A drying device capable of quickly drying white peony root
By using a horizontal air duct and a flip-over design, the problem of moisture absorption in the upper layer of white peony caused by hot air flowing from bottom to top is solved, achieving a fast and uniform drying effect.
Patent Information
- Application Number
- CN202510180853.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-19
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2045-02-19
AI Technical Summary
In existing drying equipment, hot air flows from bottom to top, causing the upper layer of white peony to become damp, which affects drying efficiency and time.
The design incorporates air supply and exhaust ducts to ensure horizontal airflow. Combined with the flap and material carrier plate structure, it ensures uniform airflow distribution and avoids moisture residue. The flap rotation enables multi-angle drying.
This improves the drying efficiency of white peony, prevents the upper layer from getting damp, shortens the drying time, and ensures the drying effect.
Smart Images

Figure CN119958236B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of drying technology, and in particular relates to a drying device that can quickly dry white peony root. Background Technology
[0002] White peony is a commonly used Chinese medicinal herb. Chinese medicinal herbs generally need to be dried for preservation to prevent them from rotting. When processing white peony, it is usually sliced first and then dried in the sun. Since sun drying is slow, baking is now the most common method for drying.
[0003] The usual drying process involves spreading the white peony leaves flat on a drying mesh, which is then placed in a drying oven. Since hot air flows from bottom to top and the drying mesh is stacked from top to bottom, the water vapor generated when the drying mesh is drying the white peony leaves can easily cause the upper layer of white peony leaves to become damp, thus affecting the drying effect and prolonging the drying time. Summary of the Invention
[0004] The summary section of this application is intended to provide a brief overview of the concepts, which will be described in detail in the detailed description section below. This summary section is not intended to identify key or essential features of the claimed technical solutions, nor is it intended to limit the scope of the claimed technical solutions.
[0005] In order to overcome the shortcomings of the prior art, the present invention provides a drying device that can quickly dry white peony root.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: a drying device capable of rapidly drying white peony root, comprising: a box body configured to have a drying space for drying white peony root; a plurality of material carrier plates disposed within the box body for placing the white peony root to be dried; the plurality of material carrier plates are arranged longitudinally within the box body; the drying device further comprises: an air supply pipe disposed on one side of the box body; an air outlet pipe disposed on the other side of the box body; the air supply pipe and the air outlet pipe are respectively located at both ends of the material carrier plates, and an air outlet communicating with the air outlet pipe is provided on the side wall of the box body, wherein the flow direction of hot air from the air supply pipe to the air outlet is parallel to the plane on which the material carrier plates are located.
[0007] Furthermore, the drying device capable of quickly drying white peony also includes: a flip plate, which is set on a carrier plate; a push rod, which pushes the flip plate to rotate on the carrier plate; the carrier plate is provided with a groove, one end of the flip plate is rotatably connected to the inner wall of the groove, and the push rod passes through the groove.
[0008] Furthermore, the drying device capable of quickly drying white peony also includes: a connecting block, located inside the box; a connecting shaft assembly, located on the connecting block; and a material carrier plate rotatably connected to the connecting shaft assembly at one end.
[0009] Furthermore, the connecting shaft assembly includes a first connecting shaft and a second connecting shaft. The first connecting shaft is provided with a first connecting part, and the second connecting shaft is provided with a second connecting part. Both the first connecting part and the second connecting part are cylindrical structures. The diameter of the first connecting part is smaller than the diameter of the first connecting shaft, and the diameter of the second connecting part is smaller than the diameter of the second connecting shaft. The second connecting part is provided with a first connecting rod, and the first connecting part is provided with a first connecting groove. The first connecting rod is threaded into the first connecting groove.
[0010] Furthermore, the material carrier plate is provided with a second connecting groove corresponding to the first connecting shaft, a second connecting rod is provided in the second connecting groove, and a connecting ring is provided on the second connecting rod. The connecting ring is sleeved on the first connecting part. When the first connecting shaft and the second connecting shaft are connected, one end of the connecting ring abuts against the end face of the first connecting part, and the other end abuts against the end face of the second connecting part.
