Energy-saving drying equipment for production of Anhui gloves
By introducing hot air circulation and pluggable water absorption plates into the safety and environmental glove production equipment, the problems of heat loss from hot air and glove fixation have been solved, achieving energy saving and stable drying effect of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUQIAN SHULI SECURITY TECHNOLOGY CO LTD
- Filing Date
- 2025-06-12
- Publication Date
- 2026-05-08
AI Technical Summary
Existing safety and environmental glove production drying equipment suffers from problems such as heat loss from hot air, high energy consumption, and difficulty in securing gloves, which are easily thrown off by centrifugal force.
A hot air circulation pipe is used to connect the hot air blower, drying chamber and dehydration chamber to form a circulation system. A plug-in water suction plate is used to absorb moisture in the dehydration chamber, and the gloves are fixed by a fixing clamp to ensure that they do not fall off during the drying process.
This achieves efficient utilization of heat, reduces energy consumption, and ensures stable drying of gloves, thereby improving the energy efficiency and operational safety of the equipment.
Smart Images

Figure CN224215715U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of glove production drying equipment, specifically an energy-saving drying equipment for safe and environmentally friendly glove production. Background Technology
[0002] Drying is a crucial step in the production of safety and environmentally friendly gloves. After processes such as dipping, the gloves typically require initial drying to remove most of the moisture and volatile substances from their surface. The drying temperature and time depend on the glove material and process requirements. After subsequent treatments such as soaking and washing, a secondary drying process may be necessary to ensure the gloves are completely dry. The temperature and time for this secondary drying may also be adjusted according to specific process requirements.
[0003] Utility model CN216011585U discloses a rapid drying device for nitrile glove production, comprising a lower chamber, an upper chamber, and a hot air blower. One side of the upper surface of the lower chamber is hinged to one side of the lower surface of the upper chamber via a hinge. Rotating rods are rotatably connected to opposite sides of the lower chamber via bearings. Fixed sleeves are fixedly connected to the circumference of the rotating rods. Several first grooves are formed through both ends of the fixed sleeves, and several second grooves are formed around the circumference of the fixed sleeves. The positions of the first and second grooves correspond and are connected one-to-one. An installation plate is engaged within each of the first grooves. This utility model, by setting the first and second grooves and engaging the installation plate within the first groove, allows nitrile gloves to be placed on a bracket on the installation plate. A motor rotates the installation plate, and the hot air blower delivers hot air inward to dry the nitrile gloves. After drying, the installation plate can be removed and a new installation plate can be engaged.
[0004] While the aforementioned equipment can improve the efficiency of glove loading and unloading by changing the mounting plate, the hot air delivered by the hot air blower during the drying process, after blowing over the gloves and removing some moisture, is directly discharged into the outdoor environment, resulting in a waste of heat. This requires the hot air blower to be in rated working condition at all times, leading to continuous and high energy consumption in order to achieve the desired energy-saving effect. In addition, when installing gloves, the buckles are not effective in securing the gloves, making it easy for the gloves to be thrown off under centrifugal force and difficult to continue drying. Therefore, to address the above problems, an energy-saving drying equipment for safe and environmentally friendly glove production is proposed. Utility Model Content
[0005] To address the technical problems in comparative glove production drying equipment where heat is wasted during operation, resulting in high energy consumption, and where gloves are easily thrown off by centrifugal force due to difficulty in effectively securing them, this utility model provides an energy-saving drying equipment for safe and environmentally friendly glove production.
[0006] The technical solution adopted by the embodiments of this application to solve its technical problem is:
[0007] An energy-saving drying device for the production of safety and environmentally friendly gloves includes a hot air blower; a drying chamber including a through-shell with air guide hoods at both ends and a plurality of glove hanging components suspended inside the through-shell; and a dewatering tank including a sealed shell with a plurality of slots into which pluggable water-absorbing plates are inserted; wherein the air outlet of the hot air blower is connected to one side of the air guide hood via a hot air circulation pipe, the other side of the air guide hood is connected to one end of the sealed shell, and the other end of the sealed shell is connected to the air inlet of the hot air blower via a hot air circulation pipe; the glove hanging components include hand molds with fixing clamps installed on them.
[0008] In one possible implementation, the fixing fixture includes a hinged seat on which a pressing plate is rotatably mounted, and a torsion spring connected to the pressing plate is provided in the hinged seat. An arc-shaped clamp is fixedly connected to the end of the pressing plate, and a rubber pad is attached to its inner wall.
[0009] In one possible implementation, a suspension beam is fixedly installed on the lower end face of the top plate of the through box shell, and several rectangular fixing sleeves are fixedly installed on its lower end face. A hanging rod is fixedly connected to the top of the hand mold, and a rectangular plug corresponding to the rectangular fixing sleeve is fixedly installed at its end.
[0010] In one possible implementation, the sealed housing is provided with several guide rails corresponding to the slots, and the width of the guide rails is the same as the width of the slots.
