blade cuts the bamboo, and the bamboo is cut and transported at equal intervals by a linkage gear and gear system.
It ensures that bamboo remains dry during the cutting process, effectively collects waste, has high cutting efficiency, adapts to the processing needs of bamboo of different specifications, provides a stable drying environment, and improves cutting quality and efficiency.
Smart Images

Figure CN121179527A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of bamboo product processing equipment, specifically a bamboo product processing production line and its working method. Background Technology
[0002] China is known as the "Kingdom of Bamboo" and boasts abundant bamboo resources. my country has large bamboo species such as Giant Dragon Bamboo, Dragon Bamboo, Yunnan Bamboo, and Small-leaf Dragon Bamboo. These bamboos have thick, straight culms, reaching heights of up to 30 meters, diameters of 20-30 cm, and internode lengths of 17-22 cm. With economic and social development, people have higher demands for life, increasingly pursuing spiritual fulfillment in addition to material needs. Bamboo products, with their unique artistic forms, are gaining increasing popularity.
[0003] However, in the existing technology, after the bamboo is initially dried, it needs to be cut into sections according to the actual use requirements. During the bamboo cutting process, the dried bamboo is easily affected by the humid environment, and the existing cutting production line cannot ensure the dryness of the cutting environment. At the same time, the existing cutting production line tends to generate a lot of waste chips during the actual cutting process. The scattered waste chips have a significant impact on the actual construction environment, resulting in poor actual use effect of the existing cutting production line. Summary of the Invention
[0004] The purpose of this invention is to provide a bamboo product processing line and its working method that can provide a dry environment for bamboo cutting and efficiently collect and use waste.
[0005] The technical solution adopted in this invention is as follows: a bamboo product processing line, comprising: a processing mechanism for equidistant cutting of bamboo; A lifting mechanism is used to lift the bamboo to be processed, and the lifting mechanism is mounted on the processing mechanism.
[0006] The processing mechanism includes a base frame, two first conveyor frames, two second conveyor frames, a rotating frame, a saw blade, a limiting component, and a drying component. A material collection frame is connected to the bottom of the base frame, and a discharge frame is connected to one outer surface of the base frame. The discharge frame has an open bottom. The two first conveyor frames and two second conveyor frames are fixedly connected to the bottom surface inside the base frame. Multiple first conveyor rollers are rotatably connected at equal intervals to the top of each first conveyor frame, and multiple second conveyor rollers are rotatably connected at equal intervals to the top of each second conveyor frame. A mounting plate is fixedly connected to one outer surface of the base frame, and the rotating frame is rotatably connected to one outer surface of the mounting plate. A protective frame is fixedly connected to one outer surface of the rotating frame, and the saw blade is rotatably connected inside the protective frame. The limiting component and the drying component are both located on the base frame.
[0007] The saw blade extends into the interior of the rotating frame at one end, and a linkage gear is fixedly connected to one end of the saw blade. A drive gear is rotatably connected inside the rotating frame, and the drive gear meshes with the linkage gear. A first bevel gear is fixedly connected to one end of the drive gear. A linkage shaft is rotatably connected to the bottom surface inside the rotating frame, and a first bevel gear is also fitted on the outer surface of the linkage shaft. The two first bevel gears mesh. A drive motor is fixedly connected to the bottom of the rotating frame, and the output end of the drive motor is fixedly connected to one end of the linkage shaft. A steering motor is fixedly connected to the outer surface of the other side of the mounting plate, and the output end of the steering motor is fixedly connected to the rotating frame.
[0008] The limiting component includes a limiting frame, a support frame, a support wheel, an adjusting frame, and a top frame. The limiting frame is fixedly connected to the top of the bottom frame. A rotating tube is rotatably connected to the top of the limiting frame. A second bevel gear is sleeved on the outer surface of the rotating tube. A limiting rod is fixedly connected to the inner top surface of the limiting frame. A limiting spring is slidably sleeved on the outer surface of the limiting rod. A limiting nut is threadedly connected to the outer surface of the limiting rod near the bottom edge. The support frame is slidably sleeved on the outer surface of the limiting rod, and the outer surfaces on both sides of the support frame are respectively in contact with the inner surfaces on both sides of the limiting frame. The support wheel is rotatably connected between the opposite inner surfaces on both sides of the support frame. A third bevel gear is sleeved on one end of the support wheel. A connecting rod is rotatably connected to the outer surface of one side of the support frame. The top end of the connecting rod slides through the rotating tube. The adjusting frame is fixedly connected between two second conveying frames. The top frame is slidably inserted into the bottom surface inside the bottom frame.
[0009] The limiting frame has a rotary motor fixedly connected to one side of its outer surface. The output end of the rotary motor is also fitted with a second bevel gear, and the two second bevel gears mesh with each other. The connecting rod also has a third bevel gear fitted on its outer surface, and the two third bevel gears mesh with each other.
[0010] The adjusting frame is rotatably connected to the inner walls on both sides. A movable threaded rod is threaded to the outer surface of the movable threaded rod. A stop is slidably inserted at the bottom of the movable block. The bottom of the stop is in contact with the top of the top frame. Two sliding rods are fixedly connected to the bottom surface inside the bottom frame. The top of each sliding rod slides through the bottom of the top frame. A support spring is slidably sleeved on the outer surface of each sliding rod. A base plate is fixedly connected to the outer surface of one side of the bottom frame. Two guide rods are fixedly connected to the top of the base plate. The tops of the two guide rods slide through the bottom of the top frame.
