A highway embankment filler drying and turning machine
By designing a highway embankment filler turning drying machine, the automatic transportation and drying of fillers is achieved by using the coordinated movement of the triangle plate and the heating rod, the problems of filler drying and rolling in the prior art are solved and construction efficiency is improved.
Patent Information
- Application Number
- CN202311045359.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-18
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2043-08-18
AI Technical Summary
The prior art lacks a kind of equipment to move the packing backwards by intermittently tumbling the packing, causing the heating rod to swing back and forth to contact the packing, realize the packing drying, and realize the automatic transportation and rolling of the drying packing under the action of the packing that is constantly moving backwards.
A highway embankment filler turning and drying integrated machine is designed. Through the coordinated work of channel components, excavation components, heating components and rolling components, the automatic transportation and drying of fillers are achieved by using the reciprocating movement of the triangle plate and the heating rod, and the rolling components are achieved by using electric push rods and rolling wheels.
Automatic transportation and uniform drying of fillers are realized to ensure uniform heat of the soil, and effective rolling of fillers is achieved through the movement of the rolling wheel, improving the construction progress.
Smart Images

Figure CN116856248B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of highway construction equipment, and more specifically, to a highway embankment filler turning and drying integrated machine. Background Art
[0002] With the rapid development of the national economy, a large number of expressways have been planned across the country. When constructing expressways in the southern region, due to the humid and rainy climate in the southern region, the water content of the embankment filler is very high, which greatly affects the construction progress of the expressway.
[0003] Currently, there is still a lack of a device that can rely on a triangular plate to intermittently push the filler backward, make the heating rod swing reciprocally in contact with the filler to dry the filler, and under the action of the continuously moving backward filler, realize the automatic transportation of the dried filler to the ground and perform rolling. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a highway embankment filler turning and drying integrated machine to facilitate the turning and drying of the embankment filler.
[0005] The present invention adopts the following technical solutions to achieve the invention purpose:
[0006] A highway embankment filler drying and mixing machine, comprising a channel assembly, characterized in that: the channel assembly includes a first channel, the first channel is fixedly communicated with a second channel, the second channel is fixedly communicated with a stirring tank, and the stirring tank is fixedly communicated with an inclined chute; the second channel is fixedly connected with a heating assembly, the heating assembly includes a thick plate, the second channel is fixedly connected with the thick plate, the thick plate is fixedly connected with a second motor, the output shaft of the second motor passes through the thick plate and is fixedly connected with a screw rod, the thick plate is fixedly connected with a U-shaped groove, the screw rod is arranged in the U-shaped groove and is connected with the U-shaped groove through bearings, and the thick plate is fixedly connected with a second square plate through symmetric guide rods; the second square plate is fixedly connected with the stirring tank, the second square plate is provided with a group of uniformly distributed straight grooves, a second T-shaped plate is arranged in the U-shaped groove, the screw rod is threadedly connected with the second T-shaped plate, the second T-shaped plate is fixedly connected with symmetric second circular blocks, the symmetric second circular blocks are respectively fixedly connected with first circular blocks, the symmetric guide rods respectively pass through the corresponding first circular blocks, the symmetric first circular blocks and the second T-shaped plate are respectively fixedly connected with cross blocks, and each cross block is respectively rotatably connected with a triangular plate; the symmetric second circular blocks are respectively nested in the lower straight mouth grooves, the symmetric lower straight mouth grooves are respectively fixedly connected with third circular shafts, the symmetric third circular shafts are respectively connected with the second square plate through bearings, the symmetric third circular shafts are respectively fixedly connected with upper straight mouth grooves, and a group of uniformly distributed round rods are respectively nested in the symmetric upper straight mouth grooves; each round rod is respectively fixedly connected with a circular stopper, each round rod is respectively fixedly connected with a mounting seat, each mounting seat is respectively arranged in the corresponding straight groove, and each mounting seat is respectively fixedly connected with a heating rod.
