Folium isatidis processing device and method

By designing the storage box and detection mechanism of the large green leaf processing device, the gravity of the concave block triggers the warning light and the cylinder drive filling block to seal the gap, the problem that existing devices cannot be automatically sealed is solved, and the immersion quality and practicality are improved.

CN120362181APending Publication Date: 2025-07-25TIANSHENG PHARMA GROUP
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Patent Information

Application Number
CN202510528397.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

The existing alarm device cannot be automatically blocked after detecting the infusion cylinder gap, resulting in liquid overflow and poor practicality.

Method used

A large green leaf processing device is designed, including a storage box, a storage cylinder, a detection mechanism and a driving assembly. The warning light triggers the gravitational motion of the recessed block and the cylinder drive filler block to seal the gap, and the gap position is positioned through the insert block, combining the alarm and the copper disc to sound to remind the workers.

Benefits of technology

Automatic sealing after a gap is detected is achieved, reducing liquid overflow, improving the soaking quality and the practicality of the device, and saving workers' processing time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of alarm equipment, and particularly discloses a folium isatidis processing device which comprises a containing box with an inlet and further comprises a containing cylinder and a detection mechanism which are arranged in the containing box. The accommodating cylinder is fixedly connected with the accommodating box and is communicated with the inlet; the detection mechanism comprises a cylinder, a concave block, a first spring, an annular hollow block, a plurality of detection assemblies arranged in the circumferential direction of the annular hollow block at equal intervals, an alarm assembly used for giving an alarm along with vertical downward movement of the concave block, and a driving assembly used for driving the annular hollow block to do vertical upward movement along with vertical downward movement of the concave block. The cylinder body is fixedly connected with the accommodating box; the concave block is in sliding connection with the barrel; two ends of the first spring are respectively connected with the concave block and the inner wall of the barrel. The problem that an existing alarm device cannot block a gap after the gap is detected is solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of alarm devices, and particularly relates to a folium isatidis processing device and a processing method. Background Art

[0002] During the processing of folium isatidis, it is often necessary to repeatedly rinse it with clean water and soak it in warm water for a period of time to activate the active ingredients of folium isatidis, so that its active ingredients can be released better. That is, the medicinal value of folium isatidis can be released more fully through warm water soaking. At present, due to the imperfect production technology or long-term use of the soaking cylinder for folium isatidis, there may be gaps on the soaking cylinder, which will cause the liquid to overflow through the gaps. That is, during the soaking of folium isatidis, the soaking effect is not good and the soaking quality is poor.

[0003] To solve the above problems, an alarm device that can detect the soaking cylinder has emerged on the market. The device includes a receiving cylinder, a detection component, and a driving component. When the device is in use, the driving component drives the detection component to perform vertical reciprocating motion. During the movement of the detection component, when the probe on the detection component contacts the gap, the sensor on the probe will transmit the signal to the alarm, thereby triggering the alarm to sound, so as to prompt the worker that there is a gap in the receiving cylinder, that is, it is a substandard product and cannot soak folium isatidis in warm water.

[0004] The above device has the following problems in actual use: The device can only trigger the alarm to sound, but it cannot take any measures to the gap during this period to ensure that the liquid no longer overflows from the gap. Therefore, if there is no worker around the receiving cylinder paying attention to the working state of the alarm at all times, or the worker cannot receive the information that the gap is damaged in time due to the surrounding noise being too loud, it will cause the liquid to continue to overflow, and the practicability is poor. Summary of the Invention

[0005] The present invention provides a folium isatidis processing device to solve the problem that the existing alarm device cannot block the gap after detecting the gap.

[0006] To achieve the above object, the present invention adopts the following technical solution: A Folium Isatidis processing device, including a receiving box with an inlet, further including a receiving cylinder and a detection mechanism arranged in the receiving box; the receiving cylinder is fixedly connected to the receiving box and is communicated with the inlet; the detection mechanism includes a cylinder body, a concave block, a first spring, an annular hollow block, a plurality of detection components arranged equidistantly along the circumferential direction of the annular hollow block, an alarm component for alarming with the vertical downward movement of the concave block, and a driving component for driving the annular hollow block to move vertically upward with the vertical downward movement of the concave block; the cylinder body is fixedly connected to the receiving box; the concave block is slidably connected to the cylinder body; both ends of the first spring are respectively connected to the concave block and the inner wall of the cylinder body; the detection component includes a detection box, a guiding cylinder, a guiding block, a connecting rod, a filling block, a second spring, and a stopping component for stopping the annular hollow block with the lateral movement of the guiding block; the detection box is fixedly connected to the annular hollow block; the guiding cylinder is fixedly connected to the inner wall of the detection box; the guiding block is slidably connected to the guiding cylinder; the connecting rod is slidably connected to the detection box, and both ends of the connecting rod are respectively connected to the guiding block and the filling block; the filling block abuts against the outer wall of the cylinder body, and two adjacent filling blocks are in contact with each other; both ends of the second spring are respectively connected to the guiding block and the inner wall of the guiding cylinder.

[0007] Further, the driving component includes a side block, a movable block, a vertical block, a side block, a first wedge block, a third spring, a first cylinder, a side groove opened on the movable block, a wedge surface groove opened on the side groove, a sliding groove opened on the side block, a side hole opened on the cylinder body, and a driving part for starting the first cylinder with the movement of the first wedge block; the side block is fixedly connected to the concave block and is slidably connected to the side hole; the movable block is fixedly connected to the annular hollow block; both ends of the vertical block are respectively connected to the side block and the side block; the first wedge block is slidably connected to the sliding groove, the first wedge block is located in the side groove, and the wedge surface groove is located on the movement track of the first wedge block; both ends of the third spring are respectively connected to the first wedge block and the side groove.