[0011] Furthermore, the material carrier plate is provided with a first baffle and a second baffle, which are connected end to end on the material carrier plate to form a material carrying area. The first baffle is directly opposite the air supply pipe and is provided with multiple first through holes. The flip plate is provided with a third baffle, which is directly opposite the first baffle. The third baffle is provided with multiple second through holes and the flip plate is provided with multiple third through holes.
[0012] Furthermore, a pad is provided at the bottom of the groove, a first electromagnet is provided on the pad, and a magnetic block is provided on the flip plate; a push plate is rotatably connected to the top of the push rod, and the push plate is located in the groove.
[0013] Furthermore, the bottom end of the push rod is provided with a movable ring, which has an elliptical structure; a third connecting rod is connected to the inner wall of the box, and a first support block is provided on the third connecting rod, which passes through the movable ring; a guide block is provided on the inner wall of the movable ring, and a guide groove is provided on the first support block, which is inserted into the guide groove; a first support spring is provided on the guide block, which abuts against the bottom surface of the guide groove.
[0014] Furthermore, a drive shaft is installed inside the housing, and a cam is provided at one end of the drive shaft. The cam is installed inside the movable ring; the cam and the movable ring are coaxially arranged.
[0015] Furthermore, the bottom of the flap is provided with a first movable groove, the first movable groove is provided with a movable plate, the movable plate is provided with multiple fourth baffles, the flap is provided with a through groove corresponding to the fourth baffles, and the fourth baffles are inserted into the through grooves; the push plate abuts against the bottom of the movable plate; multiple protrusions are provided on the inner wall of the movable ring.
[0016] The advantage of this invention is that it provides a drying device that can quickly dry white peony leaves without causing the upper layer of white peony leaves to become damp. Attached Figure Description
[0017] The accompanying drawings, which form part of this application, are used to provide a further understanding of the application and to make other features, objects, and advantages of the application more apparent. The illustrative embodiments and descriptions of this application are used to explain the application and do not constitute an undue limitation of the application.
[0018] Furthermore, throughout the accompanying drawings, the same or similar reference numerals denote the same or similar elements. It should be understood that the drawings are schematic, and the elements are not necessarily drawn to scale.
[0019] In the attached diagram:
[0020] Figure 1 This is a schematic diagram of the structure of a drying device capable of rapidly drying white peony root according to one embodiment of the present invention.
[0021] Figure 2 for Figure 1 A cross-sectional view of the drying apparatus for rapidly drying white peony root in the illustrated embodiment.
[0022] Figure 3 for Figure 2 Enlarged view of point A in the image.
[0023] Figure 4 for Figure 2 Enlarged view of point B in the image.
[0024] Figure 5 for Figure 1 A cross-sectional view of the connecting shaft assembly of the drying apparatus capable of rapidly drying white peony root in the illustrated embodiment.
[0025] Figure 6 for Figure 5 Enlarged view of point C in the image.
[0026] Figure 7 for Figure 1 A cross-sectional view of the moving ring of the drying apparatus capable of rapidly drying white peony root in the illustrated embodiment.
[0027] Figure 8 for Figure 7 Enlarged view of point D in the image.
[0028] Figure 9 for Figure 7 Enlarged view of point E in the image.