[0007] As a further limitation of the technical solution, the first channel is fixedly connected with an excavation assembly, the excavation assembly includes a group of vertical plates and a first T-shaped plate, the first channel is fixedly connected with the first T-shaped plate and a group of the vertical plates, the vertical plates are fixedly connected with a first square plate, the first square plate is provided with symmetric short grooves and symmetric long grooves, the first square plate is fixedly connected with a motor bracket, the first channel is provided with symmetric notches, the motor bracket is fixedly connected with a first motor, the output shaft of the first motor is fixedly connected with a crankshaft, one end of the crankshaft is rotatably connected with one end of a second connecting rod, the other end of the second connecting rod is rotatably connected with a second circular shaft, one end of a rear connecting rod is fixedly connected with the second circular shaft, the other ends of the symmetric rear connecting rods are respectively fixedly connected with one ends of front connecting rods, one ends of the symmetric front connecting rods are respectively rotatably connected with rear vertical blocks, the symmetric rear vertical blocks are respectively fixedly connected with the first square plate, the other ends of the symmetric front connecting rods are respectively rotatably connected with square rods, the first square plate is fixedly connected with symmetric front vertical blocks, one ends of the symmetric first connecting rods are respectively rotatably connected with the symmetric front vertical blocks, the other ends of the symmetric first connecting rods are respectively rotatably connected with the corresponding square rods, the symmetric square rods are respectively rotatably connected with a first circular shaft, and the first circular shaft is fixedly connected with a digging bucket.
[0008] As a further limitation of this technical solution, the first T-plate is rotatably connected to a U-shaped hollow rod, a U-shaped rod is arranged inside the U-shaped hollow rod, and the U-shaped rod is rotatably connected to the bucket.
[0009] As a further limitation of this technical solution, the two rods of the U-shaped rod respectively match the corresponding notches, the symmetric rear connecting rods are respectively arranged in the corresponding long grooves, and the symmetric front connecting rods respectively match the corresponding short grooves.
[0010] As a further limitation of this technical solution, the thick plate and the second square plate are respectively fixedly connected to a moving component, the moving component includes symmetric vertical connecting plates, the thick plate and the second square plate are respectively fixedly connected to the corresponding vertical connecting plates, the symmetric vertical connecting plates are respectively fixedly connected to the vehicle body, the vehicle body is fixedly connected to two groups of symmetric wheel mounting frames, and each wheel mounting frame is respectively connected to a wheel by a bearing.
[0011] As a further limitation of this technical solution, the vehicle body is fixedly connected to a rolling component, the rolling component includes symmetric electric push rods, the vehicle body is fixedly connected to the symmetric electric push rods, the push rods of the symmetric electric push rods are respectively fixedly connected to cross bars, the symmetric cross bars are respectively fixedly connected to mounting plates, and the symmetric mounting plates are respectively connected to rolling wheels by bearings.
[0012] As a further limitation of this technical solution, the inclined groove is fixedly connected to an inclined plate.
[0013] A method for using a road embankment filler turning and drying machine, characterized by comprising the following steps:
[0014] S1: Operate the device to move forward, control the first motor to rotate, control the second motor to rotate reciprocally, control the heating rod to work, and control the electric push rod to reciprocate telescopically;
[0015] S2: The bucket swings downward and inserts into the soil to dig the soil, and the bucket swings backward to pour the soil into the first channel;
[0016] S3: When the triangular plate swings forward, it moves along the soil surface. When the triangular plate swings backward, it inserts into the soil, contacts the cross block and moves backward to keep the triangular plate in a vertical state, and transports the soil in the first channel to the inclined groove through the second channel;
[0017] S4: The heating rod moves reciprocally, contacts the soil, and dries the soil;
[0018] S5: Under the action of the continuously moving backward soil, the dried soil is automatically transported backward and falls to the ground;
[0019] S6: The rolling wheel moves up and down reciprocatingly to contact the soil and squeeze the soil, and the rolling wheel moves along the soil surface to achieve rolling.