[0008] Further, the driving part includes a fixed block, a limiting block, a short shaft, a first gear, a first rack, a second rack, a long rod, a first electrode piece, a second electrode piece, and a sliding hole opened on the side groove; the fixed block is fixedly connected to the receiving box; the limiting block is fixedly connected to the fixed block; the short shaft is rotatably connected to the fixed block; the first gear is fixedly connected to the short shaft; the first rack is slidably connected to the sliding hole and is fixedly connected to the first wedge block; the second rack is slidably connected to the limiting block; the first gear is respectively meshed with the first rack and the second rack; the long rod is fixedly connected to the second rack; the first electrode piece is fixedly connected to the long rod; the second electrode piece is fixedly connected to the second cylinder, and the second electrode piece is located on the movement track of the first electrode piece; the first electrode piece, the second electrode piece, the first cylinder, and the power supply are connected by wires to form a series circuit.

[0009] Further, it also includes an auxiliary component; the auxiliary component includes an annular electrode plate, a second cylinder, a moving block, a second wedge block, a third wedge block, a fourth spring, an annular chamber opened in the annular hollow block, and a receiving chamber opened in the movable block; the annular electrode plate is fixedly connected to the annular chamber; the receiving chamber communicates with the annular chamber; the second cylinder is fixedly connected to the annular chamber; both the moving block and the third wedge block are slidably connected to the receiving chamber, and the moving block is fixedly connected to the output shaft of the second cylinder; the second wedge block is fixedly connected to the moving block; the third wedge block is located on the movement track of the second wedge block, and the long rod is located on the movement track of the third wedge block; both ends of the fourth spring are respectively connected to the third wedge block and the receiving chamber; the detection box communicates with the annular chamber; the stopping component includes a rotating shaft, a second gear, an inner block, a third rack, and a third electrode plate; the rotating shaft is rotatably connected to the detection box; the second gear is fixedly connected to the rotating shaft; the inner block is fixedly connected to the detection box; the third rack is slidably connected to the inner block; the guide block is a fourth rack; the second gear meshes with the third rack and the fourth rack respectively; the third electrode plate is fixedly connected to the third rack, and the annular electrode plate is located on the movement track of the third electrode plate; the annular electrode plate, the third electrode plate, the second cylinder, and the power supply are connected by wires to form a series circuit.

[0010] Further, it also includes a warning part; the warning part includes a fourth electrode plate, a fifth electrode plate, and an alarm; the fourth electrode plate is fixedly connected to the moving block; the fifth electrode plate is fixedly connected to the receiving chamber, and the fifth electrode plate is located on the movement track of the fourth electrode plate; the alarm is fixedly connected to the movable block; the fourth electrode plate, the fifth electrode plate, the alarm, and the power supply are connected by wires to form a series circuit.

[0011] Further, a positioning part is provided on the detection box; the positioning part includes a short rod, a positioning block, and a top hole opened on the detection box; the short rod is fixedly connected to the third rack, and the short rod is slidably connected to the top hole; the positioning block is fixedly connected to the short rod, and two adjacent positioning blocks are in contact with each other; it also includes an auxiliary part; the auxiliary part includes a motor, an auxiliary shaft, a third gear, an annular rack, a connecting block, a telescopic rod, an inserting block, a sixth electrode plate, and an annular hole opened on the annular hollow block; the motor is fixedly connected to the movable block; the auxiliary shaft is rotatably connected to the movable block, and the auxiliary shaft is fixedly connected to the output shaft of the motor; the third gear is fixedly connected to the auxiliary shaft; the annular rack is slidably connected to the annular hole, and the third gear meshes with the annular rack; the connecting block is fixedly connected to the annular rack; the telescopic rod is fixedly connected to the connecting block; the inserting block is fixedly connected to the telescopic rod, and the inserting block abuts against the positioning block; the sixth electrode plate is fixedly connected to the receiving chamber, and the sixth electrode plate is located on the movement track of the fourth electrode plate; the fourth electrode plate, the sixth electrode plate, the motor, and the power supply are connected by wires to form a series circuit.

[0012] Further, it also includes a prompting part; the prompting part includes a cam and a copper disk; the cam is fixedly connected to the auxiliary shaft; the copper disk is fixedly connected to the movable block, and the copper disk is located on the movement track of the cam.

[0013] Further, the alarm component includes a seventh electrode plate, an eighth electrode plate, and a warning light; the seventh electrode plate is fixedly connected to the concave block; the eighth electrode plate is fixedly connected to the cylinder body, and the eighth electrode plate is located on the movement track of the seventh electrode plate; the warning light is fixedly connected to the accommodation box; the seventh electrode plate, the eighth electrode plate, the warning light, and the power supply are connected by wires to form a series circuit.