[0029] The meanings of the reference numerals in the figure are as follows:
[0030] 101. Housing; 1011. Air outlet; 1012. Material inlet; 102. Conveying pipe; 1021. Second guide surface; 103. Second connecting box; 104. Air outlet pipe; 105. Side plate; 106. Handle; 107. Exhaust fan; 108. Carrying plate; 1081. First baffle; 1082. Second baffle; 1083. Material outlet; 109. Flip plate; 1091. Third baffle; 110. First branch pipe; 111. Second branch pipe; 1111. First guide surface; 112. Mounting plate; 113. Guide plate; 114. Air inlet pipe; 115. Fifth baffle; 1151. End plate; 116. Return spring; 117. Second electromagnet; 118. Connecting block; 119. First connecting shaft; 1191. First slider; 1192. 120. First connecting part; 121. Connecting ring; 122. Second connecting rod; 123. Movable plate; 124. Fourth baffle; 125. Push plate; 126. Push rod; 127. Movable ring; 128. Protrusion; 129. Cam; 130. Second support block; 121. Support rod; 121. Support plate; 132. Second support spring; 133. First connecting box; 134. Second connecting shaft; 135. Second connecting part; 136. First connecting rod; 137. Guide block; 138. First support spring; 139. Transmission belt; 140. First transmission wheel; 141. Motor; 142. Second transmission wheel; 143. Pad. Detailed Implementation
[0031] Embodiments of this disclosure will now be described in more detail with reference to the accompanying drawings. While some embodiments of this disclosure are shown in the drawings, it should be understood that this disclosure can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of this disclosure. It should be understood that the accompanying drawings and embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of protection of this disclosure.
[0032] It should also be noted that, for ease of description, only the parts relevant to the invention are shown in the accompanying drawings. Unless otherwise specified, the embodiments and features described in this disclosure can be combined with each other.
[0033] It should be noted that the concepts of "first" and "second" mentioned in this disclosure are used only to distinguish different devices, modules or units, and are not used to limit the order of functions performed by these devices, modules or units or their interdependencies.
[0034] It should be noted that the terms "a" and "a plurality of" used in this disclosure are illustrative rather than restrictive, and those skilled in the art should understand that, unless otherwise expressly indicated in the context, they should be understood as "one or more".
[0035] The names of messages or information exchanged between multiple devices in the embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of such messages or information.
[0036] This disclosure will now be described in detail with reference to the accompanying drawings and embodiments.
[0037] like Figure 1-9 As shown, a drying device for rapidly drying white peony root includes a housing 101, several material carrier plates 108, an air supply pipe, and an air outlet pipe 104. The housing 101 is configured to have a drying space for drying white peony root. The material carrier plates 108 are disposed inside the housing 101 for placing the white peony root to be dried, and the several material carrier plates 108 are arranged longitudinally inside the housing 101. The air supply pipe is disposed on one side of the housing 101, and the air outlet pipe 104 is disposed on the other side of the housing 101. The air supply pipe and the air outlet pipe 104 are located at opposite ends of the material carrier plates 108, and the side wall of the housing 101 is provided with an air outlet 1011 communicating with the air outlet pipe 104. The flow direction of hot air from the air supply pipe to the air outlet 1011 is parallel to the plane where the material carrier plates 108 are located. The outer wall of the housing 101 is made of heat insulation material to reduce heat loss and improve energy utilization efficiency. The air supply duct is connected to a heat source device, such as a hot air furnace or electric heating wire, to provide a continuous and stable supply of hot air. The air outlet duct 104 is connected to the exhaust system to expel moisture from the enclosure 101 and maintain the dryness of the dry space.
[0038] By utilizing the air supply and exhaust pipes 104, the airflow within the chamber 101 is horizontal. The moisture from the dried white peony leaves flows out through the exhaust pipes 104 under the influence of the hot airflow, preventing moisture residue from remaining in the chamber 101 and affecting the drying effect of the white peony. Each carrier plate 108 is plate-shaped and has no perforations, allowing the white peony on each carrier plate 108 to be dried independently. This further prevents moisture from the lower layer from affecting the upper layer of white peony, shortens the drying time, and ensures the drying effect of the white peony.
[0039] A first connecting box 131 is provided on the side wall of the housing 101. An air inlet pipe 114 is connected to the first connecting box 131. A connection port is provided on the side wall of the first connecting box 131, which is connected to a hot air pipe. Through the first connecting box 131, hot air can be evenly distributed within each air inlet pipe 114 to dry the white peony on the carrier plate 108. A second connecting box 103 is provided on the other side wall of the housing 101. The second connecting box 103 is connected to an air outlet 1011. An air outlet pipe 104 is connected to the side wall of the second connecting box 103. An exhaust fan is installed inside the air duct 104. When the white peony is being dried, the exhaust fan operates at the air outlet 1011 to generate an outward airflow, which in turn generates an airflow inside the box 101 that flows towards the air outlet 1011, drawing out the moisture generated inside the box 101. At the same time, because there is an airflow generated inside the box 101, the hot air entering the box 101 from the air inlet pipe flows along with the airflow, ensuring that the airflow passes over the entire material carrier plate 108 to dry all the white peony on the material carrier plate 108, thus ensuring the drying effect of the white peony.