[0020] As a further limitation of the present technical solution, when the first motor rotates, it drives the crankshaft to rotate, the crankshaft drives the second connecting rod to swing back and forth, the second connecting rod drives the second circular shaft to swing back and forth, the second circular shaft drives the rear connecting rod to swing back and forth in the long slot, the rear connecting rod drives the front connecting rod to swing back and forth along the short slot, the front connecting rod drives the square rod to swing back and forth, the square rod drives the first connecting rod to swing back and forth, the square rod drives the first circular shaft to swing back and forth, the first circular shaft drives the bucket to swing back and forth, the bucket drives the U-shaped rod to swing back and forth while moving along the U-shaped hollow rod and the slot, and the U-shaped rod drives the U-shaped hollow rod to swing back and forth.
[0021] As a further limitation of the present technical solution, when the second motor rotates, it drives the screw to rotate, and the screw drives the second T-plate to move along the U-groove, and the second T-plate drives the second round block to move along the lower straight groove, and the second round block drives the first round block to move along the guide rod, and the first round block and the second T-plate drive the cross block and the triangular plate to move, and the second round block drives the lower straight groove to swing, and the lower straight groove drives the third circular shaft to rotate, and the third circular shaft drives the upper straight groove to swing, and the upper straight groove drives the round rod to move, and the round rod drives the round stopper to move, and the round rod drives the mounting seat to move along the straight groove, and the mounting seat drives the heating rod to move.
[0022] Compared with the prior art, the advantages and positive effects of the present invention are:
[0023] 1. This device uses a second motor to drive the triangular plate to achieve the movement of the triangular plate. When the triangular plate swings forward, it moves along the soil surface. When the triangular plate swings backward, it inserts into the soil. The contact cross block moves backward to keep the triangular plate in a vertical state, and the soil in the first channel is transported to the chute through the second channel. As the triangular plate moves backward multiple times, the subsequent soil continues to move, pushing the previously dried soil to move, and the dried soil automatically falls to the ground. The heating rod moves back and forth, and the farther back the heating rod is, the larger its range of movement and the larger its range of contact with the soil. The soil gathered in the center is moved to both sides, so that the soil is evenly dispersed and heated evenly, achieving soil drying.
[0024] 2. This device uses a first motor and a connecting rod to rotate and connect, so that the bucket can swing back and forth. The bucket swings downward and inserts into the soil to dig the soil. The bucket swings backward to dump the soil into the first channel, which is convenient for subsequent drying of the soil.
[0025] 3. By setting an electric push rod in this device, the electric push rod reciprocates and retracts, and the rolling wheel reciprocates up and down to contact the soil and extrude the soil. Moreover, the rolling wheel moves along with the vehicle body to realize the overall movement along the soil surface and achieve rolling. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 Schematic three-dimensional structure of the present invention Figure 1 。
[0027] Figure 2 Schematic three-dimensional structure of the excavation component of the present invention Figure 1 。
[0028] Figure 3 Schematic partial three-dimensional structure diagram of the excavation component of the present invention.
[0029] Figure 4 Schematic three-dimensional structure of the excavation component of the present invention Figure 2 。
[0030] Figure 5 Schematic partial three-dimensional structure of the present invention Figure 1 。
[0031] Figure 6 Schematic partial three-dimensional structure of the present invention Figure 2 。
[0032] Figure 7 Schematic partial three-dimensional structure of the present invention Figure 3 。
[0033] Figure 8 Schematic three-dimensional structure of the excavation component of the present invention Figure 3 。
[0034] Figure 9 Schematic partial three-dimensional structure of the present invention Figure 4 。
[0035] Figure 10 Schematic three-dimensional structure of the present invention Figure 2 。
[0036] In the figure:
[0037] 1. Moving component, 11. Vehicle body, 12. Wheel mounting bracket, 13. Wheel, 14. Vertical connecting plate;
[0038] 2. Excavating component, 21. First motor, 22. Crankshaft, 23. U-shaped hollow rod, 24. U-shaped rod, 25. Bucket, 26. Square rod, 27. Vertical plate, 28. First square plate, 29. Motor bracket, 210. Long slot, 211. Short slot, 212. First round shaft, 213. First connecting rod, 214. Front vertical block, 215. Front connecting rod, 216. Rear vertical block, 217. Rear connecting rod, 218. Second round shaft, 219. Second connecting rod, 220. First T-shaped plate;
[0039] 3. Channel component, 31. First channel, 32. Second channel, 33. Stirring tank, 34. Inclined slot, 35. Inclined plate, 36. Slot opening;
[0040] 4. Heating component, 41. Second motor, 42. Thick plate, 43. Guide rod, 44. U-shaped groove, 45. Second square plate, 46. Straight slot, 47. Screw rod, 48. Upper straight mouth slot, 49. Circular stopper, 410. Round rod, 411. Mounting seat, 412. Heating rod, 413. Third round shaft, 414. Lower straight mouth slot, 415. Second T-shaped plate, 416. First round block, 417. Horizontal block, 418. Triangular plate, 419. Second round block;
[0041] 5. Rolling component, 51. Mounting plate, 52. Rolling wheel, 53. Cross bar, 54. Electric push rod. Detailed implementation manner
[0042] The following combines with the attached drawings to describe in detail a specific implementation manner of the present invention, but it should be understood that the protection scope of the present invention is not limited by the specific implementation manner.