[0014] The principle and advantages of this solution are as follows:

[0015] 1. Pour warm water and Isatis indigotica together along the inlet into the accommodation cylinder, and then soak the Isatis indigotica. During the soaking of the Isatis indigotica, if there is a break on the accommodation cylinder, the warm water will overflow through the break and fall on the concave block. As the weight of the warm water accumulated on the concave block becomes heavier and heavier, the concave block will move vertically downward under the action of the gravity of the warm water. During the movement of the concave block, the seventh electrode plate moves synchronously. During the movement of the seventh electrode plate, when the seventh electrode plate contacts the eighth electrode plate, the warning light is energized. Through the above process, when the warning light is energized, it will emit a dazzling red color, thus timely transmitting the information that there is a break on the accommodation cylinder to the workers, which is convenient for the workers to take timely remedial measures later, transfer the warm water and Isatis indigotica in the accommodation cylinder to another storage container, and improve the soaking quality of the Isatis indigotica.

[0016] 2. During the vertical downward movement of the concave block, the first wedge block slides out of the side groove driven by the concave block, and through the cooperation with the wedge surface groove, the first wedge block can move horizontally in the sliding groove, so that the first wedge block no longer stops the movable block, that is, the movable block can move vertically back and forth after the warning light transmits the break information. Through the above movement, if there is no break on the accommodation cylinder, the movable block cannot move vertically; if there is a break on the accommodation cylinder, the movable block can move vertically under the action of the first cylinder later, and then drive the filling block to perform a preliminary filling treatment on the break. That is, it ensures the accuracy of the detection of the accommodation cylinder and improves the detection quality of the accommodation cylinder.

[0017] 3. During the movement of the first wedge block, the first rack moves synchronously. During the movement of the first rack, through the meshing with the first gear, it drives the first electrode plate to contact the second electrode plate, so that the first cylinder is energized. After the first cylinder is energized, the output shaft of the first cylinder drives the filling block to move vertically upward. During the movement of the filling block, when the filling block contacts the break, the filling block can slide into the break, so as to realize the filling of the break. Through the above movement, the filling block can block the gap, reduce the amount of warm water overflowing, realize the preliminary sealing of the accommodation cylinder, and prepare for the subsequent further treatment of the accommodation cylinder.

[0018] 4. During the process of the filling block filling the break under the action of the second spring, the fourth rack will drive the second gear to rotate, and then the third rack will drive the third electrode plate to contact the annular electrode plate, so that the second cylinder is energized. During the energization of the second cylinder, the output shaft of the second cylinder drives the second wedge block to move horizontally. During the movement of the second wedge block, through the extrusion of the second wedge block on the third wedge block, the third wedge block then pushes the long rod away from the second electrode plate, so that the first cylinder is de-energized. After the first cylinder is de-energized, it can ensure that the filling block always fills the break, enhancing the filling effect on the receiving cylinder and improving the filling quality of the receiving cylinder.

[0019] 5. During the movement of the moving block, the fourth electrode plate moves synchronously. During the movement of the fourth electrode plate, through the contact between the fourth electrode plate and the fifth electrode plate, the alarm is triggered to be energized. After the alarm is energized, it will emit an alarm sound, and through the transmission of the sound, the information that the receiving cylinder has been filled can be timely transmitted to the worker, so that the worker can take corresponding measures, improving the practicability of the device.

[0020] 6. During the movement of the fourth electrode plate, the fourth electrode plate can also trigger the motor to be energized through contact with the sixth electrode plate. After the motor is energized, the annular rack can perform a circumferential movement. During the circumferential movement of the annular rack, the insertion block moves synchronously. During the movement of the insertion block, when the insertion block moves to the position where the break is located, the insertion block will move vertically downward under the action of the telescopic rod, and then the insertion block will be stuck between the two positioning blocks, that is, the insertion block can no longer perform a circumferential movement. Through the above movement, when the insertion block is stuck, the position where the insertion block stays is the position of the notch, that is, the worker can quickly find the break by observing the position where the telescopic rod stays, facilitating the worker to perform further processing on the break subsequently, saving the unnecessary trouble of the worker and enhancing the work efficiency.

[0021] 7. During the circumferential movement of the insertion block, the cam will continuously strike the copper disk, triggering the copper disk to make a sound. Through the sound transmitted by the copper disk, it is convenient for the worker to judge that the insertion block is still looking for the position of the notch at this time. If the copper disk no longer makes a sound, it means that the insertion block has found the position of the notch, further prompting the worker to be able to perform further processing on the receiving cylinder, eliminating unnecessary work processes and improving the practicability of the device.

[0022] To achieve the above object, the present invention adopts the following technical solution: A method for processing Isatis indigotica Fort., comprising the following steps:

[0023] Step (1): Trigger the warning light to be energized by the gravity of the overflowing liquid;

[0024] Step (2): Perform a preliminary filling treatment on the damaged notch through the vertical movement of the filling block;

[0025] Step (3): Cut off the power supply of the first cylinder through the reciprocating motion of the third wedge block, thereby stopping the filling block.

[0026] Step (4): Trigger the power-on of the alarm through the movement of the moving block.

[0027] Step (5): Determine the location of the break through the circumferential movement of the inserted block.

[0028] The principle and advantages of this solution are:

[0029] 1. Drive the filling block to move vertically through the weight of the overflowing warm water, so that the filling block can block the break of the receiving cylinder.

[0030] 2. Cut off the power supply of the first cylinder to ensure that the filling block can stably fill and block the receiving cylinder.

[0031] 3. Through the power-on of the alarm and the warning light, the information that there is a break in the receiving cylinder and the filling block blocks the break is transmitted to the worker in time.

[0032] 4. Through the circumferential movement of the inserted block, help the worker quickly find the location of the break, which is convenient for the worker to further block the break in time. Brief Description of the Drawings

[0033] Figure 1 It is a schematic structural diagram of the receiving box in the embodiment of a folium isatidis processing device according to the present invention.