[0040] The material carrier plate 108 is provided with a groove, and a flap 109 is provided in the groove. One end of the flap 109 is rotatably connected to the inner wall of the groove. A push rod 124 is passed through the groove and push rod 124 pushes the flap 109 to rotate. A connecting block 118 is provided in the box 101. A connecting shaft assembly is provided on the connecting block 118. One end of the material carrier plate 108 is rotatably connected to the connecting shaft assembly.
[0041] Specifically, the connecting shaft assembly includes a first connecting shaft 119 and a second connecting shaft 132. The first connecting shaft 119 has a first connecting portion 1192, and the second connecting shaft 132 has a second connecting portion 1321. Both the first connecting portion 1192 and the second connecting portion 1321 are cylindrical structures. The diameter of the first connecting portion 1192 is smaller than the diameter of the first connecting shaft 119, and the diameter of the second connecting portion 1321 is smaller than the diameter of the second connecting shaft 132. The diameters of the first connecting portion 1192 and the second connecting portion 1321 are the same. The second connecting portion 1321 has a first connecting rod 1322, and the first connecting portion 1192 has a first connecting groove. The first connecting rod 1322 is threaded into the first connecting groove. The first connecting shaft 119 has a first slider 1191, and the second connecting shaft 132 has a second slider. The connecting block 118 has a groove for the first slider 1191 and the second slider to move.
[0042] The material carrier plate 108 is provided with a second connecting groove corresponding to the first connecting shaft 119. A second connecting rod 121 is provided in the second connecting groove, and a connecting ring 120 is provided on the second connecting rod 121. The connecting ring 120 is sleeved on the first connecting part 1192. When the first connecting shaft 119 and the second connecting shaft 132 are connected, one end of the connecting ring 120 abuts against the end face of the first connecting part 1192, and the other end abuts against the end face of the second connecting part 1321. The first connecting shaft 119 and the second connecting shaft 132 position the connecting ring 120 to connect the connecting ring 120 to the designated position. The cooperation between the connecting ring 120 and the connecting part allows one end of the material carrier plate 108 to be rotatably connected to the connecting shaft assembly.
[0043] The material carrier plate 108 is provided with a first baffle 1081 and a second baffle 1082. The first baffle 1081 and the second baffle 1082 are connected end to end on the material carrier plate 108 to form a material carrying area. The first baffle 1081 is directly opposite the air supply pipe and is provided with multiple first through holes. The flip plate 109 is provided with a third baffle 1091. The third baffle 1091 is directly opposite the first baffle 1081 and is provided with multiple second through holes. The flip plate 109 is provided with multiple third through holes. The arrangement of the first through holes, second through holes and third through holes allows hot air to pass directly through the first baffle 1081, the third baffle 1091 and the flip plate 109, ensuring the formation of airflow inside the box 101.
[0044] A pad 143 is provided at the bottom of the groove, and a first electromagnet is provided on the pad 143. A magnetic block is provided on the flip plate 109. When the flip plate 109 is in a horizontal state, the magnetic block is above the first electromagnet. A push plate 123 is rotatably connected to the top of the push rod 124, and the push plate 123 is located in the groove.
[0045] A second support block 127 is provided on the inner wall of the housing 101. The second support block 127 is located below the material carrier plate 108. The second support block 127 and the connecting shaft assembly are located at both ends of the material carrier plate 108, respectively. A second movable groove is provided on the second support block 127. A support rod 128 is provided in the second movable groove. A support plate 129 is rotatably connected to the top of the support rod 128. A second support spring 130 is provided at the bottom of the support rod 128. The second support spring 130 abuts against the bottom surface of the second movable groove. The support plate 129 abuts against the bottom surface of the material carrier plate 108.