[0043] The present invention includes a channel assembly 3, which includes a first channel 31, the first channel 31 is fixedly connected to the second channel 32, the second channel 32 is fixedly connected to the stirring tank 33, and the stirring tank 33 is fixedly connected to the chute 34; the second channel 32 is fixedly connected to the heating assembly 4, and the heating assembly 4 includes a thick plate 42, the second channel 32 is fixedly connected to the thick plate 42, the thick plate 42 is fixedly connected to the second motor 41, the output shaft of the second motor 41 passes through the thick plate 42 and is fixedly connected to the screw 47, the thick plate 42 is fixedly connected to the U-groove 44, the screw 47 is arranged in the U-groove 44 and is connected to the U-groove 44 by a bearing, and the thick plate 42 is fixedly connected to the second square plate 45 through a symmetrical guide rod 43; the second square plate 45 is fixedly connected to the stirring tank 33, the second square plate 45 is provided with a group of evenly distributed straight grooves 46, the U-groove 44 is provided with a second T-plate 415, the screw 47 is threadedly connected to the second T-plate 415, and the second T-plate 415 is fixedly connected to the symmetrical The second round block 419 is symmetrically connected to the first round block 416, and the symmetrical guide rods 43 pass through the corresponding first round blocks 416. The symmetrical first round blocks 416 and the second T-plates 415 are respectively fixedly connected to the horizontal blocks 417, and each horizontal block 417 is rotatably connected to the triangular plate 418; the symmetrical second round blocks 419 are respectively nested in the lower straight groove 414, and the symmetrical lower straight groove 414 are respectively fixedly connected to the third circular shaft 413. The third circular shafts 413 are respectively connected to the second square plate 45 by bearings, and the symmetrical third circular shafts 413 are respectively fixedly connected to the upper straight grooves 48, and a group of evenly distributed round rods 410 are respectively nested in the symmetrical upper straight grooves 48; each of the round rods 410 is respectively fixedly connected to the circular stopper 49, and each of the round rods 410 is respectively fixedly connected to the mounting seat 411, and each of the mounting seats 411 is respectively arranged in the corresponding straight grooves 46, and each of the mounting seats 411 is respectively fixedly connected to the heating rod 412.