[0034] Figure 2 It is Figure 1 The internal structural schematic diagram of the receiving box in the left view direction in

[0035] Figure 3 It is Figure 2 The enlarged view of A in

[0036] Figure 4 It is Figure 3 The enlarged view of B in

[0037] Figure 5 It is Figure 3 The partial cross-sectional view of the moving block in the front view direction in

[0038] Figure 6 It is Figure 3 The partial structural schematic diagram inside the receiving box.

[0039] Figure 7 It is Figure 6 The enlarged view of C in

[0040] Figure 8 It is Figure 7 The enlarged view of D in

[0041] Figure 9 is Figure 6 a schematic diagram of the internal structure of the detection box in

[0042] Figure 10 is Figure 6 a schematic diagram of the structure of the cylinder body in Specific embodiments

[0043] The following is a further detailed description through specific embodiments:

[0044] The reference numerals in the accompanying drawings of the specification include: accommodation box 1, accommodation cylinder 2, cylinder body 3, concave block 4, fixed cylinder 5, guide block 6, annular hollow block 7, detection box 8, guide cylinder 9, guide block 10, connecting rod 11, filling block 12, side block 13, movable block 14, vertical block 15, edge block 16, first wedge block 17, third spring 18, first cylinder 19, side groove 20, wedge surface groove 21, sliding groove 22, fixed block 23, limit block 24, short shaft 25, first gear 26, first rack 27, second rack 28, long rod 29, first electrode plate 30, second electrode plate 31, annular electrode plate 32, second cylinder 33, moving block 34, second wedge block 35, third wedge block 36, rotating shaft 37, second gear 38, inner block 39, third rack 40, third electrode plate 41, fourth electrode plate 42, fifth electrode plate 43, alarm 44, short rod 45, positioning block 46, motor 47, auxiliary shaft 48, third gear 49, annular rack 50, connecting block 51, telescopic rod 52, inserting block 53, sixth electrode plate 54, cam 55, copper disc 56, seventh electrode plate 57, eighth electrode plate 58, warning light 59.

[0045] The embodiment is basically as shown in Figure 1 , 2 , 3, 4, 5, 6, 7, 8, 9, 10:

[0046] An embodiment of the present invention provides a Folium Isatidis processing device, which includes a containing box 1 with an inlet, and further includes a containing cylinder 2 and a detection mechanism arranged in the containing box 1; the containing cylinder 2 is fixedly connected to the containing box 1, and the containing cylinder 2 communicates with the inlet; a constant temperature pipe is arranged in the containing cylinder 2, and the constant temperature pipe is used to keep the temperature in the containing cylinder constant; the detection mechanism includes a cylinder body 3, a concave block 4, a fixed cylinder 5, a guiding block 6, a first spring, an annular hollow block 7, a plurality of detection components arranged at equal intervals in the circumferential direction of the annular hollow block 7, an alarm component for alarming as the concave block 4 moves vertically downward, and a driving component for driving the annular hollow block 7 to move vertically upward as the concave block 4 moves vertically downward; the cylinder body 3 is fixedly connected to the inner wall of the containing box 1; the concave block 4 is slidably connected to the inner wall of the cylinder body 3; the fixed cylinder 5 is fixedly connected to the inner wall of the cylinder body 3; one end of the guiding block 6 is fixedly connected to the concave block 4, and the other end of the guiding block 6 is slidably connected to the inner wall of the fixed cylinder 5; the first spring is located in the fixed cylinder 5, and both ends of the first spring are respectively connected to the guiding block 6 and the inner wall of the fixed cylinder 5; the detection component includes a detection box 8, a guiding cylinder 9, a guiding block 10, a connecting rod 11, a filling block 12, a second spring, and a stopping component for stopping the annular hollow block 7 as the guiding block 10 moves horizontally; the detection box 8 is fixedly connected to the annular hollow block 7; the guiding cylinder 9 is fixedly connected to the inner wall of the detection box 8; the guiding block 10 is slidably connected to the inner wall of the guiding cylinder 9; the connecting rod 11 is slidably connected to the detection box 8, and both ends of the connecting rod 11 are respectively fixedly connected to the guiding block 10 and the filling block 12; the filling block 12 abuts against the outer wall of the containing cylinder 2, and adjacent two filling blocks 12 are in contact with each other; the second spring is located in the guiding cylinder 9, and both ends of the second spring are respectively connected to the guiding block 10 and the inner wall of the guiding cylinder 9, and the initial state of the second spring is a compressed state.

[0047] The driving component includes a side block 13, a movable block 14, a vertical block 15, a side block 16, a first wedge block 17, a third spring 18, a first cylinder 19, a side groove 20 opened on the movable block 14, a wedge surface groove 21 opened on the side groove 20, a sliding groove 22 opened on the side block 16, a side hole opened on the cylinder body 3, and a driving part for starting the first cylinder 19 as the first wedge block 17 moves; the side block 13 is fixedly connected to the concave block 4, and the side block 13 is slidably connected to the side hole; the movable block 14 is fixedly connected to the annular hollow block 7; both ends of the vertical block 15 are respectively fixedly connected to the side block 13 and the side block 16; the first wedge block 17 is slidably connected to the sliding groove 22, the first wedge block 17 is located in the side groove 20, and the wedge surface groove 21 is located on the movement track of the first wedge block 17; the third spring 18 is located in the sliding groove 22, and both ends of the third spring 18 are respectively connected to the first wedge block 17 and the sliding groove 22.

