A drying equipment for rosewood furniture
Patent Information
- Application Number
- CN202310045896.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-01-30
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2043-01-30
AI Technical Summary
[0005]本发明的目的在于提供一种红木家具干燥设备,以解决上述烘干设备舱门打开进料、出料过程中导致热量损失的技术问题
将干燥箱由下到上依次分隔为烘干腔、导流腔、储能腔,通过导流腔内连接的导流扇转移气流,在干燥完成准备排料时,能够将干燥腔内热空气转移到存储腔内,在另一批物料进入后再将储能腔中的热空气转移回来,从而实现热能的充分利用;
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Figure CN116123832B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of rosewood furniture processing, and more particularly to a rosewood furniture drying device. Background Technology
[0002] Rosewood furniture is popular among consumers for its elegant appearance and durable quality. The processing of rosewood furniture includes steps such as material selection and degreasing, tenoning, carving, cleaning, drying, and assembly. Drying is the process of quickly removing moisture from the wood to prepare it for the next step of processing. To accelerate the drying rate, existing technologies often use drying equipment to assist in drying.
[0003] For example, the application document with patent number CN107553678B discloses a processing technology for mahogany furniture, which specifically discloses that the board is placed in a microwave belt drying kiln until the board is dried to a moisture content of 8%-12%, and the temperature of the drying kiln is controlled at 30-60 degrees. The patent application document with patent number CN107478051B discloses a new type of drying equipment for processing rosewood furniture. It can make full use of hot air to achieve rapid and efficient drying of rosewood, saving energy, reducing energy waste by not continuously heating, and is simple to operate, convenient to use, and provides uniform and efficient drying, which can well meet the needs of rosewood drying.
[0004] However, due to the limited capacity of the drying equipment, while the processing of wood is continuous, the wood is added to the drying equipment in batches, which means that the door of the drying equipment needs to be opened after each drying process, resulting in heat loss. Summary of the Invention
[0005] The purpose of this invention is to provide a drying device for mahogany furniture to solve the technical problem of heat loss caused by the opening of the door of the above-mentioned drying device during the feeding and discharging process.
[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: A drying device for rosewood furniture includes a drying chamber, which comprises a drying cavity, a guide cavity, and an energy storage cavity from bottom to top. A guide sleeve is installed inside the guide cavity, and a guide cylinder is rotatably connected inside the guide sleeve. A guide fan is rotatably connected inside the guide cylinder. The guide fan is driven by a transmission mechanism and a drive component. The guide fan is connected to a steering mechanism. A conveyor frame is installed at the bottom of the drying cavity. An inlet and an outlet are respectively provided at both ends of the drying cavity, and sealing plates are connected to the inlet and outlet.
[0007] Preferably, the guide sleeve is spherical, and the side of the guide sleeve is provided with a rectangular array of through holes. The guide cylinder is inside the guide sleeve, and the outer side of the guide cylinder is in contact with the inner side of the guide sleeve.
[0008] Preferably, the guide tube is fixedly connected to the sleeve rod, and a transmission shaft is rotatably connected inside the sleeve rod. The end of the transmission shaft is coaxially fixedly connected to the output shaft of the drive motor. A drive bevel gear is coaxially fixedly connected to the transmission shaft. The drive bevel gear meshes with the transmission bevel gear, and the transmission bevel gear is coaxially fixedly connected to the fan shaft of the guide fan.
[0009] Preferably, there are multiple guide sleeves arranged in a linear array along the width of the guide cavity. Adjacent guide sleeves are connected by a sleeve, which passes through the guide sleeve and is rotatably connected to it. The end sleeve is coaxially and fixedly connected to the output shaft of the directional motor.
[0010] Preferably, the directional motor is fixed to the side of the drying chamber, and the output shaft of the directional motor is fixedly connected to a ratchet gear, which engages unidirectionally with a pawl rotatably connected to the side of the drying chamber.
[0011] Preferably, the conveyor frame includes a support frame fixed to the bottom of the drying chamber, and multiple conveying rollers are rotatably connected to the support frame, with the conveying rollers arranged in a linear array along the length of the support frame.
[0012] Preferably, the drying box is provided with guide frames at both ends, and multiple guide rollers are connected to the guide frames.
[0013] Preferably, the sealing plate is connected to the end of the drying chamber via a sealing mechanism. The sealing mechanism includes a limiting plate fixed to the end of the drying chamber, a pressure cylinder fixedly connected to the outside of the limiting plate, a pressure rod slidably connected inside the pressure cylinder, the end of the pressure rod sliding relative to the groove on the outside of the sealing plate, and the side of the sealing plate being driven by a lifting motor.