[0044] The first channel 31 is fixedly connected to the excavation assembly 2. The excavation assembly 2 includes a set of vertical plates 27 and a first T-shaped plate 220. The first channel 31 is fixedly connected to the first T-shaped plate 220 and the set of vertical plates 27. The vertical plates 27 are fixedly connected to a first square plate 28. The first square plate 28 is provided with symmetric short slots 211 and symmetric long slots 210. The first square plate 28 is fixedly connected to a motor bracket 29. The first channel 31 is provided with symmetric notch openings 36. The motor bracket 29 is fixedly connected to a first motor 21. The output shaft of the first motor 21 is fixedly connected to a crankshaft 22. One end of the crankshaft 22 is rotatably connected to one end of a second connecting rod 219. The other end of the second connecting rod 219 is rotatably connected to a second circular shaft 218. One end of the second circular shaft 218 is fixedly connected to one end of a rear connecting rod 217. The other ends of the symmetric rear connecting rods 217 are respectively fixedly connected to one ends of front connecting rods 215. One ends of the symmetric front connecting rods 215 are respectively rotatably connected to rear vertical blocks 216. The symmetric rear vertical blocks 216 are respectively fixedly connected to the first square plate 28. The other ends of the symmetric front connecting rods 215 are respectively rotatably connected to square rods 26. The first square plate 28 is fixedly connected to symmetric front vertical blocks 214. One ends of the symmetric front vertical blocks 214 are respectively rotatably connected to one ends of first connecting rods 213. The other ends of the symmetric first connecting rods 213 are respectively rotatably connected to the corresponding square rods 26. The symmetric square rods 26 are respectively rotatably connected to a first circular shaft 212. The first circular shaft 212 is fixedly connected to a bucket 25.
[0045] The first T-shaped plate 220 is rotatably connected to a U-shaped hollow rod 23. A U-shaped rod 24 is arranged inside the U-shaped hollow rod 23. The U-shaped rod 24 is rotatably connected to the bucket 25.
[0046] The two rods of the U-shaped rod 24 respectively match the corresponding notch openings 36. The symmetric rear connecting rods 217 are respectively arranged in the corresponding long slots 210. The symmetric front connecting rods 215 respectively match the corresponding short slots 211.
[0047] The thick plate 42 and the second square plate 45 are respectively fixedly connected to the moving assembly 1. The moving assembly 1 includes symmetric vertical connecting plates 14. The thick plate 42 and the second square plate 45 are respectively fixedly connected to the corresponding vertical connecting plates 14. The symmetric vertical connecting plates 14 are respectively fixedly connected to a vehicle body 11. The vehicle body 11 is fixedly connected to two sets of symmetric wheel mounting brackets 12. Each wheel mounting bracket 12 is respectively connected to a wheel 13 by a bearing.
[0048] The vehicle body 11 is fixedly connected to the rolling assembly 5. The rolling assembly 5 includes symmetric electric push rods 54. The vehicle body 11 is fixedly connected to the symmetric electric push rods 54. The push rods of the symmetric electric push rods 54 are respectively fixedly connected to cross bars 53. The symmetric cross bars 53 are respectively fixedly connected to mounting plates 51. The symmetric mounting plates 51 are respectively connected to rolling wheels 52 by bearings.
[0049] The inclined groove 34 is fixedly connected to the inclined plate 35.
[0050] A method for using a road embankment filler turning and drying machine, characterized by comprising the following steps:
[0051] S1: Operate the device to move forward, control the first motor 21 to rotate, control the second motor 41 to reciprocate, control the heating rod 412 to work, and control the electric push rod 54 to reciprocate telescopically;
[0052] S2: Swing the bucket 25 downward to insert it into the soil to dig the soil, and swing the bucket 25 backward to pour the soil into the first channel 31;
[0053] S3: When the triangular plate 418 swings forward, it moves along the soil surface. When the triangular plate 418 swings backward, it inserts into the soil, contacts the cross block 417 and moves backward to keep the triangular plate 418 in a vertical state, and transports the soil in the first channel 31 to the inclined groove 34 through the second channel 32;
[0054] S4: The heating rod 412 reciprocates to contact the soil and dry the soil;
[0055] S5: Under the action of the continuously moving backward soil, the dried soil is automatically transported backward and falls to the ground;
[0056] S6: The rolling wheels 52 reciprocate up and down to contact the soil to extrude the soil well, and the rolling wheels 52 move along the soil surface to achieve rolling.