[0048] The driving part includes a fixed block 23, a limiting block 24, a short shaft 25, a first gear 26, a first rack 27, a second rack 28, a long rod 29, a first electrode plate 30, a second electrode plate 31, and a sliding hole opened on the side groove 20; the fixed block 23 is fixedly connected to the inner wall of the accommodating box 1; the limiting block 24 is fixedly connected to the fixed block 23; the short shaft 25 is rotatably connected to the fixed block 23; the first gear 26 is fixedly connected to the short shaft 25; the first rack 27 is slidably connected to the sliding hole, and the first rack 27 is fixedly connected to the first wedge block 17; the second rack 28 is slidably connected to the limiting block 24; the first gear 26 is located between the first rack 27 and the second rack 28, and the first gear 26 meshes with the first rack 27 and the second rack 28 respectively; the width of the first rack 27 is applicable to the vertical movement during the meshing of the first rack 27 and the first gear 26; the long rod 29 is fixedly connected to the second rack 28, and the length of the long rod 29 is applicable to the vertical movement of the movable block 14; the first electrode plate 30 is fixedly connected to the long rod 29; the second electrode plate 31 is fixedly connected to the second cylinder 33, and the second electrode plate 31 is located on the movement track of the first electrode plate 30; the first electrode plate 30, the second electrode plate 31, the first cylinder 19, and the power supply are connected by wires to form a series circuit.

[0049] It further includes an auxiliary component; the auxiliary component includes an annular electrode plate 32, a second cylinder 33, a moving block 34, a second wedge block 35, a third wedge block 36, a fourth spring, an annular chamber opened in the annular hollow block 7, and an accommodating chamber opened in the movable block 14; the annular electrode plate 32 is fixedly connected to the annular chamber; the accommodating chamber communicates with the annular chamber; the second cylinder 33 is fixedly connected to the annular chamber; the moving block 34 and the third wedge block 36 are both slidably connected to the accommodating chamber, and the moving block 34 is fixedly connected to the output shaft of the second cylinder 33; the second wedge block 35 is fixedly connected to the moving block 34; the third wedge block 36 is located on the movement track of the second wedge block 35, and the long rod 29 is located on the movement track of the third wedge block 36; the fourth spring is sleeved on the third wedge block 36, and the two ends of the fourth spring are respectively connected to the third wedge block 36 and the accommodating chamber; the detection box 8 communicates with the annular chamber; the stopping component includes a rotating shaft 37, a second gear 38, an inner block 39, a third rack 40, and a third electrode plate 41; the rotating shaft 37 is rotatably connected to the inner wall of the detection box 8; the second gear 38 is fixedly connected to the rotating shaft 37; the inner block 39 is fixedly connected to the inner wall of the detection box 8; the third rack 40 is slidably connected to the inner block 39; the guide block 10 is a fourth rack; the second gear 38 meshes with the third rack 40 and the fourth rack respectively; the third electrode plate 41 is fixedly connected to the third rack 40, and the annular electrode plate 32 is located on the movement track of the third electrode plate 41; the annular electrode plate 32, the third electrode plate 41, the second cylinder 33, and the power supply are connected by wires to form a series circuit.

[0050] It further includes a warning part; the warning part includes a fourth electrode plate 42, a fifth electrode plate 43, and an alarm 44; the fourth electrode plate 42 is fixedly connected to the moving block 34; the fifth electrode plate 43 is fixedly connected to the accommodation chamber, and the fifth electrode plate 43 is located on the movement track of the fourth electrode plate 42; the alarm 44 is fixedly connected to the outer wall of the movable block 14; the fourth electrode plate 42, the fifth electrode plate 43, the alarm 44, and the power supply are connected by wires to form a series circuit.

[0051] A positioning part is provided on the detection box 8; the positioning part includes a short rod 45, a positioning block 46, and a top hole opened on the detection box 8; the short rod 45 is fixedly connected to the third rack 40, and the short rod 45 is slidably connected to the top hole; the positioning block 46 is fixedly connected to the short rod 45, and two adjacent positioning blocks 46 are in contact with each other; it further includes an auxiliary part; the auxiliary part includes a motor 47, an auxiliary shaft 48, a third gear 49, an annular rack 50, a connecting block 51, a telescopic rod 52, an insertion block 53, a sixth electrode plate 54, and an annular hole opened on the annular hollow block 7; the motor 47 is fixedly connected to the outer wall of the movable block 14; the auxiliary shaft 48 is rotatably connected to the movable block 14, and the auxiliary shaft 48 is fixedly connected to the output shaft of the motor 47; the third gear 49 is fixedly connected to the auxiliary shaft 48; the annular rack 50 is slidably connected to the annular hole, and the third gear 49 meshes with the annular rack 50; the connecting block 51 is fixedly connected to the annular rack 50; the telescopic rod 52 includes an outer rod, an inner rod, and a fifth spring; the outer rod is fixedly connected to the connecting block 51, and the inner rod is slidably connected to the inner wall of the outer rod; the fifth spring is located inside the outer rod, and the two ends of the fifth spring are respectively connected to the inner rod and the inner wall of the outer rod, and the initial state of the fifth spring is a compressed state; the insertion block 53 is fixedly connected to the inner rod, and the insertion block 53 abuts against the positioning block 46; the sixth electrode plate 54 is fixedly connected to the accommodation chamber, and the sixth electrode plate 54 is located on the movement track of the fourth electrode plate 42; the fourth electrode plate 42, the sixth electrode plate 54, the motor 47, and the power supply are connected by wires to form a series circuit.