[0014] Preferably, a rack is connected to the side of the sealing plate, and the rack meshes with a lifting gear that is coaxially and fixedly connected to the output shaft of the lifting motor. The lifting motor is fixed to the end of the drying box.
[0015] Preferably, an exhaust port is provided at the top of the energy storage cavity, and an isolation component is connected inside the energy storage cavity.
[0016] The beneficial effects of this invention are: The drying chamber is divided into a drying chamber, a flow guiding chamber, and an energy storage chamber from bottom to top. The airflow is transferred by the flow guiding fan connected in the flow guiding chamber. When drying is completed and the material is ready to be discharged, the hot air in the drying chamber can be transferred to the storage chamber. After another batch of material enters, the hot air in the energy storage chamber is transferred back, thereby realizing the full utilization of thermal energy. The system is designed with an open guide sleeve that is rotatably connected to a guide cylinder, and a guide fan connected inside the guide cylinder. The rotation of the guide cylinder relative to the guide sleeve allows the drying chamber and the energy storage chamber to be connected or closed. When the drying and energy storage chambers are closed, the guide fan is located inside the guide cavity. The rotation of the guide fan allows the airflow inside the drying chamber to circulate between the drying chamber and the guide cavity, thereby controlling the gas flow rate and accelerating the drying process. The transmission mechanism uses a sleeve rod to connect the shaft rod, so that the shaft rod can maintain stable transmission with the guide fan even after it is flipped. The drying chamber is connected to a conveyor frame, and guide frames are connected to both ends to facilitate loading or unloading. The inlet and outlet of the conveyor frame are connected to sealing plates to ensure the airtightness of the drying chamber. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a cross-sectional view of the drying oven of the present invention; Figure 3 This is a schematic diagram of the flow guide sleeve of the present invention; Figure 4 This is a longitudinal sectional view of the flow guide sleeve and flow guide cylinder of the present invention; Figure 5 This is a schematic diagram of the structure of the airflow guide fan of the present invention; Figure 6 This is a partial structural schematic diagram of the sealing plate of the present invention; Figure 7 This is a cross-sectional view of the energy storage cavity of the present invention; Reference numerals: 1. Drying oven; 11. Sealing plate; 111. Slide groove; 112. Pressure cylinder; 113. Rack; 12. Limiting plate; 13. Drying chamber; 14. Guide chamber; 15. Energy storage chamber; 151. Isolator; 152. Exhaust port; 2. Guide frame; 21. Guide roller; 3. Directional motor; 31. Ratchet; 32. Pawl; 4. Lifting motor; 41. Lifting gear; 5. Conveyor frame; 51. Support frame; 52. Conveyor roller; 6. Guide sleeve; 61. Guide cylinder; 62. Sleeve rod; 63. Guide fan; 631. Transmission bevel gear; 632. Drive bevel gear; 64. Fan frame; 65. Transmission shaft; 66. Drive motor. Detailed Implementation
[0018] Specific embodiments of the present invention are described below with reference to the accompanying drawings. Example 1
[0019] like Figure 1-7As shown, a rosewood furniture drying device includes a drying chamber 1. The drying chamber 1 comprises, from bottom to top, a drying cavity 13, a flow guiding cavity 14, and an energy storage cavity 15. A flow guiding sleeve 6 is installed inside the flow guiding cavity 14. A flow guiding cylinder 61 is rotatably connected inside the flow guiding sleeve 6. A flow guiding fan 63 is rotatably connected inside the flow guiding cylinder 61. The flow guiding fan 63 is connected to a driving component via a transmission mechanism and is also connected to a steering mechanism. A conveyor frame 5 is installed at the bottom of the drying cavity 13. An inlet and an outlet are respectively located at both ends of the drying cavity 13. Sealing plates 11 are connected to the inlet and outlet respectively. The guide sleeve 6 is spherical and has a rectangular array of through holes on its side. The guide cylinder 61 is inside the guide sleeve 6 and the outer side of the guide cylinder 61 is in contact with the inner side of the guide sleeve 6. The conveying frame 5 includes a support frame 51 fixed to the bottom of the drying chamber 13. Multiple conveying rollers 52 are rotatably connected to the support frame 51. The conveying rollers 52 are linearly arrayed along the length of the support frame 51. Guide frames 2 are provided at both ends of the drying box 1. Multiple guide rollers 21 are connected to the guide frames 2.