[0011] In one possible implementation, the pluggable absorbent plate includes a frame that is slidably connected to a guide rail, wherein two layers of mesh are fixedly connected, and a layer of absorbent resin is filled between the mesh layers.
[0012] In one possible implementation, a number of humidity sensors are fixedly installed on the inner wall of the sealed housing, the number of which is the same as the number of plug-in water absorption plates, and each humidity sensor is located on the rear side of its corresponding plug-in water absorption plate.
[0013] In one possible implementation, the air guide shroud includes a platform-shaped housing with a flow equalization plate inside. The flow equalization plate has flow equalization holes arranged in an array, and the small end of the platform-shaped housing is connected to a pipe interface.
[0014] In one possible implementation, the through-hole shell has an operating port, and a rotating door corresponding to the position of the operating port is installed on the through-hole shell.
[0015] In summary, this utility model has the following beneficial technical effects:
[0016] The hot air blower, drying chamber, and dehydration tank are connected by a hot air circulation pipe to form a circulating system. The hot air from the blower removes moisture in the drying chamber, and then the moisture is absorbed in the dehydration tank. The hot air with significantly reduced moisture content then enters the blower to complete the circulation. This method can minimize heat loss in the hot air, thereby reducing the power of the blower and achieving energy saving. As a complement, the dehydration tank is equipped with several pluggable water suction plates, which can be replaced at any time during the drying process by plugging and unplugging them. The pluggable water suction plates that have reached water absorption saturation can be replaced to ensure that the dehydration tank can continuously provide high water removal efficiency.
[0017] In addition, the hand mold is equipped with a fixing clamp. Pressing the pressing plate will cause the arc-shaped clamp to lift up. After the end of the glove is completely fitted and fits, releasing the pressing plate will allow it to return to its original position under the torque of the torsion spring. This will cause the arc-shaped clamp to return to its original position and clamp and fix the end of the glove, ensuring that the glove is firmly fixed to the hand mold and will not fall off, thus ensuring the efficient operation of the drying process. Attached Figure Description
[0018] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0019] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0020] Figure 2 This is a schematic diagram of the internal structure of the drying oven of this utility model;
[0021] Figure 3 This is a schematic diagram of the glove suspension component structure of this utility model;
[0022] Figure 4 This is a schematic diagram of the water removal tank structure of this utility model;
[0023] Figure 5 This is a schematic diagram of the internal structure of the water removal tank of this utility model;
[0024] Figure 6 This is a schematic diagram of the air guide cover structure of this utility model.
[0025] In the diagram: 1. Drying oven; 11. Through-hole shell; 12. Air guide hood; 121. Tabletop shell; 122. Flow equalization plate; 123. Flow equalization hole; 124. Pipe interface; 13. Suspension beam; 131. Rectangular fixing sleeve; 14. Flip-top door; 2. Dewatering tank; 21. Sealed shell; 22. Slot; 221. Guide rail; 23. Plug-in absorbent plate; 231. Plate frame; 232. Absorbent resin layer; 233. Mesh layer; 24. Humidity sensor; 3. Hot air blower; 4. Hot air circulation pipe; 5. Glove hanging piece; 51. Hand mold; 52. Fixing clamp; 521. Hinge seat; 522. Pressing plate; 523. Arc-shaped clip; 524. Rubber pad; 53. Hanging rod; 531. Rectangular plug. Detailed Implementation
[0026] The technical solution in this application embodiment is to solve the problems mentioned in the background art, and the overall idea is as follows:
[0027] like Figure 1 , Figure 2 , Figure 4 As shown, this embodiment provides an energy-saving drying equipment for the production of safety and environmentally friendly gloves, including a hot air blower 3; a drying chamber 1, which includes a through-shell 11, with air guide hoods 12 at both ends of the through-shell 11; and a dewatering tank 2, including a sealed chamber 21. The air outlet of the hot air blower 3 is connected to one side of the air guide hood 12 through a hot air circulation pipe 4, and the other side of the air guide hood 12 is connected to one end of the sealed chamber 21. The other end of the sealed chamber 21 is connected to the air inlet of the hot air blower 3 through the hot air circulation pipe 4.
[0028] The hot air blower 3, drying chamber 1, and dehydration tank 2 are connected by the hot air circulation pipe 4 to form a circulating system. After the hot air from the hot air blower 3 removes moisture from the drying chamber 1, the moisture in the dehydration tank 2 is absorbed. The hot air with significantly reduced moisture content then enters the hot air blower 3 to complete the circulation. This method can minimize the heat loss in the hot air, thereby reducing the power of the hot air blower 3 and achieving energy saving.
[0029] As a complement, such as Figure 4 - Figure 5 As shown, the sealed housing 21 has several slots 22, into which pluggable water-absorbing plates 23 are inserted. The sealed housing 21 also has several guide rails 221 corresponding to the slots 22, with the width of the guide rails being the same as the width of the slots 22. Through the above technical solution, the pluggable water-absorbing plates 23 and the sealed housing 21 can be connected by insertion. This connection method can ensure the sealing of the connection to a certain extent. Therefore, the pluggable water-absorbing plates 23 that have reached water absorption saturation can be replaced at any time during the drying process by plugging and unplugging, ensuring that the dewatering tank 2 can continuously provide high dewatering efficiency.