[0052] It further includes a prompting part; the prompting part includes a cam 55 and a copper disk 56; the cam 55 is fixedly connected to the auxiliary shaft 48, and the cam 55 is made of an elastic material; the copper disk 56 is fixedly connected to the movable block 14, and the copper disk 56 is located on the movement track of the cam 55.

[0053] The alarm component includes a seventh electrode plate 57, an eighth electrode plate 58, and a warning light 59; the seventh electrode plate 57 is fixedly connected to the concave block 4; the eighth electrode plate 58 is fixedly connected to the inner wall of the cylinder body 3, and the eighth electrode plate 58 is located on the movement track of the seventh electrode plate 57; the warning light 59 is fixedly connected to the outer wall of the accommodation box 1; the seventh electrode plate 57, the eighth electrode plate 58, the warning light 59, and the power supply are connected by wires to form a series circuit.

[0054] Motion sensors are provided on the second cylinder 33 and the motor 47. When the motion sensors receive an electrical signal indicating that there is no longer any change in the motion of the second cylinder 33 and the motor 47, the motion transmitter can transmit this signal to the power supply, thereby achieving power-off protection for the second cylinder 33 and the motor 47.

[0055] Specific implementation process:

[0056] Pour warm water and isatis leaf into the accommodating cylinder 2 along the inlet, and then soak the isatis leaf. During the soaking of the isatis leaf, if there is a break on the accommodating cylinder 2, the warm water will overflow through the break and fall on the concave block 4. As the weight of the warm water accumulating on the concave block 4 becomes heavier and heavier, the concave block 4 will move vertically downward under the action of the gravity of the warm water. During the movement of the concave block 4, the seventh electrode plate 57 moves synchronously. During the movement of the seventh electrode plate 57, when the seventh electrode plate 57 contacts the eighth electrode plate 58, the warning lamp 59 is energized. Through the above process, when the warning lamp 59 is energized, it will emit a dazzling red light, thereby promptly transmitting the information that there is a break on the accommodating cylinder 2 to the worker, which is convenient for the worker to take timely remedial measures later, transfer the warm water and isatis leaf in the accommodating cylinder 2 to another storage container, and improve the soaking quality of the isatis leaf.

[0057] During the vertical downward movement of the concave block 4, the first wedge block 17 slides out of the side groove 20 under the drive of the concave block 4, and through the cooperation of the wedge surface groove 21, the first wedge block 17 can move horizontally in the sliding groove 22, and the third spring 18 is compressed, so that the first wedge block 17 no longer stops the movable block 14, that is, the movable block 14 can perform vertical reciprocating motion after the warning lamp 59 transmits the break information. Through the above movement, if there is no break on the accommodating cylinder 2, the concave block 4 cannot move vertically downward under the weight of the warm water, that is, the movable block 14 cannot move vertically either; if there is a break on the accommodating cylinder 2, the concave block 4 can move vertically downward, so that the movable block 14 can move vertically under the action of the first cylinder 19 later, and then drive the filling block 12 to perform a preliminary filling treatment on the break. That is, it ensures the accuracy of the detection of the accommodating cylinder 2 and improves the detection quality of the accommodating cylinder 2.

[0058] During the movement of the first wedge block 17, the first rack 27 moves synchronously. During the movement of the first rack 27, the first gear 26 rotates by meshing with the first rack 27. During the rotation of the first gear 26, the second rack 28 drives the long rod 29 to move towards the position where the first cylinder 19 is located. During the movement of the long rod 29, the first cylinder 19 is energized by the contact between the first electrode plate 30 and the second electrode plate 31. After the first cylinder 19 is energized, the output shaft of the first cylinder 19 drives the movable block 14 to move vertically upward. During the movement of the movable block 14, the filling block 12 moves synchronously through the annular hollow block 7. During the vertical movement of the filling block 12, when the filling block 12 contacts the break, the second spring pushes the fourth rack to move horizontally, so that the filling block 12 can slide into the break, thereby realizing the filling of the break. Through the above movement, under the action of the filling block 12, the notch can be blocked, the amount of warm water overflow is reduced, and the initial sealing of the receiving cylinder 2 is realized, preparing for the subsequent further treatment of the receiving cylinder 2.

[0059] During the filling of the break by the filling block 12 under the action of the second spring, the fourth rack drives the second gear 38 to rotate. During the rotation of the second gear 38, the second gear 38 drives the third rack 40 to move, so that the third rack 40 drives the third electrode plate 41 to contact the annular electrode plate 32, thereby energizing the second cylinder 33. During the energization of the second cylinder 33, the output shaft of the second cylinder 33 drives the moving block 34 to move horizontally. During the movement of the moving block 34, the second wedge block 35 moves horizontally. During the movement of the second wedge block 35, the third wedge block 36 is pushed by the second wedge block 35, and then the third wedge block 36 pushes the long rod 29 away from the second electrode plate 31, so that the first cylinder 19 is de-energized. After the first cylinder 19 is de-energized, it can ensure that the filling block 12 always fills the break, enhancing the filling effect of the receiving cylinder 2 and improving the filling quality of the receiving cylinder 2.