[0020] During the drying process, the wood is placed on a placement plate, and the placement rack is fed into the drying chamber 13 by the guide rack 2 at the inlet and onto the conveyor rack 5. During this process, the guide roller 21 on the guide rack 2 rotates, and the conveyor roller 52 connected to the support frame 51 rotates, distributing the wood on the conveying mechanism. Then, the sealing plate 11 seals the inlet, connecting the existing heating device to the drying chamber 13 to heat the air inside the drying chamber 13. The drying chamber 13 is also connected to the existing dehydration device to remove the moisture generated during the drying process. During the heating process, the guide tube 61 rotates under the adjustment of the directional mechanism, so that both ends of the guide tube 61 are connected to the two ends of the guide sleeve 6 and the guide chamber 14, respectively. The guide fan 63 connected inside the guide tube 61 rotates, thereby circulating the gas in the drying chamber 13 and the guide chamber 14 to direct the airflow within the sealed space. After drying, to prevent heat loss in the drying chamber 13, the direction of both ends of the guide tube 61 is adjusted by the directional mechanism so that both ends of the guide tube 61 are connected to the upper and lower ends of the guide sleeve 6, respectively. The upper end of the guide sleeve 6 is connected to the energy storage chamber 15, and the lower end of the guide sleeve 6 is connected to the drying chamber 13. The rotation of the guide fan 63 allows the airflow in the drying chamber 13 to flow into the energy storage chamber 15. After the hot airflow enters the energy storage chamber 15, the directional mechanism controls the rotation of the guide tube 61 to block the channel between the energy storage chamber 15 and the guide chamber 14 through the outer wall of the guide tube 61, thus sealing the energy storage chamber 15. At this time, the drying chamber 13 is opened again, the dried wood is taken out from the outlet, and another batch of wood to be dried is sent in. The sealing plate 11 blocks the inlet and outlet of the sealing shaft, and the hot airflow in the energy storage chamber 15 is sent into the drying chamber 13 through the guide tube 61 to make full use of heat energy and reduce energy consumption. Example 2
[0021] like Figure 1-7As shown, a rosewood furniture drying device includes a drying chamber 1. The drying chamber 1 includes, from bottom to top, a drying cavity 13, a guide cavity 14, and an energy storage cavity 15. A guide sleeve 6 is installed inside the guide cavity 14. A guide cylinder 61 is rotatably connected inside the guide sleeve 6. A guide fan 63 is rotatably connected inside the guide cylinder 61. The guide fan 63 is driven by a drive component through a transmission mechanism and is connected to a steering mechanism. A conveyor frame 5 is installed at the bottom of the drying cavity 13. An inlet and an outlet are respectively provided at both ends of the drying cavity 13. Sealing plates are connected to the inlet and outlet respectively. 11. The guide sleeve 6 is spherical, and the side of the guide sleeve 6 is provided with a rectangular array of through holes. The guide cylinder 61 is inside the guide sleeve 6 and the outer side of the guide cylinder 61 is in contact with the inner side of the guide sleeve 6. The guide cylinder 61 is fixedly connected to the sleeve rod 62. The sleeve rod 62 is rotatably connected to the drive shaft 65. The end of the drive shaft 65 is coaxially fixedly connected to the output shaft of the drive motor 66. The drive bevel gear 632 is coaxially fixedly connected to the drive shaft 65. The drive bevel gear 632 meshes with the drive bevel gear 631. The drive bevel gear 631 is coaxially fixedly connected to the fan shaft of the guide fan 63.