[0011] The drying component includes an insulation frame, a combustion frame, an exhaust pipe, and multiple heat-conducting plates. The insulation frame is fixedly connected to the bottom of the base frame, and the interior of the insulation frame is connected to the interior of the collection frame. The combustion frame slides through the insulation frame. The exhaust pipe is connected to the outer surface of one side of the insulation frame, and a baffle is fixedly connected to the bottom end of the exhaust pipe. The outer surface of the baffle is in contact with the inner wall of the insulation frame. A linkage impeller is rotatably connected between the two sides of the exhaust pipe relative to the inner wall. Multiple heat-conducting plates are fixedly connected to the top of the baffle, and the top of each heat-conducting plate extends into the interior of the base frame.
[0012] Among them, heat dissipation impellers are rotatably connected between the two sides of the bottom frame and the inner surface wall, and one end of the heat dissipation impeller and one end of the connecting impeller are fixedly connected.
[0013] The lifting mechanism includes a lifting frame and a lifting plate. The lifting frame is fixedly connected to the bottom of the base frame. The lifting plate is slidably inserted inside the lifting frame. Two guide rods are fixedly connected to the bottom surface of the lifting frame, and each guide rod slides through the lifting plate. A lifting threaded rod is rotatably connected between the bottom surface and the top surface of the lifting frame. The lifting threaded rod is threadedly connected to the lifting plate. A rotating gear is sleeved on the outer surface of the lifting threaded rod. A lifting worm wheel and a lifting worm are rotatably connected to the top surface of the lifting frame. The lifting worm wheel and the lifting worm mesh. A rotating gear is also fixedly connected to one end of the lifting worm wheel. The two rotating gears mesh. A lifting motor is fixedly connected to the top of the lifting frame. The output end of the lifting motor is fixedly connected to one end of the lifting worm.
[0014] A method for operating a bamboo product processing production line includes the following steps: S1. Moving Conveying: The bamboo to be processed is transported to the top of the lifting plate. Then, the lifting motor is started by controlling the motor, which works with the lifting worm, lifting worm wheel and rotating gear to drive the lifting threaded rod to rotate. The rotating lifting threaded rod can lift the lifting plate carrying the bamboo to be processed to the working height under the position restriction of the guide rod, so that the bamboo to be processed can be easily lifted to one side of the first conveying frame. Then, the bamboo to be processed can be easily placed on the top of the first conveying roller and pushed into the bottom frame. During this process, the support frame can squeeze the support wheel tightly against the top of the bamboo to be processed under the support of the limit spring. Then, the rotating motor is started by controlling the motor, which works with the second bevel gear to drive the rotating tube to rotate. Then, the rotating tube drives the connecting rod to rotate. The rotating connecting rod works with the third bevel gear to drive the support wheel to rotate. Then, with the support of the support wheel and the first conveying roller, the bamboo to be processed will be continuously conveyed to the top of the second conveying roller. S2. Cutting Adjustment: By rotating the adjusting threaded rod, the horizontal position of the adjusting block can be moved. Supported by the top frame, the adjusting block synchronously moves the support frame. When one end of the bamboo to be processed contacts the support frame, the drive motor and steering motor are activated. The drive motor, in conjunction with the connecting shaft and the first bevel gear, drives the drive gear to rotate. This, in turn, drives the saw blade to rotate at high speed. Simultaneously, driven by the steering motor, the rotating frame, in conjunction with the protective frame, drives the rotating saw blade to cut the bamboo. This process completes the bamboo cutting. After cutting, the steering motor will drive the rotating frame to return to its original position, so that the distance between the support frame and the saw blade is the required length of the bamboo after cutting. Then, by moving and adjusting the position of the support frame, the operator steps on the bottom of the top frame, and under the position restriction of the guide rod and the sliding rod, the height of the top frame is lowered, and the support frame follows the top frame to lower its height synchronously. This allows the operator to quickly push the cut bamboo into the discharge frame, and at the same time release the foot from stepping on the top frame, so that the top frame, supported by the support spring, supports the support frame to return to its original position, and the support frame can continue to intercept subsequent unprocessed bamboo. S3. Environmental Maintenance: During the bamboo cutting process, fuel is added to one side of the combustion frame, and then the fuel frame is pushed to move the fuel-bearing side into the insulation frame, igniting the fuel. The heat generated by the combustion is transferred to the bottom frame through the heat-conducting plates. Simultaneously, the hot airflow generated by the combustion is transported to the outside of the insulation frame through the exhaust pipe under the obstruction of the baffle. During the flow of the airflow through the exhaust pipe, the change in the space inside the exhaust pipe allows the airflow to impact at high speed, driving the connecting impeller to rotate. This rotating connecting impeller then synchronously drives the cooling impeller to rotate. The rotation of the impeller accelerates the diffusion of heat from the heat-conducting fins, ensuring the dryness of the bottom frame and minimizing the impact of the external environment on the bamboo during cutting. The waste chips will slide into the collection frame through the bottom frame and then into the combustion frame, where they can be ignited to provide heat. When there is a lot of ash inside the combustion frame, the ash can be easily removed from the insulation frame by pushing the combustion frame. At the same time, fuel can be injected into the side without fuel, ignited, and then moved into the insulation frame, thus continuously providing the heat required for drying inside the bottom frame.