[0046] The bottom end of the push rod 124 is provided with a movable ring 125, which has an elliptical structure; a third connecting rod 135 is connected to the inner wall of the housing 101, and a first support block 136 is provided on the third connecting rod 135, which passes through the movable ring 125; a guide block 137 is provided on the inner wall of the movable ring 125, and a guide groove is provided on the first support block 136, which is inserted into the guide groove; a first support spring 138 is provided on the guide block 137, which abuts against the bottom surface of the guide groove.
[0047] A drive shaft 134 is installed inside the housing 101. A cam 126 is provided at one end of the drive shaft 134 and is installed inside the movable ring 125. The cam 126 and the movable ring 125 are coaxially arranged. A first movable groove is provided at the bottom of the flip plate 109. A movable plate 122 is provided in the first movable groove. A plurality of fourth baffles 1221 are provided on the movable plate 122. A through groove corresponding to the fourth baffles 1221 is provided on the flip plate 109. The fourth baffles 1221 are inserted into the through groove. A push plate 123 abuts against the bottom of the movable plate 122. A plurality of protrusions 1251 are provided on the inner wall of the movable ring 125.
[0048] The bottom of the material carrier plate 108 is provided with a discharge port 1083 and an installation groove. The discharge port 1083 and the installation groove are connected. A fifth baffle 115 is provided in the installation groove. The fifth baffle 115 is slidably connected in the installation groove and abuts against the discharge port 1083 to close the discharge port 1083. One end of the fifth baffle 115 is provided with an end plate 1151. The end plate 1151 is made of ferromagnetic material and a return spring 116 is provided on the end plate 1151. The return spring 116 abuts against the inner wall of the installation groove. A second electromagnet 117 is provided on the inner wall of the installation groove.
[0049] The housing 101 contains a conveying pipe 102, located on the side of the air inlet pipe. The top of the conveying pipe 102 extends from the top of the housing 101. The conveying pipe 102 has a first branch pipe 110 and a second branch pipe 111. The first branch pipe 110 is above the material carrier plate 108, and the second branch pipe 111 is below the material carrier plate 108. The first branch pipe 110 is inclined, and the second branch pipe 111 has a feed inlet. The bottom surface of the second branch pipe 111 has a first guide surface 1111, which is inclined towards the direction of the conveying pipe 102. The housing 101 has a receiving port 1012 on its side wall, and the side wall of the conveying pipe 102 has a receiving port. The feed inlet 1012 has an opening, and the bottom of the feed pipe 102 is provided with a second guide surface 1021, which is inclined to the direction of the receiving inlet 1012. The side wall of the feed pipe 102 is provided with a mounting plate 112, and the mounting plate 112 is provided with a third movable groove that communicates with the feed pipe 102. The third movable groove is provided with a guide plate 113, which is inclined and the inclination direction of the guide plate 113 is the same as that of the first branch pipe 110. The mounting plate 112 is located on one side of the first branch pipe 110. The guide plate 113 can move in the third movable groove, and the principle of the movement of the guide plate 113 is the same as the movement principle of the electric door in the prior art.
[0050] The side wall of the housing 101 is also provided with an inspection port corresponding to the material carrier plate 108. The material carrier plate 108 is provided with a side plate 105, the cross section of which corresponds to the cross section of the inspection port. The side wall of the side plate 105 is provided with a handle 106. The material carrier plate 108 can be pulled out directly from the inspection port using the handle 106 for maintenance. The material carrier plate 108 can be easily positioned by the cooperation of the first slider 1191, the second slider and the slide groove, while reducing the assembly difficulty of the material carrier plate 108 and realizing the quick assembly and disassembly of the material carrier plate 108.
[0051] A first drive wheel 140 is provided on one end of the drive shaft 134 outside the housing 101. A mounting box is provided on the side wall of the housing 101. The first drive wheel 140 is located inside the mounting box. The first drive wheels 140 of all the drive shafts 134 on the housing 101 are connected by a drive belt 139. A motor 141 is provided inside the mounting box. A second drive wheel 142 is provided on the output shaft of the motor 141. The second drive wheel 142 contacts the drive belt 139 and is connected to it.