[0022] The output shaft of the drive motor 66 is coaxially and fixedly connected to the transmission shaft 65. The transmission shaft 65 passes through the guide tube 61 and is rotatably connected to the guide tube 61. When the drive fan 63 is rotated, the transmission shaft 65 rotates in the sleeve rod 62. The transmission shaft 65 rotates under the drive of the drive motor 66. The drive bevel gear 632, which is coaxially and fixedly connected to the transmission shaft 65, rotates, causing the transmission bevel gear 631, which meshes with the drive shaft gear, to rotate. The transmission bevel gear 631 is coaxially and fixedly connected to the guide fan 63. The guide fan 63 is rotatably connected to the fan frame 64 fixed inside the guide tube 61. That is, the rotation of the transmission shaft 65 can cause the guide fan 63 to rotate inside the guide tube 61 around the axis of the guide fan 63, thereby sending the airflow from one end of the guide tube 61 to the other end to achieve the function of guiding the airflow. Example 3
[0023] like Figure 1-7As shown, a rosewood furniture drying device includes a drying chamber 1. The drying chamber 1 comprises, from bottom to top, a drying cavity 13, a guide cavity 14, and an energy storage cavity 15. A guide sleeve 6 is installed inside the guide cavity 14. A guide cylinder 61 is rotatably connected inside the guide sleeve 6. A guide fan 63 is rotatably connected inside the guide cylinder 61. The guide fan 63 is connected to a drive component via a transmission mechanism and is also connected to a steering mechanism. A conveyor frame 5 is installed at the bottom of the drying cavity 13. An inlet and an outlet are respectively provided at both ends of the drying cavity 13, and sealing plates 11 are connected to the inlet and outlet. The guide sleeve 6 is a spherical... The guide sleeve 6 has a rectangular array of through holes on its side. The guide cylinder 61 is inside the guide sleeve 6 and the outer side of the guide cylinder 61 is in contact with the inner side of the guide sleeve 6. There are multiple guide sleeves 6 arranged linearly along the width direction of the guide cavity 14. Adjacent guide sleeves 6 are connected by a sleeve. The sleeve passes through the guide sleeve 6 and is rotatably connected to the guide sleeve 6. The end sleeve is coaxially fixedly connected to the output shaft of the directional motor 3. The directional motor 3 is fixed to the side of the drying chamber 1. The output shaft of the directional motor 3 is fixedly connected to a ratchet 31. The ratchet 31 is unidirectionally engaged with the pawl 32 rotatably connected to the side of the drying chamber 1.
[0024] Multiple guide sleeves 6 are provided, and multiple guide tubes 61 are linearly arrayed along the width direction of the guide cavity 14. Each guide sleeve 6 is rotatably connected to a guide tube 61, and adjacent guide tubes 61 are fixedly connected by a sleeve rod 62. The sleeve rod 62 at the end is coaxially fixedly connected to the output shaft of the directional motor 3. The multi-point synchronous airflow delivery method can quickly supply and extract air. When adjusting the direction of the port of the guide tube 61, the directional motor 3 fixed to the side of the drying chamber 1 rotates, driving the sleeve rod 62 to rotate, so that the guide tube 61 rotates. When the two ports of the guide tube 61 are respectively connected to the two ports of the guide sleeve 6 located in the guide cavity 14, the guide fan 63 rotates to realize the gas circulation flow in the drying chamber 13 and the guide cavity 14. When the two ports of the guide tube 61 are respectively connected to the upper and lower ports of the guide sleeve 6, air supply or extraction is realized. The part of the sleeve 62 located on the outside of the drying chamber 1 is fixedly connected to the ratchet 31. The ratchet 31 and the pawl 32 rotatably connected to the side of the drying chamber 1 engage in one direction, so that the sleeve 62 can only rotate in one direction. By simply making the rotation direction of the drive shaft 65 opposite to that of the sleeve 62, the friction force can be avoided from causing the sleeve 62 to rotate during the rotation of the drive shaft. This ensures stable transmission between the drive bevel gear 631 and the drive bevel gear 632 when the drive shaft 65 rotates. Since the rotation direction of the drive shaft 65 is fixed, the rotation direction of the guide fan 63 connected to the drive shaft 65 is also fixed. The guide fan 63 is located at one end of the guide cylinder 61. When the end of the guide cylinder 61 connected to the guide fan 63 rotates to the corresponding port of the guide sleeve 6, the gas at the opposite end of the guide cylinder 61 can be sent to the end where the exhaust fan is located, thereby achieving the purpose of controlling the airflow direction. Example 4
[0025] like Figure 1-7As shown, a rosewood furniture drying device includes a drying chamber 1. The drying chamber 1 comprises, from bottom to top, a drying cavity 13, a flow guiding cavity 14, and an energy storage cavity 15. A flow guiding sleeve 6 is installed inside the flow guiding cavity 14. A flow guiding cylinder 61 is rotatably connected inside the flow guiding sleeve 6. A flow guiding fan 63 is rotatably connected inside the flow guiding cylinder 61. The flow guiding fan 63 is connected to a driving component via a transmission mechanism and is also connected to a steering mechanism. A conveyor frame 5 is installed at the bottom of the drying cavity 13. An inlet and an outlet are respectively provided at both ends of the drying cavity 13, and sealing plates are connected to the inlet and outlet. 11. The sealing plate 11 is connected to the end of the drying chamber 1 through a sealing mechanism. The sealing mechanism includes a limiting plate 12 fixed to the end of the drying chamber 1. A pressure cylinder 112 is fixedly connected to the outside of the limiting plate 12. A pressure rod is slidably connected inside the pressure cylinder 112. The end of the pressure rod slides relative to the sliding groove 111 on the outside of the sealing plate 11. The side of the sealing plate 11 is connected to the lifting motor 4. A rack 113 is connected to the side of the sealing plate 11. The rack 113 meshes with the lifting gear 41 coaxially fixedly connected to the output shaft of the lifting motor 4. The lifting motor 4 is fixed to the end of the drying chamber 1.