[0015] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are: (1) In this invention, when in use, the bamboo to be processed is transported to the top of the lifting plate, and then the lifting motor is started by control, so that the lifting motor can work with the lifting worm, the lifting worm wheel and the rotating gear to drive the lifting threaded rod to rotate, so that the rotating lifting threaded rod can lift the height of the lifting plate carrying the bamboo to be processed under the position restriction of the guide rod, so that the bamboo to be processed can be easily lifted to one side of the first conveying frame, and then the bamboo to be processed can be easily placed on the top of the first conveying roller, and then pushed into the bottom frame. During this process, the support frame can squeeze the support wheel tightly against the top of the bamboo to be processed under the support of the limit spring, so that the equipment can meet the processing of bamboo of different specifications and improve the wide applicability of the equipment. Then, the rotating motor is started by control, so that the rotating motor can work with the second bevel gear to drive the rotating tube to rotate, so that the rotating tube can drive the connecting rod to rotate, so that the rotating connecting rod can work with the third bevel gear to drive the support wheel to rotate, so that under the support of the support wheel and the first conveying roller, the bamboo to be processed will be continuously conveyed to the top of the second conveying roller, so that the equipment can efficiently move and convey the bamboo to be processed.
[0016] (2) In this invention, by rotating and adjusting the movable threaded rod, the rotating movable threaded rod can move and adjust the horizontal position of the movable block. Then, under the support of the top frame, the movable block can synchronously drive the abutment frame to move. When one end of the bamboo to be processed contacts the abutment frame, the drive motor and the steering motor are started. The drive motor, together with the connecting shaft and the first bevel gear, drives the drive gear to rotate. Then, the drive gear, together with the connecting gear, drives the saw blade to rotate at high speed. At the same time, under the drive of the steering motor, the rotating frame, together with the protective frame, can drive the rotating saw blade to cut the bamboo to be processed. After the bamboo is cut, the steering motor will drive the rotating frame to return to its original position, so that the abutment frame and the saw blade are aligned. The distance is the required length of bamboo after cutting. By adjusting the position of the support frame, the equipment can efficiently cut bamboo of different lengths, enabling it to perform its intended functions efficiently. Then, by stepping on the bottom of the top frame with the operator's foot, the operating height of the top frame is lowered under the position restriction of the guide rod and slide rod. The support frame then lowers synchronously with the top frame, allowing the operator to quickly push the cut bamboo into the discharge frame. At the same time, the operator releases their foot from the top frame, allowing the support frame to support the support frame and return it to its original position under the support spring. This allows the support frame to continue intercepting subsequent unprocessed bamboo, enabling the equipment to perform its intended functions efficiently.
[0017] (3) In this invention, during the cutting of the bamboo to be processed, fuel is added to one side of the combustion frame, and then the fuel frame is pushed to move the side carrying the fuel into the insulation frame, thereby igniting the fuel. The heat generated by the combustion of the fuel can be transferred to the bottom frame through the heat-conducting plate. At the same time, the hot airflow generated by the combustion is transported to the outside of the insulation frame through the exhaust pipe under the obstruction of the baffle. During the flow of the airflow through the exhaust pipe, due to the change in the space inside the exhaust pipe, the airflow can impact and drive the connecting impeller to rotate at high speed. Then, the rotating connecting impeller can synchronously drive the heat dissipation impeller to rotate, so that the heat dissipation impeller can accelerate the heat-conducting plate. The heat dissipation ensures the dryness of the bottom frame, preventing the bamboo from being easily affected by the external environment during cutting and allowing it to maintain its dryness efficiently. The waste chips generated will slide into the collection frame through the bottom frame and then into the combustion frame, where they can be ignited to provide heat. When there is a lot of ash inside the combustion frame, the ash can be easily removed from the insulation frame by pushing the combustion frame. At the same time, fuel can be injected into the side without fuel, ignited, and then moved into the insulation frame, thus continuously providing the heat required for drying inside the bottom frame, enabling the equipment to efficiently perform its intended functions. Attached Figure Description
[0018] Figure 1 This is a first-view perspective perspective view of the present invention; Figure 2 This is a second-view perspective perspective view of the present invention; Figure 3 This is a first-view sectional perspective view of the present invention; Figure 4 This is a first-view sectional perspective view of the processing mechanism of the present invention; Figure 5 For the present invention Figure 4 Enlarged view of point A in the middle; Figure 6 For the present invention Figure 4 Enlarged view at point B in the middle; Figure 7 This is a second-view sectional perspective view of the processing mechanism of the present invention. Figure 8 For the present invention Figure 7 Enlarged view at point C; Figure 9 For the present invention Figure 7 Enlarged view at point D; Figure 10 This is a perspective view of the lifting mechanism of the present invention.
[0019] Marked in the image: 1. Processing mechanism; 101. Base frame; 102. First conveyor frame; 103. First conveyor roller; 104. Second conveyor frame; 105. Second conveyor roller; 106. Discharge frame; 107. Collection frame; 108. Insulation frame; 109. Combustion frame; 110. Rotating frame; 111. Steering motor; 112. Drive motor; 113. Connecting shaft; 114. First bevel gear; 115. Drive gear; 116. Connecting gear; 117. Protective frame; 118. Saw blade; 119. Limiting frame; 120. 121. Rotary motor; 122. Rotary tube; 123. Second bevel gear; 124. Limiting rod; 125. Limiting spring; 126. Support frame; 127. Support wheel; 128. Linking rod; 129. Third bevel gear; 130. Adjusting frame; 131. Moving threaded rod; 132. Moving block; 133. Support frame; 134. Slide rod; 135. Support spring; 136. Guide rod; 137. Exhaust pipe; 138. Linking impeller; 139. Cooling impeller; 140. Heat-conducting plate; 2. Lifting mechanism; 201. Lifting frame; 202. Lifting plate; 203. Lifting threaded rod; 204. Guide rod; 205. Rotary gear; 206. Lifting worm gear; 207. Lifting motor. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0021] For examples, please refer to [link / reference]. Figures 1-3 A bamboo product processing line consists of a processing mechanism 1 and a lifting mechanism 2.