[0052] When drying white peony root, the white peony root to be dried is added into the conveying pipe 102 from the top. At this time, all the guide plates 113 are inside the conveying pipe 102, with one end of the guide plate 113 abutting against the inner wall of the conveying pipe 102, forming an inclined surface in the conveying pipe 102 towards the first branch pipe 110. The white peony root added into the conveying pipe 102 falls onto the guide plate 113 and then falls out of the first branch pipe 110 along the guide plate 113. After falling out of the first branch pipe 110, the white peony root falls directly onto the loading plate 108. When the topmost loading plate 108 is loaded with... After a certain amount of white peony is added, the guide plate 113 at the top, which is lower than the side of the branch pipe, enters the third movable groove. The white peony added to the conveying pipe 102 continues to fall onto the second guide plate 113, and is then loaded onto the second carrier plate 108. After adding white peony to all the carrier plates 108 in the above manner, the addition of white peony to the conveying pipe 102 is stopped. The motor 141 drives the cam 126 to rotate, and hot air enters the box 101 through the air inlet pipe 114. The exhaust fan works inside the box 101 to form an airflow that discharges water vapor from the box 101.
[0053] When the flange of cam 126 rotates downward, push plate 123 abuts against the bottom surface of the groove. Cam 126 pushes movable ring 125 downward, push plate 123 pushes one end of carrier plate 108 to move, guide block 137 compresses first support spring 138, and carrier plate 108 compresses second support spring 130, causing carrier plate 108 to rotate around connecting shaft assembly to form an inclined surface. The white peony originally added to carrier plate 108 through first branch pipe 110 and located at one end of carrier plate 108 moves towards flip plate 109. Sliding, the white peony on the carrier plate 108 moves to the flip plate 109; when the flange of the cam 126 rotates upward, the cam 126 pushes the movable ring 125 upward, the push plate 123 abuts against the movable plate 122 and pushes the movable plate 122 upward, the fourth baffle 1221 rises from the through groove, the fourth baffle 1221 protrudes from the surface of the flip plate 109, the push plate 123 continues to move upward, the movable plate 122 abuts against the bottom surface of the first movable groove and pushes the flip plate 109 to flip upward, the flip plate 109 flips into shape. The sloping surface facing one end of the loading plate 108 prevents the white peony on the flap 109 from falling directly off the flap 109 due to the fourth baffle 1221. As the cam 126 continues to rotate, it engages with the protrusion 1251 on the inner wall of the movable ring 125. The cooperation between the protrusion 1251 and the cam 126 causes the movable ring 125 to vibrate up and down. The push rod 124 transmits the vibration to the flap 109, and the white peony on the flap 109 flips over the fourth baffle 1221 under the action of vibration. The peony leaves roll onto the carrier plate 108 from 09, which rearranges and reverses the peony leaves, allowing them to come into more even contact with the hot air and ensuring the drying effect. The flip plate 109 and the carrier plate 108 are intermittently flipped by the rotation of the cam 126, constantly rearranging the position of the peony leaves. At the same time, when the peony leaves are on the raised flip plate 109, the hot air directly impacts the peony leaves, allowing the hot air to come into contact with the peony leaves in more ways and to dry the peony leaves from multiple angles, thus completing the drying process of the peony leaves.
[0054] After the white peony is dried, the first and second electromagnets 117 are energized, and the flap 109 is attracted to the pad 143. The second electromagnet 117 attracts the fifth baffle 115 to move and open the discharge port 1083. When the push rod 124 moves upward and pushes the flap 109, the flap 109 drives the entire material plate 108 to flip in the direction of the conveying pipe 102 to form an inclined surface. The white peony on the material plate 108 falls from the discharge port 1083 into the second branch pipe 111. Under the guidance of the first guide surface 1111 and the second guide surface 1021, the dried white peony is discharged from the receiving port 1012 to facilitate the collection of the dried white peony.