[0026] The drying chamber 1 is connected to a sealing plate 11 at one end to keep the drying chamber 13 sealed during the drying process and prevent heat loss. A sliding groove 111 is provided on the outside of the sealing plate 11. The sliding groove 111 slides vertically with the pressure rod, which slides inside the pressure cylinder 112. One end of the sealing plate 11 is connected to a rack 113, which meshes with a lifting gear 41. The pressure cylinder 112 is connected to a cylinder, and the sealing plate 11 can be controlled to fit or separate from the end of the drying chamber 1 by controlling the air pressure of the cylinder. After the sealing plate 11 separates from the end of the drying chamber 1, it is located in the limiting groove. At this time, the lifting motor 4 is controlled to rotate, which can raise the sealing plate 11 to open the inlet or outlet for feeding or discharging. After feeding, the lifting motor 4 drives the sealing plate 11 to fall. The sealing plate 11 slides inside the limiting plate 12 until it is aligned with the inlet or outlet. The pressure cylinder 112 is pressurized to press the pressure rod to press the sealing plate 11, ensuring that the sealing plate 11 fits against the end of the drying chamber 1 to maintain a seal. Example 5
[0027] like Figure 1-7 As shown, a rosewood furniture drying device is characterized by: a drying chamber 1, which includes a drying cavity 13, a guide cavity 14, and an energy storage cavity 15 from bottom to top. A guide sleeve 6 is provided in the guide cavity 14, and a guide cylinder 61 is rotatably connected in the guide sleeve 6. A guide fan 63 is rotatably connected in the guide cylinder 61. The guide fan 63 is connected to a drive component through a transmission mechanism and is connected to a steering mechanism. A conveyor frame 5 is provided at the bottom of the drying cavity 13. An inlet and an outlet are respectively provided at both ends of the drying cavity 13. A sealing plate 11 is connected to the inlet and outlet respectively. An exhaust port 152 is provided at the top of the energy storage cavity 15, and an isolation component 151 is connected in the energy storage cavity 15.
[0028] An isolation element 151 is provided inside the energy storage cavity 15, and an exhaust port 152 is provided above the isolation element 151. When the airflow in the drying cavity 13 enters the energy storage cavity 15, the airflow in the energy storage cavity 15 can be discharged through the exhaust port 152. The hot airflow enters the energy storage cavity 15 below the isolation element 151. The isolation element 151 is a vertically sliding isolation plate connected to the energy storage cavity 15. In order to ensure that the resistance of the hot airflow entering the drying cavity 13 is reduced, a one-way exhaust valve is provided at the bottom of the drying cavity 13. The hot airflow enters the drying cavity 13 and gathers at the top of the drying cavity 13, so that the cold airflow is discharged from the bottom of the drying cavity 13. The isolation element 151 can also be an isolation airbag that is easy to fix to the middle of the side of the energy storage cavity 15. When air enters the energy storage cavity 15, the isolation airbag bulges upward and the contents of the isolation airbag are filled with hot air. After the hot air in the energy storage cavity 15 is discharged into the drying cavity 13, the isolation airbag is concave downward, so that the external airflow can enter the energy storage cavity 15 above the isolation airbag.