[0022] The details are as follows: Please see Figures 4-9Processing mechanism 1, used for equidistant cutting of bamboo, includes a base frame 101, two first conveyor frames 102, two second conveyor frames 104, a rotating frame 110, a saw blade 118, a limiting component, and a drying component. A material collection frame 107 is connected to the bottom of the base frame 101, and a discharge frame 106 is connected to the outer surface of one side of the base frame 101. The discharge frame 106 has an open bottom. The two first conveyor frames 102 and the two second conveyor frames 104 are fixedly connected to the inner bottom surface of the base frame 101. Multiple first conveyor rollers 103 are rotatably connected at equal intervals to the top of each first conveyor frame 102, and multiple second conveyor rollers 105 are rotatably connected at equal intervals to the top of each second conveyor frame 104. A mounting plate is fixedly connected to the outer surface of one side of the base frame 101. The rotating frame 110... A rotatable connection is made to one outer surface of the mounting plate. A protective frame 117 is fixedly connected to one outer surface of the rotating frame 110. A saw blade 118 is rotatably connected inside the protective frame 117. Limiting components and drying components are both mounted on the bottom frame 101. One end of the saw blade 118 extends into the interior of the rotating frame 110. A connecting gear 116 is fixedly connected to one end of the saw blade 118. A drive gear 115 is rotatably connected inside the rotating frame 110, and the drive gear 115 and the connecting gear 116 mesh. A first bevel gear 114 is fixedly connected to one end of the drive gear 115. A connecting shaft 113 is rotatably connected to the bottom surface inside the rotating frame 110. A first bevel gear 114 is also fitted on the outer surface of the connecting shaft 113. The two first bevel gears 114 mesh. The bottom of the rotating frame 110 is fixed. A drive motor 112 is connected, and the output end of the drive motor 112 is fixedly connected to one end of the connecting shaft 113. A steering motor 111 is fixedly connected to the outer surface of the other side of the mounting plate, and the output end of the steering motor 111 is fixedly connected to the rotating frame 110. The limiting components include a limiting frame 119, a support frame 125, a support wheel 126, an adjusting frame 129, and a top frame 133. The limiting frame 119 is fixedly connected to the top of the bottom frame 101. A rotating tube 121 is rotatably connected to the top of the limiting frame 119. A second bevel gear 122 is sleeved on the outer surface of the rotating tube 121. A limiting rod 123 is fixedly connected to the inner top surface of the limiting frame 119. A limiting spring 124 is slidably sleeved on the outer surface of the limiting rod 123. A limiting screw is threadedly connected to the outer surface of the limiting rod 123 near the bottom edge. The cap, support frame 125 is slidably sleeved on the outer surface of limiting rod 123, and the outer surfaces of both sides of support frame 125 and the inner surfaces of both sides of limiting frame 119 are respectively in contact. Support wheel 126 is rotatably connected between the opposite inner surfaces of both sides of support frame 125. A third bevel gear 128 is sleeved on one end of support wheel 126. A connecting rod 127 is rotatably connected to one outer surface of support frame 125. The top end of connecting rod 127 slides through rotating tube 121. Adjusting frame 129 is fixedly connected between two second conveying frames 104. Top frame 133 is slidably inserted into the bottom surface inside bottom frame 101. A rotary motor 120 is fixedly connected to one outer surface of limiting frame 119. A second bevel gear 122 is also sleeved on the output end of rotary motor 120. The two second bevel gears 122 mesh.A third bevel gear 128 is also fitted on the outer surface of the linkage 127. The two third bevel gears 128 mesh. A movable threaded rod 130 is rotatably connected between the two sides of the adjusting frame 129 and their relative inner surfaces. A movable block 131 is threadedly connected to the outer surface of the movable threaded rod 130. A stop 132 is slidably inserted into the bottom of the movable block 131. The bottom of the stop 132 is in contact with the top of the top frame 133. Two sliding rods 134 are fixedly connected to the bottom surface inside the bottom frame 101. The top of each sliding rod 134 slides through the bottom of the top frame 133. A support spring 135 is slidably fitted on the outer surface of each sliding rod 134. A base plate is fixedly connected to the outer surface of one side of the bottom frame 101. Two guide rods 136 are fixedly connected to the top of the base plate. The tops of the two guide rods 136 slide through the top frame 133. At the bottom of the 33, the drying component includes an insulation frame 108, a combustion frame 109, an exhaust pipe 137, and multiple heat-conducting plates 140. The insulation frame 108 is fixedly connected to the bottom of the bottom frame 101, and the interior of the insulation frame 108 is connected to the interior of the collection frame 107. The combustion frame 109 slides through the insulation frame 108. The exhaust pipe 137 is connected to the outer surface of one side of the insulation frame 108, and a baffle is fixedly connected to the bottom of the exhaust pipe 137. The outer surface of the baffle is in contact with the inner surface wall of the insulation frame 108. A connecting impeller 138 is rotatably connected between the two sides of the exhaust pipe 137 relative to the inner surface wall. Multiple heat-conducting plates 140 are fixedly connected to the top of the baffle, and the top of each heat-conducting plate 140 extends into the interior of the bottom frame 101. A heat dissipation impeller 140 is rotatably connected between the two sides of the bottom frame 101 relative to the inner surface wall. 39. One end of the heat dissipation impeller 139 and one end of the connecting impeller 138 are fixedly connected. The bamboo to be processed is placed on the top of the first conveying roller 103 and then pushed into the bottom frame 101. During this process, the support frame 125, supported by the limit spring 124, can squeeze the support