[0060] During the movement of the moving block 34, the fourth electrode plate 42 moves synchronously. During the movement of the fourth electrode plate 42, the alarm 44 is triggered to be energized by the contact between the fourth electrode plate 42 and the fifth electrode plate 43. After the alarm 44 is energized, it will emit an alarm sound, and through the propagation of the sound, the information that the receiving cylinder 2 has been filled can be timely transmitted to the worker, so that the worker can take corresponding measures, improving the practicability of the device.

[0061] During the movement of the fourth electrode sheet 42, the fourth electrode sheet 42 can also trigger the energization of the motor 47 by contacting the sixth electrode sheet 54. After the motor 47 is energized, the output shaft of the motor 47 drives the auxiliary shaft 48 to rotate. During the rotation of the auxiliary shaft 48, the third gear 49 rotates synchronously. During the rotation of the third gear 49, since the third gear 49 meshes with the annular rack 50, the annular rack 50 can perform a circumferential movement. During the circumferential movement of the annular rack 50, the insertion block 53 moves synchronously. During the movement of the insertion block 53, when the insertion block 53 moves to the position where the notch is located, the insertion block 53 will move vertically downward under the action of the fifth spring, and as a result, the insertion block 53 will be stuck between the two positioning blocks 46, that is, the insertion block 53 can no longer perform a circumferential movement. Through the above movements, when the insertion block 53 is stuck, the position where the insertion block 53 stays is the position where the notch is located, that is, the worker can quickly find the break by observing the position where the outer rod stays, which facilitates the worker to further process the break subsequently, saves the unnecessary trouble of the worker, and enhances the work efficiency.

[0062] During the circumferential movement of the insertion block 53, the auxiliary shaft 48 will drive the cam 55 to rotate. During the rotation of the cam 55, the cam 55 will continuously strike the copper disk 56, thereby triggering the copper disk 56 to emit a sound. Through the sound transmitted by the copper disk 56, it is convenient for the worker to judge that the insertion block 53 is still looking for the position where the notch is located at this time. If the copper disk 56 no longer emits a sound, it means that the insertion block 53 has found the position where the notch is located, thereby prompting the worker to be able to further process the receiving cylinder 2, eliminating the unnecessary work process, and improving the practicability of the device.

[0063] In summary, first, under the prompt of the warning light 59, it is judged that there is a break in the receiving cylinder 2 and timely remedial measures need to be taken; then, under the action of the filling block 12, the break is initially filled to reduce the loss of warm water, and through the sound of the alarm 44, the information that the initial filling is completed is informed to the worker so that the worker can be prepared to further process the receiving cylinder 2; finally, under the action of the sound transmitted by the copper disk 56, it is judged that the outer rod has found the position where the break exists, saving the unnecessary trouble of the worker and improving the overall practicability.

[0064] The above are only the embodiments of the present invention, and the specific technical solutions and / or common knowledge such as characteristics known in the solutions are not described in detail here. It should be noted that for those skilled in the art, without departing from the technical solutions of the present invention, several deformations and improvements can still be made, and these should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent. The protection scope required by this application should be subject to the content of its claims, and the specific implementation manners in the specification and the like can be used to explain the content of the claims.

Claims

1. A Folium Isatidis processing device, comprising a receiving box with an inlet, characterized in that: It further includes a receiving cylinder and a detection mechanism disposed within the receiving box; the receiving cylinder is fixedly connected to the receiving box and communicates with the inlet; the detection mechanism includes a cylinder body, a concave block, a first spring, an annular hollow block, a plurality of detection components equidistantly arranged along the circumferential direction of the annular hollow block, an alarm component for alarming as the concave block moves vertically downward, and a driving component for driving the annular hollow block to move vertically upward as the concave block moves vertically downward; the cylinder body is fixedly connected to the receiving box; the concave block is slidably connected to the cylinder body; both ends of the first spring are respectively connected to the concave block and the inner wall of the cylinder body; the detection component includes a detection box, a guiding cylinder, a guiding block, a connecting rod, a filling block, a second spring, and a stopping component for stopping the annular hollow block as the guiding block moves horizontally; the detection box is fixedly connected to the annular hollow block; the guiding cylinder is fixedly connected to the inner wall of the detection box; the guiding block is slidably connected to the guiding cylinder; the connecting rod is slidably connected to the detection box, and both ends of the connecting rod are respectively connected to the guiding block and the filling block; the filling block abuts against the outer wall of the receiving cylinder, and adjacent two filling blocks are in contact with each other; both ends of the second spring are respectively connected to the guiding block and the inner wall of the guiding cylinder.

2. The large-leaf indigo processing device according to claim 1, wherein: The driving component includes a side block, a movable block, a vertical block, a side edge block, a first wedge block, a third spring, a first air cylinder, a side groove opened on the movable block, a wedge surface groove opened on the side groove, a sliding groove opened on the side edge block, a side hole opened on the cylinder body, and a driving part for starting the first air cylinder as the first wedge block moves; the side block is fixedly connected to the concave block and is slidably connected to the side hole; the movable block is fixedly connected to the annular hollow block; both ends of the vertical block are respectively connected to the side block and the side edge block; the first wedge block is slidably connected to the sliding groove, the first wedge block is located within the side groove, and the wedge surface groove is located on the movement track of the first wedge block; both ends of the third spring are respectively connected to the first wedge block and the sliding groove.