[0055] The above description is merely a selection of preferred embodiments of this disclosure and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of the invention involved in the embodiments of this disclosure is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the above-described inventive concept. For example, technical solutions formed by substituting the above-described features with (but not limited to) technical features with similar functions disclosed in the embodiments of this disclosure.
Claims
1. A drying device capable of rapidly drying white peony root, comprising: The box is constructed to have a drying space for drying white peony root; Several material carrier plates are provided inside the box for placing the white peony to be dried; Several of the aforementioned material carrier plates are arranged longitudinally within the box body; Its characteristics are: The drying device further includes: An air supply duct is located on one side of the housing; An air outlet duct is located on the other side of the enclosure; The air supply pipe and the air outlet pipe are located at opposite ends of the material carrier plate. The side wall of the box is provided with an air outlet that communicates with the air outlet pipe. The flow direction of hot air from the air supply pipe to the air outlet is parallel to the plane on which the material carrier plate is located. Also includes: A flip plate is provided on the material carrier plate; The push rod pushes the flap to rotate on the material carrier plate; The material carrier plate is provided with a groove, one end of the flip plate is rotatably connected to the inner wall of the groove, and the push rod passes through the groove; The connecting block is located inside the box. A connecting shaft assembly is disposed on the connecting block; One end of the carrier plate is rotatably connected to the connecting shaft assembly; A pad is provided at the bottom of the groove, a first electromagnet is provided on the pad, and a magnetic block is provided on the flip plate; a push plate is rotatably connected to the top of the push rod, and the push plate is located in the groove; The push rod has a movable ring at its bottom end, and the movable ring has an elliptical structure; a third connecting rod is connected to the inner wall of the box, and a first support block is provided on the third connecting rod, which passes through the movable ring; a guide block is provided on the inner wall of the movable ring, and a guide groove is provided on the first support block, which is inserted into the guide groove; a first support spring is provided on the guide block, and the first support spring abuts against the bottom surface of the guide groove. A drive shaft is installed inside the housing, and a cam is provided at one end of the drive shaft. The cam is installed inside the movable ring; the cam and the movable ring are coaxially arranged. The bottom of the flip plate is provided with a first movable groove, the first movable groove is provided with a movable plate, the movable plate is provided with a plurality of fourth baffles, the flip plate is provided with a through groove corresponding to the fourth baffles, the fourth baffles are inserted into the through grooves; the push plate abuts against the bottom of the movable plate; the inner wall of the movable ring is provided with a plurality of protrusions.
2. The drying apparatus for rapidly drying white peony root according to claim 1, characterized in that: The connecting shaft assembly includes a first connecting shaft and a second connecting shaft. The first connecting shaft has a first connecting portion, and the second connecting shaft has a second connecting portion. Both the first connecting portion and the second connecting portion are cylindrical structures. The diameter of the first connecting portion is smaller than the diameter of the first connecting shaft, and the diameter of the second connecting portion is smaller than the diameter of the second connecting shaft. The second connecting portion has a first connecting rod, and the first connecting portion has a first connecting groove. The first connecting rod is threaded into the first connecting groove.
3. The drying apparatus for rapidly drying white peony root according to claim 2, characterized in that: The material carrier plate is provided with a second connecting groove corresponding to the first connecting shaft. A second connecting rod is provided in the second connecting groove. A connecting ring is provided on the second connecting rod. The connecting ring is sleeved on the first connecting part. When the first connecting shaft and the second connecting shaft are connected, one end of the connecting ring abuts against the end face of the first connecting part, and the other end abuts against the end face of the second connecting part.
4. The drying apparatus for rapidly drying white peony root according to claim 1, characterized in that: The material carrier plate is provided with a first baffle and a second baffle. The first baffle and the second baffle are connected end to end on the material carrier plate to form a material carrying area. The first baffle is directly opposite the air supply pipe and is provided with a plurality of first through holes. The flip plate is provided with a third baffle. The third baffle is directly opposite the first baffle and is provided with a plurality of second through holes. The flip plate is provided with a plurality of third through holes.
Citation Information
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