wheel 126 tightly against the top of the bamboo to be processed, so that the equipment can meet the processing of bamboo of different specifications and improve the versatility of the equipment in actual use. Then, by controlling the start of the rotary motor 120, the rotary motor 120 can cooperate with the second bevel gear 122 to drive the rotating tube 121 to rotate. Then, the rotating tube 121 can drive the connecting rod 127 to rotate. The rotating connecting rod 127, in conjunction with the third bevel gear 128, can drive the support wheel 126 to rotate. Supported by wheel 126 and the first conveying roller 103, the bamboo to be processed is continuously conveyed to the top of the second conveying roller 105, enabling the equipment to efficiently move and convey the bamboo. By rotating and adjusting the moving threaded rod 130, the rotating moving threaded rod 130 can move and adjust the horizontal position of the moving block 131. Then, supported by the top frame 133, the moving block 131 can synchronously drive the abutment frame 132 to move. When one end of the bamboo to be processed contacts the abutment frame 132, the drive motor 112 and the steering motor 111 are started. The drive motor 112, in conjunction with the connecting shaft 113 and the first bevel gear 114, drives the drive gear 115 to rotate. In turn, the drive gear 115, in conjunction with the connecting gear 116, drives the saw blade 118 to rotate at high speed.Simultaneously, driven by the steering motor 111, the rotating frame 110, in conjunction with the protective frame 117, drives the rotating saw blade 118 to cut the bamboo to be processed. After the bamboo is cut, the steering motor 111 drives the rotating frame 110 to return to its original position, so that the distance between the support frame 132 and the saw blade 118 is the desired length of the cut bamboo. By adjusting the position of the support frame 132, the equipment can efficiently cut bamboo of different lengths, enabling the equipment to efficiently perform its intended functions. Furthermore, by the operator stepping on the bottom of the top frame 133, and under the positional constraints of the guide rod 136 and the sliding rod 134, the equipment can be further controlled. This lowers the operating height of the top frame 133, causing the support frame 132 to lower synchronously. This allows the operator to quickly push the cut bamboo into the discharge frame 106, while simultaneously releasing their foot pressure on the top frame 133. The top frame 133, supported by the support spring 135, then supports the support frame 132 back to its original position, allowing the support frame 132 to continue intercepting subsequent unprocessed bamboo. This ensures the equipment can efficiently perform its intended functions. During the bamboo cutting process, fuel is added to one side of the combustion frame 109, and the fuel frame is then pushed to move the fuel-containing side into the insulation frame 106. Inside the heat exchanger 108, fuel is ignited, and the heat generated by combustion is transferred to the interior of the bottom frame 101 via the heat-conducting plate 140. Simultaneously, the hot airflow generated by combustion is obstructed by a baffle and transported to the outside of the insulation frame 108 through the exhaust pipe 137. During the flow of the airflow through the exhaust pipe 137, the change in the inner wall space causes the airflow to impact and drive the connecting impeller 138 to rotate at high speed. This, in turn, causes the rotating connecting impeller 138 to synchronously drive the heat dissipation impeller 139 to rotate, accelerating the diffusion of heat dissipated by the heat-conducting plate 140. This ensures the dryness of the interior of the bottom frame 101 and the condition of the material to be processed. Bamboo is not easily affected by the external environment during the cutting process, and can efficiently maintain its dryness. The resulting waste will slide into the collection frame 107 through the obstruction of the bottom frame 101, and then into the combustion frame 109, where it can be ignited to provide heat. When there is a lot of ash inside the combustion frame 109, the ash can be easily removed from the insulation frame 108 by pushing the combustion frame 109. At the same time, fuel can be injected into the side without fuel, ignited, and then moved into the insulation frame 108, thus continuously providing the heat required for drying inside the bottom frame 101, enabling the equipment to efficiently perform its intended functions. Please see Figure 10Lifting mechanism 2 is used to lift the bamboo to be processed. Lifting mechanism 2 is mounted on processing mechanism 1 and includes a lifting frame 201 and a lifting plate 202. The lifting frame 201 is fixedly connected to the bottom of the base frame 101. The lifting plate 202 is slidably inserted inside the lifting frame 201. Two guide rods 204 are fixedly connected to the bottom surface of the lifting frame 201, each guide rod 204 slidingly passing through the lifting plate 202. A lifting threaded rod 203 is rotatably connected between the bottom and top surfaces of the lifting frame 201. The lifting threaded rod 203 is threadedly connected to the lifting plate 202. A rotating gear 205 is sleeved on the outer surface of the lifting threaded rod 203. A lifting worm gear 206 and a lifting worm are rotatably connected to the top surface of the lifting frame 201. The worm gear meshes, and one end of the lifting worm wheel 206 is also fixedly connected to a rotating gear 205. The two rotating gears 205 mesh. The top of the lifting frame 201 is fixedly connected to a lifting motor 207. The output end of the lifting motor 207 is fixedly connected to one end of the lifting worm. The bamboo to be processed is transported to the top of the lifting plate 202. Then, by controlling the start of the lifting motor 207, the lifting motor 207 can work with the lifting worm, the lifting worm wheel 206 and the rotating gear 205 to drive the lifting threaded rod 203 to rotate. The rotating lifting threaded rod 203 can lift the lifting plate 202 carrying the bamboo to be processed to the working height under the position restriction of the guide rod 204, so that the bamboo to be processed can be conveniently lifted to one side of the first conveyor frame 102.