3. The large-leaf indigo processing device according to claim 2, wherein: The driving part includes a fixed block, a limiting block, a short shaft, a first gear, a first rack, a second rack, a long rod, a first electrode plate, a second electrode plate, and a sliding hole opened on the side groove; the fixed block is fixedly connected to the receiving box; the limiting block is fixedly connected to the fixed block; the short shaft is rotatably connected to the fixed block; the first gear is fixedly connected to the short shaft; the first rack is slidably connected to the sliding hole and is fixedly connected to the first wedge block; the second rack is slidably connected to the limiting block; the first gear meshes with the first rack and the second rack respectively; the long rod is fixedly connected to the second rack; the first electrode plate is fixedly connected to the long rod; the second electrode plate is fixedly connected to the second air cylinder, and the second electrode plate is located on the movement track of the first electrode plate; the first electrode plate, the second electrode plate, the first air cylinder, and the power supply are connected by wires to form a series circuit.

4. The large - leaf indigo processing device according to claim 3, wherein: It further includes an auxiliary component; the auxiliary component includes an annular electrode plate, a second cylinder, a moving block, a second wedge block, a third wedge block, a fourth spring, an annular chamber opened in the annular hollow block, and a receiving chamber opened in the movable block; the annular electrode plate is fixedly connected to the annular chamber; the receiving chamber communicates with the annular chamber; the second cylinder is fixedly connected to the annular chamber; the moving block and the third wedge block are both slidably connected to the receiving chamber, and the moving block is fixedly connected to the output shaft of the second cylinder; the second wedge block is fixedly connected to the moving block; the third wedge block is located on the movement track of the second wedge block, and the long rod is located on the movement track of the third wedge block; the two ends of the fourth spring are respectively connected to the third wedge block and the receiving chamber; the detection box communicates with the annular chamber; the stop component includes a rotating shaft, a second gear, an inner block, a third rack, and a third electrode plate; the rotating shaft is rotatably connected to the detection box; the second gear is fixedly connected to the rotating shaft; the inner block is fixedly connected to the detection box; the third rack is slidably connected to the inner block; the guide block is a fourth rack; the second gear meshes with the third rack and the fourth rack respectively; the third electrode plate is fixedly connected to the third rack, and the annular electrode plate is located on the movement track of the third electrode plate; the annular electrode plate, the third electrode plate, the second cylinder, and the power supply are connected by wires to form a series circuit.

5. The folium isatidis processing device according to claim 4, wherein: It further includes a warning part; the warning part includes a fourth electrode plate, a fifth electrode plate, and an alarm; the fourth electrode plate is fixedly connected to the moving block; the fifth electrode plate is fixedly connected to the receiving chamber, and the fifth electrode plate is located on the movement track of the fourth electrode plate; the alarm is fixedly connected to the movable block; the fourth electrode plate, the fifth electrode plate, the alarm, and the power supply are connected by wires to form a series circuit.

6. The large - leaf indigo processing device according to claim 5, characterized in that: The detection box is provided with a positioning part; the positioning part includes a short rod, a positioning block, and a top hole opened in the detection box; the short rod is fixedly connected to the third rack, and the short rod is slidably connected to the top hole; the positioning block is fixedly connected to the short rod, and two adjacent positioning blocks are in contact with each other; it further includes an auxiliary part; the auxiliary part includes a motor, an auxiliary shaft, a third gear, an annular rack, a connecting block, a telescopic rod, an inserting block, a sixth electrode plate, and an annular hole opened in the annular hollow block; the motor is fixedly connected to the movable block; the auxiliary shaft is rotatably connected to the movable block, and the auxiliary shaft is fixedly connected to the output shaft of the motor; the third gear is fixedly connected to the auxiliary shaft; the annular rack is slidably connected to the annular hole, and the third gear meshes with the annular rack; the connecting block is fixedly connected to the annular rack; the telescopic rod is fixedly connected to the connecting block; the inserting block is fixedly connected to the telescopic rod, and the inserting block abuts against the positioning block; the sixth electrode plate is fixedly connected to the receiving chamber, and the sixth electrode plate is located on the movement track of the fourth electrode plate; the fourth electrode plate, the sixth electrode plate, the motor, and the power supply are connected by wires to form a series circuit.

7. The large - leaf isatis root processing device according to claim 6, wherein: It further includes a prompting part; the prompting part includes a cam and a copper disk; the cam is fixedly connected to the auxiliary shaft; the copper disk is fixedly connected to the movable block, and the copper disk is located on the movement track of the cam.

8. The processing device for folium isatidis according to claim 7, wherein: The alarm component includes a seventh electrode plate, an eighth electrode plate, and a warning light; the seventh electrode plate is fixedly connected to the concave block; the eighth electrode plate is fixedly connected to the cylinder body, and the eighth electrode plate is located on the movement track of the seventh electrode plate; the warning light is fixedly connected to the receiving box; the seventh electrode plate, the eighth electrode plate, the warning light, and the power supply are connected by wires to form a series circuit.

9. A method for processing Isatidis Folium according to claim 8, characterized in that: It includes the following steps: Step (1): Trigger the warning light to be powered on by the gravity of the overflowing liquid; Step (2): Perform preliminary filling treatment on the damaged notch through the vertical movement of the filling block; Step (3): Cut off the power supply of the first cylinder through the reciprocating movement of the third wedge block, thereby stopping the filling block; Step (4): Trigger the power-on of the alarm through the movement of the moving block; Step (5): Determine the location of the break through the circumferential movement of the insertion block.