[0057] When the first motor 21 rotates, it drives the crankshaft 22 to rotate, and the crankshaft 22 drives the second connecting rod 219 to swing back and forth, and the second connecting rod 219 drives the second circular shaft 218 to swing back and forth, and the second circular shaft 218 drives the rear connecting rod 217 to swing back and forth in the long slot 210, and the rear connecting rod 217 drives the front connecting rod 215 to swing back and forth along the short slot 211, and the front connecting rod 215 drives the square rod 26 to swing back and forth, and the square rod 26 drives the first connecting rod 213 to swing back and forth, and the square rod 26 drives the first circular shaft 212 to swing back and forth, and the first circular shaft 212 drives the bucket 25 to swing back and forth, and the bucket 25 drives the U-shaped rod 24 to swing back and forth while moving along the U-shaped hollow rod 23 and the notch 36, and the U-shaped rod 24 drives the U-shaped hollow rod 23 to swing back and forth.
[0058] When the second motor 41 rotates, it drives the screw 47 to rotate, and the screw 47 drives the second T-plate 415 to move along the U-groove 44. The second T-plate 415 drives the second round block 419 to move along the lower straight groove 414. The second round block 419 drives the first round block 416 to move along the guide rod 43. The first round block 416 and the second T-plate 415 drive the cross block 417 and the triangular plate 418 to move. The second round block 419 drives the lower straight groove 414 to swing. The lower straight groove 414 drives the third circular shaft 413 to rotate. The third circular shaft 413 drives the upper straight groove 48 to swing. The upper straight groove 48 drives the round rod 410 to move. The round rod 410 drives the circular stopper 49 to move. The round rod 410 drives the mounting seat 411 to move along the straight groove 46. The mounting seat 411 drives the heating rod 412 to move.
[0059] This device is driven by a second motor 41 to achieve the movement of the triangular plate 418. When the triangular plate 418 swings forward, it moves along the soil surface. When the triangular plate 418 swings backward, it inserts into the soil. The contact cross block 417 moves backward to keep the triangular plate 418 in a vertical state, and the soil in the first channel 31 is transported to the chute 34 through the second channel 32. As the triangular plate 418 moves backward multiple times, the subsequent soil is continuously moved to push the previously dried soil to move, so that the dried soil automatically falls to the ground. The heating rod 412 moves back and forth, and the farther back the heating rod 412 is, the greater its range of movement and the greater its range of contact with the soil. The soil gathered in the center is moved to both sides, so that the soil is evenly dispersed and heated evenly, thereby achieving soil drying.
[0060] This device uses a first motor 21 and a connecting rod to achieve reciprocating swing of the bucket 25. The bucket 25 swings downward and inserts into the soil to achieve soil excavation. The bucket 25 swings backward to dump the soil into the first channel 31, facilitating subsequent drying of the soil.
[0061] This device is provided with an electric push rod 54. The electric push rod 54 reciprocates telescopically, and the rolling wheel 52 reciprocates up and down to contact the soil and compact the soil. Moreover, the rolling wheel 52 moves along with the vehicle body to achieve overall movement along the soil surface and realize rolling.
[0062] The specific embodiments of the present invention disclosed above are only examples. However, the present invention is not limited thereto, and any changes that can be conceived by those skilled in the art should fall within the protection scope of the present invention.