[0023] The following describes in detail the working method of a bamboo product processing line provided by an embodiment of the present invention, which includes the following steps: Step 1, Moving and Conveying: The bamboo to be processed is transported to the top of the lifting plate 202. Then, the lifting motor 207 is started by controlling the motor, which, together with the lifting worm, lifting worm wheel 206, and rotating gear 205, drives the lifting threaded rod 203 to rotate. The rotating lifting threaded rod 203, under the position restriction of the guide rod 204, raises the lifting plate 202 carrying the bamboo to be processed to its working height, thus facilitating the lifting of the bamboo to one side of the first conveyor frame 102. The bamboo to be processed is then conveniently placed on the top of the first conveyor roller 103 and pushed into the bottom frame 101. During this process, the support frame 125 is supported by the limiting spring 124. The lower support roller 126 can be squeezed to fit tightly against the top of the bamboo to be processed, so that the equipment can meet the processing requirements of bamboo of different specifications and improve the versatility of the equipment in actual use. Then, by controlling the start of the rotary motor 120, the rotary motor 120 can work with the second bevel gear 122 to drive the rotating tube 121 to rotate. Then, the rotating tube 121 can drive the connecting rod 127 to rotate. The rotating connecting rod 127, in conjunction with the third bevel gear 128, can drive the support roller 126 to rotate. Then, with the support of the support roller 126 and the first conveying roller 103, the bamboo to be processed will be continuously conveyed to the top of the second conveying roller 105, so that the equipment can efficiently move and convey the bamboo to be processed. Step 2, Cutting Adjustment: By rotating and adjusting the movable threaded rod 130, the moving block 131 can be moved horizontally. Supported by the top frame 133, the moving block 131 synchronously drives the support frame 132. When one end of the bamboo to be processed contacts the support frame 132, the drive motor 112 and the steering motor 111 are activated. The drive motor 112, in conjunction with the connecting shaft 113 and the first bevel gear 114, drives the drive gear 115 to rotate. The drive gear 115, in conjunction with the connecting gear 116, drives the saw blade 118 to rotate at high speed. Simultaneously, driven by the steering motor 111, the rotating frame 110, in conjunction with the protective frame 117, drives the rotating saw blade 118 to cut the bamboo. After cutting, the steering motor 111 returns the rotating frame 110 to its original position. The position is adjusted so that the distance between the support frame 132 and the saw blade 118 is the desired length of bamboo after cutting. By moving and adjusting the position of the support frame 132, the equipment can efficiently cut bamboo of different lengths and perform its intended functions. Then, by the operator stepping on the bottom of the top frame 133, the operating height of the top frame 133 is lowered under the position restriction of the guide rod 136 and the sliding rod 134. The support frame 132 then lowers its operating height synchronously with the top frame 133, allowing the operator to quickly push the cut bamboo into the discharge frame 106. At the same time, the operator releases their foot from the top frame 133, allowing the top frame 133 to support the support frame 132 and return it to its original position under the support of the support spring 135. This allows the support frame 132 to continue to intercept subsequent unprocessed bamboo, enabling the equipment to perform its intended functions efficiently. Step 3, Environmental Maintenance: During the bamboo cutting process, fuel is introduced into one side of the combustion frame 109, and then the fuel frame is pushed to move the fuel-bearing side into the insulation frame 108, thereby igniting the fuel. The heat generated by the combustion is transferred to the bottom frame 101 through the heat-conducting plate 140. At the same time, the hot airflow generated by the combustion is blocked by the baffle and transported to the outside of the insulation frame 108 through the exhaust pipe 137. During the flow of the airflow through the exhaust pipe, the change in the inner wall space of the exhaust pipe 137 causes the airflow to impact and drive the connecting impeller 138 to rotate at high speed. In turn, the rotating connecting impeller 138 drives the heat dissipation impeller 139 to rotate synchronously, so that the heat dissipation impeller 139 can accelerate the heat conduction plate. The heat dissipation of 140 ensures the dryness of the inside of the bottom frame 101, ensuring that the bamboo to be processed is not easily affected by the external environment during the cutting process and can maintain its own dryness efficiently. The generated waste will slide into the collection frame 107 through the obstruction of the bottom frame 101, and then slide into the combustion frame 109 through the collection frame 107, so that the waste can be ignited to provide heat. When there is a lot of ash inside the combustion frame 109, the ash can be easily removed from the insulation frame 108 by pushing the combustion frame 109. At the same time, fuel can be injected into the side without fuel, ignited and moved into the insulation frame 108, so as to continuously provide the heat required for drying inside the bottom frame 101, enabling the equipment to perform its intended functions efficiently.
[0024] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A bamboo product processing production line, characterized in that, include: Processing mechanism (1) is used for equidistant cutting of bamboo; Lifting mechanism (2) is used to lift the bamboo to be processed. The lifting mechanism (2) is set on the processing mechanism (1).