Claims
1. A drying device for rosewood furniture, characterized in that: The equipment includes a drying chamber (1), which consists of a drying chamber (13), a flow guiding chamber (14), and an energy storage chamber (15) from bottom to top. A flow guiding sleeve (6) is installed inside the flow guiding chamber (14). A flow guiding cylinder (61) is rotatably connected inside the flow guiding sleeve (6). A flow guiding fan (63) is rotatably connected inside the flow guiding cylinder (61). The flow guiding fan (63) is connected to the driving component through a transmission mechanism. The flow guiding fan (63) is connected to the adjustment mechanism. A conveying frame (5) is installed at the bottom of the drying chamber (13). An inlet and an outlet are respectively installed at both ends of the drying chamber (13). A sealing plate (11) is connected to the inlet and outlet respectively. The guide tube (61) rotates under the adjustment of the direction adjustment mechanism, so that the two ends of the guide tube (61) are connected to the two ends of the guide sleeve (6) and the guide cavity (14), respectively; The direction of both ends of the guide tube (61) is adjusted by the adjustment mechanism so that both ends of the guide tube (61) are connected to the upper and lower ends of the guide sleeve (6) respectively. The upper end of the guide sleeve (6) is connected to the energy storage cavity (15), and the lower end of the guide sleeve (6) is connected to the drying cavity (13). The directional mechanism then controls the rotation of the guide tube (61), which blocks the channel between the energy storage cavity (15) and the guide cavity (14) through the outer wall of the guide tube (61), thereby sealing the energy storage cavity (15). When the two ports of the guide tube (61) are connected to the two ports of the guide sleeve (6) located in the guide cavity (14), the guide fan (63) rotates to realize the gas circulation in the drying cavity (13) and the guide cavity (14). When the two ports of the guide tube (61) are connected to the upper and lower ports of the guide sleeve (6), gas supply or gas extraction is realized.
2. The drying equipment for rosewood furniture according to claim 1, characterized in that: The guide sleeve (6) is spherical, and the side of the guide sleeve (6) is provided with a rectangular array of through holes. The guide cylinder (61) is inside the guide sleeve (6) and the outer side of the guide cylinder (61) is in contact with the inner side of the guide sleeve (6).
3. The drying equipment for rosewood furniture according to claim 2, characterized in that: The guide tube (61) is fixedly connected to the sleeve rod (62). A transmission shaft (65) is rotatably connected inside the sleeve rod (62). The end of the transmission shaft (65) is coaxially fixedly connected to the output shaft of the drive motor (66). A drive bevel gear (632) is coaxially fixedly connected to the transmission shaft (65). The drive bevel gear (632) meshes with the transmission bevel gear (631). The transmission bevel gear (631) is coaxially fixedly connected to the fan shaft of the guide fan (63).
4. The drying equipment for rosewood furniture according to claim 2, characterized in that: The guide sleeve (6) has multiple sleeves arranged linearly along the width direction of the guide cavity (14). Adjacent guide sleeves (6) are connected by a sleeve. The sleeve passes through the guide sleeve (6) and is rotatably connected to the guide sleeve (6). The end sleeve is coaxially fixedly connected to the output shaft of the directional motor (3).
5. The drying equipment for rosewood furniture according to claim 4, characterized in that: The directional motor (3) is fixed to the side of the drying box (1). The output shaft of the directional motor (3) is fixedly connected to a ratchet gear (31). The ratchet gear (31) and the pawl (32) rotatably connected to the side of the drying box (1) engage in one direction.
6. The rosewood furniture drying equipment according to claim 2, characterized in that: The conveyor frame (5) includes a support frame (51) fixed to the bottom of the drying chamber (13), and multiple conveying rollers (52) are rotatably connected to the support frame (51). The conveying rollers (52) are arranged in a linear array along the length of the support frame (51).
7. A rosewood furniture drying device according to claim 6, characterized in that: The drying box (1) is provided with guide frames (2) at both ends, and multiple guide rollers (21) are connected to the guide frames (2).
8. The drying equipment for rosewood furniture according to claim 1, characterized in that: The sealing plate (11) is connected to the end of the drying box (1) through a sealing mechanism. The sealing mechanism includes a limiting plate (12) fixed to the end of the drying box (1). A pressure cylinder (112) is fixedly connected to the outside of the limiting plate (12). A pressure rod is slidably connected inside the pressure cylinder (112). The end of the pressure rod slides relative to the sliding groove (111) on the outside of the sealing plate (11). The side of the sealing plate (11) is connected to the lifting motor (4) for transmission.
9. A rosewood furniture drying device according to claim 8, characterized in that: The sealing plate (11) is connected to a rack (113) on its side. The rack (113) meshes with a lifting gear (41) that is coaxially fixedly connected to the output shaft of the lifting motor (4). The lifting motor (4) is fixed to the end of the drying oven (1).
10. A drying device for rosewood furniture according to claim 1, characterized in that: The energy storage cavity (15) is provided with an exhaust port (152) at the top, and an isolation component (151) is connected inside the energy storage cavity (15).
Citation Information
Patent Citations
A new type of drying equipment for processing rosewood furniture
CN107478051B
A processing technique for rosewood furniture
CN107553678B
Combination timber drying device
CN208688119U
Heat recovery equipment for printed matter drying room
CN217532259U