Claims
1. A road embankment filler drying and mixing machine, comprising a channel assembly (3), characterized in that: The channel assembly (3) includes a first channel (31), the first channel (31) is fixedly communicated with a second channel (32), the second channel (32) is fixedly communicated with a stirring tank (33), and the stirring tank (33) is fixedly communicated with an inclined chute (34); The second channel (32) is fixedly connected to a heating assembly (4), the heating assembly (4) includes a thick plate (42), the second channel (32) is fixedly connected to the thick plate (42), the thick plate (42) is fixedly connected to a second motor (41), the output shaft of the second motor (41) passes through the thick plate (42) and is fixedly connected to a screw rod (47), the thick plate (42) is fixedly connected to a U-shaped groove (44), the screw rod (47) is arranged in the U-shaped groove (44) and is bearing-connected to the U-shaped groove (44), and the thick plate (42) is fixedly connected to a second square plate (45) through symmetric guide rods (43); The second square plate (45) is fixedly connected to the stirring tank (33), the second square plate (45) is provided with a group of uniformly distributed straight grooves (46), a second T-shaped plate (415) is arranged in the U-shaped groove (44), the screw rod (47) is threadedly connected to the second T-shaped plate (415), the second T-shaped plate (415) is fixedly connected to symmetric second circular blocks (419), the symmetric second circular blocks (419) are respectively fixedly connected to first circular blocks (416), the symmetric guide rods (43) respectively pass through the corresponding first circular blocks (416), and the symmetric first circular blocks (416) and the second T-shaped plate (415) are respectively fixedly connected to cross blocks (417), and each cross block (417) is respectively rotatably connected to a triangular plate (418); The symmetric second circular blocks (419) are respectively nested in lower straight mouth grooves (414), the symmetric lower straight mouth grooves (414) are respectively fixedly connected to third circular shafts (413), the symmetric third circular shafts (413) are respectively bearing-connected to the second square plate (45), the symmetric third circular shafts (413) are respectively fixedly connected to upper straight mouth grooves (48), and a group of uniformly distributed round rods (410) are respectively nested in the symmetric upper straight mouth grooves (48); Each round rod (410) is respectively fixedly connected to a circular stopper (49), each round rod (410) is respectively fixedly connected to a mounting seat (411), each mounting seat (411) is respectively arranged in the corresponding straight groove (46), and each mounting seat (411) is respectively fixedly connected to a heating rod (412).
2. The road embankment filler turning and drying machine according to claim 1, wherein: The first channel (31) is fixedly connected to the excavation assembly (2). The excavation assembly (2) includes a set of vertical plates (27) and a first T-shaped plate (220). The first channel (31) is fixedly connected to the first T-shaped plate (220) and a set of the vertical plates (27). The vertical plates (27) are fixedly connected to the first square plate (28). The first square plate (28) is provided with symmetric short slots (211) and symmetric long slots (210). The first square plate (28) is fixedly connected to the motor bracket (29). The first channel (31) is provided with symmetric notch openings (36). The motor bracket (29) is fixedly connected to the first motor (21). The output shaft of the first motor (21) is fixedly connected to the crankshaft (22). The crankshaft (22) is rotatably connected to one end of the second connecting rod (219). The other end of the second connecting rod (219) is rotatably connected to the second circular shaft (218). The second circular shaft (218) is fixedly connected to one end of the rear connecting rod (217). The other ends of the symmetric rear connecting rods (217) are respectively fixedly connected to one end of the front connecting rod (215). The other ends of the symmetric front connecting rods (215) are respectively rotatably connected to the rear vertical blocks (216). The symmetric rear vertical blocks (216) are respectively fixedly connected to the first square plate (28). The other ends of the symmetric front connecting rods (215) are respectively rotatably connected to the square rods (26). The first square plate (28) is fixedly connected to symmetric front vertical blocks (214). The symmetric front vertical blocks (214) are respectively rotatably connected to one end of the first connecting rod (213). The other ends of the symmetric first connecting rods (213) are respectively rotatably connected to the corresponding square rods (26). The symmetric square rods (26) are respectively rotatably connected to the first circular shaft (212). The first circular shaft (212) is fixedly connected to the digging bucket (25).
3. The road embankment filler turning and drying integrated machine according to claim 2, characterized in that: The first T-shaped plate (220) is rotatably connected to the U-shaped hollow rod (23). The U-shaped hollow rod (23) is provided with a U-shaped rod (24) inside. The U-shaped rod (24) is rotatably connected to the digging bucket (25).
4. The road embankment filler drying and turning machine according to claim 3, characterized in that: The two rods of the U-shaped rod (24) respectively match the corresponding notch openings (36). The symmetric rear connecting rods (217) are respectively arranged in the corresponding long slots (210). The symmetric front connecting rods (215) respectively match the corresponding short slots (211).
5. The road embankment filler turning and drying integrated machine according to claim 3, wherein: The thick plate (42) and the second square plate (45) are respectively fixedly connected to the moving assembly (1). The moving assembly (1) includes symmetric vertical connecting plates (14). The thick plate (42) and the second square plate (45) are respectively fixedly connected to the corresponding vertical connecting plates (14). The symmetric vertical connecting plates (14) are respectively fixedly connected to the vehicle body (11). The vehicle body (11) is fixedly connected to two sets of symmetric wheel mounting brackets (12). Each wheel mounting bracket (12) is respectively connected to the wheel (13) by a bearing.