2. The bamboo product processing line as described in claim 1, characterized in that: The processing mechanism (1) includes a base frame (101), two first conveyor frames (102), two second conveyor frames (104), a rotating frame (110), a saw blade (118), a limiting component, and a drying component. A material collection frame (107) is connected to the bottom of the base frame (101), and a material discharge frame (106) is connected to the outer surface of one side of the base frame (101). The bottom of the material discharge frame (106) is an open structure. The two first conveyor frames (102) and the two second conveyor frames (104) are all fixedly connected to the bottom surface inside the base frame (101). Each of the first conveyor frames (102) and the second conveyor frames (104) is connected to the bottom surface inside the base frame (101). A conveyor frame (102) is rotatably connected to a plurality of first conveyor rollers (103) at equal intervals on its top. A second conveyor frame (104) is rotatably connected to a plurality of second conveyor rollers (105) at equal intervals on its top. An installation plate is fixedly connected to one side of the outer surface of the bottom frame (101). The rotating frame (110) is rotatably connected to one side of the outer surface of the installation plate. A protective frame (117) is fixedly connected to one side of the outer surface of the rotating frame (110). The saw blade (118) is rotatably connected inside the protective frame (117). The limiting component and the drying component are both set on the bottom frame (101).
3. The bamboo product processing line as described in claim 2, characterized in that: One end of the saw blade (118) extends into the interior of the rotating frame (110). A connecting gear (116) is fixedly connected to one end of the saw blade (118). A drive gear (115) is rotatably connected inside the rotating frame (110), and the drive gear (115) and the connecting gear (116) mesh. A first bevel gear (114) is fixedly connected to one end of the drive gear (115). A connecting shaft (113) is rotatably connected to the bottom surface inside the rotating frame (110). A first bevel gear (114) is also sleeved on the outer surface of the connecting shaft (113). The two first bevel gears (114) mesh. A drive motor (112) is fixedly connected to the bottom of the rotating frame (110). The output end of the drive motor (112) is fixedly connected to one end of the connecting shaft (113). A steering motor (111) is fixedly connected to the outer surface of the other side of the mounting plate. The output end of the steering motor (111) is fixedly connected to the rotating frame (110).
4. The bamboo product processing line as described in claim 3, characterized in that: The limiting component includes a limiting frame (119), a support frame (125), a support wheel (126), an adjusting frame (129), and a top frame (133). The limiting frame (119) is fixedly connected to the top of the bottom frame (101). A rotating tube (121) is rotatably connected to the top of the limiting frame (119). A second bevel gear (122) is sleeved on the outer surface of the rotating tube (121). A limiting rod (123) is fixedly connected to the top surface inside the limiting frame (119). A limiting spring (124) is slidably sleeved on the outer surface of the limiting rod (123). A limiting nut is threadedly connected to the outer surface of the limiting rod (123) near the bottom edge. The support frame (125) is... 25) The support frame (125) is slidably sleeved on the outer surface of the limiting rod (123), and the outer surfaces of both sides of the support frame (125) and the inner surfaces of both sides of the limiting frame (119) are respectively attached. The support wheel (126) is rotatably connected between the inner surfaces of both sides of the support frame (125). A third bevel gear (128) is sleeved on one end of the support wheel (126). A connecting rod (127) is rotatably connected on one side of the outer surface of the support frame (125). The top end of the connecting rod (127) slides through the rotating tube (121). The adjusting frame (129) is fixedly connected between the two second conveying frames (104). The top frame (133) is slidably inserted into the bottom surface inside the bottom frame (101).
5. The bamboo product processing line as described in claim 4, characterized in that: A rotary motor (120) is fixedly connected to one side of the outer surface of the limiting frame (119). The output end of the rotary motor (120) is also fitted with a second bevel gear (122). The two second bevel gears (122) mesh. The outer surface of the connecting rod (127) is also fitted with a third bevel gear (128). The two third bevel gears (128) mesh.
6. The bamboo product processing line as described in claim 5, characterized in that: The adjusting frame (129) is rotatably connected between the inner walls on both sides. A movable threaded rod (130) is threadedly connected to the outer surface of the movable threaded rod (130). A stop (132) is slidably inserted at the bottom of the movable block (131). The bottom of the stop (132) is in contact with the top of the top frame (133). Two sliding rods (134) are fixedly connected to the bottom surface inside the bottom frame (101). The top of each sliding rod (134) slides through the bottom of the top frame (133). A support spring (135) is slidably sleeved on the outer surface of each sliding rod (134). A base plate is fixedly connected to the outer surface of one side of the bottom frame (101). Two guide rods (136) are fixedly connected to the top of the base plate. The tops of the two guide rods (136) slide through the bottom of the top frame (133).
7. The bamboo product processing line as described in claim 6, characterized in that: The drying component includes an insulation frame (108), a combustion frame (109), an exhaust pipe (137), and multiple heat-conducting plates (140). The insulation frame (108) is fixedly connected to the bottom of the base frame (101). The interior of the insulation frame (108) is connected to the interior of the collection frame (107). The combustion frame (109) slides through the insulation frame (108). The exhaust pipe (137) is connected to the outer surface of one side of the insulation frame (108), and a baffle is fixedly connected to the bottom end of the exhaust pipe (137). The outer surface of the baffle is in contact with the inner wall of the insulation frame (108). A connecting impeller (138) is rotatably connected between the two sides of the exhaust pipe (137) relative to the inner wall. Multiple heat-conducting plates (140) are fixedly connected to the top of the baffle, and the top of each heat-conducting plate (140) extends into the interior of the base frame (101).
8. The bamboo product processing line as described in claim 7, characterized in that: A heat dissipation impeller (139) is rotatably connected between the two sides of the bottom frame (101) and the inner surface wall. One end of the heat dissipation impeller (139) is fixedly connected to one end of the connecting impeller (138).