6. The road embankment filler turning and drying integrated machine according to claim 4, wherein: The vehicle body (11) is fixedly connected to the rolling assembly (5). The rolling assembly (5) includes symmetric electric push rods (54). The vehicle body (11) is fixedly connected to the symmetric electric push rods (54). The push rods of the symmetric electric push rods (54) are respectively fixedly connected to a cross bar (53). The symmetric cross bars (53) are respectively fixedly connected to mounting plates (51). The symmetric mounting plates (51) are respectively connected to rolling wheels (52) by bearings.
7. The road embankment filler turning and drying integrated machine according to claim 1, characterized in that: The chute (34) is fixedly connected to the inclined plate (35).
8. The method for using the road embankment filler turning and drying integrated machine according to claim 6, characterized in that It includes the following steps: S1: Operate the device to move forward, control the first motor (21) to rotate, control the second motor (41) to reciprocate, control the heating rod (412) to work, and control the electric push rod (54) to reciprocate telescopically; S2: The bucket (25) swings downward and inserts into the soil to dig the soil. The bucket (25) swings backward and pours the soil into the first channel (31); S3: When the triangular plate (418) swings forward, it moves along the soil surface. When the triangular plate (418) swings backward, it inserts into the soil, contacts the cross block (417) and moves backward to keep the triangular plate (418) in a vertical state, and transports the soil in the first channel (31) to the chute (34) through the second channel (32); S4: The heating rod (412) moves back and forth, contacts the soil, and dries the soil; S5: Under the action of the continuously moving backward soil, the dried soil is automatically transported backward and falls to the ground; S6: The rolling wheels (52) move up and down reciprocally to contact the soil and extrude the soil well. Moreover, the rolling wheels (52) move along the soil surface to achieve rolling.
9. The method for using the road embankment filler turning and drying integrated machine according to claim 8, characterized in that: When the first motor (21) rotates, it drives the crankshaft (22) to rotate. The crankshaft (22) drives the second connecting rod (219) to reciprocate. The second connecting rod (219) drives the second circular shaft (218) to reciprocate. The second circular shaft (218) drives the rear connecting rod (217) to reciprocate in the long slot (210). The rear connecting rod (217) drives the front connecting rod (215) to reciprocate along the short slot (211). The front connecting rod (215) drives the square rod (26) to reciprocate. The square rod (26) drives the first connecting rod (213) to reciprocate. The square rod (26) drives the first circular shaft (212) to reciprocate. The first circular shaft (212) drives the bucket (25) to reciprocate. The bucket (25) drives the U-shaped rod (24) to reciprocate and move along the U-shaped hollow rod (23) and the notch (36) at the same time. The U-shaped rod (24) drives the U-shaped hollow rod (23) to reciprocate.
10. The method for using the road embankment filler turning and drying integrated machine according to claim 8, characterized in that: When the second motor (41) rotates, it drives the screw rod (47) to rotate. The screw rod (47) drives the second T-shaped plate (415) to move along the U-shaped groove (44). The second T-shaped plate (415) drives the second round block (419) to move along the lower straight groove (414). The second round block (419) drives the first round block (416) to move along the guide rod (43). The first round block (416) and the second T-shaped plate (415) drive the cross block (417) and the triangular plate (418) to move. The second round block (419) drives the lower straight groove (414) to swing. The lower straight groove (414) drives the third round shaft (413) to rotate. The third round shaft (413) drives the upper straight groove (48) to swing. The upper straight groove (48) drives the round rod (410) to move. The round rod (410) drives the circular stopper (49) to move. The round rod (410) drives the mounting seat (411) to move along the straight groove (46). The mounting seat (411) drives the heating rod (412) to move.
Citation Information
Patent Citations
Highway embankment over-wet filler turning and drying device and using method thereof
CN113445397A
Overturning and drying device for overwet filler of highway embankment and using method of overturning and drying device
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