9. A bamboo product processing line as described in claim 8, characterized in that: The lifting mechanism (2) includes a lifting frame (201) and a lifting plate (202). The lifting frame (201) is fixedly connected to the bottom of the base frame (101). The lifting plate (202) is slidably inserted into the lifting frame (201). Two guide rods (204) are fixedly connected to the bottom surface of the lifting frame (201). Each guide rod (204) slides through the lifting plate (202). A lifting threaded rod (203) is rotatably connected between the bottom surface and the top surface of the lifting frame (201). The lifting threaded rod (203) and the lifting plate... (202) Threaded connection, the outer surface of the lifting threaded rod (203) is fitted with a rotating gear (205), the top surface of the lifting frame (201) is rotatably connected with a lifting worm wheel (206) and a lifting worm, the lifting worm wheel (206) and the lifting worm mesh, one end of the lifting worm wheel (206) is also fixedly connected with a rotating gear (205), the two rotating gears (205) mesh, the top of the lifting frame (201) is fixedly connected with a lifting motor (207), the output end of the lifting motor (207) is fixedly connected to one end of the lifting worm.
10. A method for operating a bamboo product processing assembly line, characterized in that, Applied to a bamboo product processing line as described in claim 9, the method includes the following steps: S1. Moving and conveying: The bamboo to be processed is transported to the top of the lifting plate (202), and then the lifting motor (207) is started by control. The lifting motor (207) can work with the lifting worm, the lifting worm wheel (206) and the rotating gear (205) to drive the lifting threaded rod (203) to rotate. The rotating lifting threaded rod (203) can lift the lifting plate (202) carrying the bamboo to be processed to the working height under the position restriction of the guide rod (204). This allows the bamboo to be processed to be easily lifted to one side of the first conveyor frame (102), and then the bamboo to be processed can be easily placed on the top of the first conveyor roller (103) and pushed into the bottom frame (101). During this process, the support frame (125) can squeeze the support wheel (126) to press against the top of the bamboo to be processed under the support of the limiting spring (124). Then, by controlling the start of the rotary motor (120), the rotary motor (120) can cooperate with the second bevel gear (122) to drive the rotating tube (121) to rotate. Then, the rotating tube (121) can drive the connecting rod (127) to rotate. The rotating connecting rod (127) can cooperate with the third bevel gear (128) to drive the support wheel (126) to rotate. Then, under the support of the support wheel (126) and the first conveying roller (103), the bamboo to be processed will be continuously conveyed to the top of the second conveying roller (105). S2. Cutting Adjustment: By rotating and adjusting the movable threaded rod (130), the rotating movable threaded rod (130) can move the adjusting block (131) to a horizontal position. Then, under the support of the top frame (133), the moving block (131) can synchronously drive the abutment frame (132) to move. When one end of the bamboo to be processed contacts the abutment frame (132), the drive motor (112) and the steering motor (111) are started. The drive motor (112) works with the connecting shaft (113) and the first bevel gear (114) to drive the drive gear (115) to rotate. Then, the drive gear (115) works with the connecting gear (116) to drive the saw blade (118) to rotate at high speed. At the same time, under the drive of the steering motor (111), the rotating frame (110) works with the protective frame (117) to drive the rotating saw blade (118) to cut the bamboo to be processed. Meanwhile, after the bamboo cutting is completed, the steering motor (111) will drive the rotating frame (110) to return to its original position, so that the distance between the support frame (132) and the saw blade (118) is the required length of the bamboo after cutting. Then, by moving and adjusting the position of the support frame (132), the operator steps on the bottom of the top frame (133) with his feet. Then, under the position restriction of the guide rod (136) and the slide rod (134), the height of the top frame (133) is reduced, and the support frame (132) follows the top frame (133) to reduce its height synchronously. This allows the operator to quickly push the cut bamboo into the discharge frame (106) and release the foot from stepping on the top frame (133). The top frame (133) supports the support frame (132) to return to its original position under the support of the support spring (135), so that the support frame (132) can continue to intercept subsequent unprocessed bamboo. S3. Environmental Maintenance: During the cutting of the bamboo to be processed, fuel is added to one side of the combustion frame (109), and then the fuel frame is pushed to move the side carrying the fuel into the insulation frame (108), thereby igniting the fuel. The heat generated by the combustion of the fuel can be transferred to the bottom frame (101) through the heat-conducting plate (140). At the same time, the hot air generated by the combustion is transported to the outside of the insulation frame (108) through the exhaust pipe (137) under the obstruction of the baffle. During the flow of the airflow through the exhaust pipe, due to the change in the space inside the exhaust pipe (137), the airflow can impact and drive the connecting impeller (138) to rotate at high speed. Then, the rotating connecting impeller (138) can synchronously drive the heat dissipation impeller (139) to rotate, so as to dissipate heat. The impeller (139) can accelerate the diffusion of heat dissipated by the heat-conducting plate (140), thereby ensuring the dryness inside the bottom frame (101) and ensuring that the bamboo to be processed is not easily affected by the external environment during the cutting process. The generated waste will slide into the collection frame (107) through the obstruction of the bottom frame (101), and at the same time slide into the combustion frame (109) through the collection frame (107), so that the waste can be ignited to provide heat. When there is a lot of combustion ash inside the combustion frame (109), the combustion ash can be easily removed from the insulation frame (108) by pushing the combustion frame (109). At the same time, fuel can be injected into the side without fuel and ignited before being moved into the insulation frame (108), thereby continuously providing the heat required for drying inside the bottom frame (101).