[0030] To ensure that the plug-in absorbent plate 23 maintains strong absorbency even at high temperatures, the plug-in absorbent plate 23 includes a frame 231 slidably connected to the guide rail 221, wherein two layers of mesh fabric 233 are fixedly connected, and a layer of absorbent resin 232 is filled between the mesh fabric layers 233. Figure 5 As shown, the unique hydrophilic groups and network structure of water-absorbing resin enable it to release water slowly. After absorbing water, a film forms on the surface of the particles, which slows down the evaporation rate of water. At the same time, the evaporation of water molecules bonded to the polar groups on the resin polymer chain through hydrogen bonds requires more energy, making it difficult for water molecules to escape from the internal structure, which also slows down the evaporation rate of water.
[0031] Since the water absorption effect of the plug-in absorbent plate 23 is not visible, it is necessary to use relevant measures to determine whether it still has effective water absorption. Therefore, several humidity sensors 24 are fixedly installed on the inner wall of the sealed housing 21. The number of these sensors is the same as the number of plug-in absorbent plates 23, and each humidity sensor 24 is located on the rear side of its corresponding plug-in absorbent plate 23. Figure 5 As shown, the humidity sensor 24 can detect the moisture content in the air after water removal by each plug-in absorbent plate 23. By comparing the moisture content at the corresponding position under standard test, it can be determined whether the plug-in absorbent plate 23 in front of the current humidity sensor 24 has reached water absorption saturation and needs to be replaced.
[0032] To ensure the gloves remain suspended and supported during the drying process, and to maximize drying efficiency, such as... Figure 2 - Figure 3 As shown, the energy-saving drying equipment for the production of safety and environmental protection gloves provided in this embodiment also includes a number of glove hanging parts 5 disposed in the through box shell 11. Each part includes a hand mold 51, on which a fixing clamp 52 is installed. The fixing clamp 52 includes a hinge seat 521, on which a pressing plate 522 is rotatably mounted. The hinge seat 521 is provided with a torsion spring connected to the pressing plate 522. An arc-shaped clamp 523 is fixedly connected to the end of the pressing plate 522, and a rubber pad 524 is attached to its inner wall.
[0033] Based on the above solution, pressing the pressing plate 522 can cause the arc-shaped clamp 523 to lift up. After the end of the glove is fully fitted and attached, releasing the pressing plate 522 will allow it to reset under the torque of the torsion spring, causing the arc-shaped clamp 523 to reset and clamp and fix the end of the glove. This ensures that the glove is firmly fixed on the hand mold 51 and will not fall off, thus ensuring the efficient operation of the drying process.
[0034] In addition, a suspension beam 13 is fixedly installed on the lower end face of the top plate of the through box shell 11, and several rectangular fixing sleeves 131 are fixedly installed on its lower end face. A hanging rod 53 is fixedly connected to the top of the hand mold 51, and a rectangular plug 531 corresponding to the rectangular fixing sleeve 131 is fixedly installed at its end. By inserting the rectangular plug 531 into the rectangular fixing sleeve 131, the hanging rod 53 is suspended on the suspension beam 13 to complete the suspension and fixation of the glove.
[0035] like Figure 6 As shown, the air guide hood 12 includes a platform-shaped cover 121, inside which a flow equalization plate 122 is provided. The flow equalization plate 122 has flow equalization holes 123 arranged in an array, and the small end of the platform-shaped cover 121 is connected to a pipe interface 124. Through the above technical solution, the flow equalization plate 122 can guide the airflow to flow evenly, expand its coverage area, and make the hot air evenly distributed to ensure its drying effect.
[0036] like Figure 1 As shown, an operating port is provided on the through box shell 11, and a rotating flip box door 14 corresponding to the position of the operating port is installed on the through box shell 11. The above structure provides the necessary structure for the operator to hang a hand mold 51 covered with gloves inside the through box shell 11.
[0037] The working principle and usage process of this utility model:
[0038] The hot air blower 3, drying chamber 1, and dehydration tank 2 are connected by the hot air circulation pipe 4 to form a circulating system. After the hot air from the hot air blower 3 removes moisture from the drying chamber 1, the moisture in the dehydration tank 2 is absorbed. The hot air with significantly reduced moisture content then enters the hot air blower 3 to complete the circulation. This method can minimize the heat loss in the hot air, thereby reducing the power of the hot air blower 3 and achieving energy saving.
[0039] As a complement, the dewatering tank 2 is equipped with several pluggable water-absorbing plates 23, which can be replaced at any time during the drying process by plugging and unplugging. The pluggable water-absorbing plates 23 that have reached water absorption saturation can be replaced to ensure that the dewatering tank 2 can continuously provide high water removal efficiency. At the same time, the humidity sensor 24 can detect the moisture content in the air after water removal by each pluggable water-absorbing plate 23. By analyzing and comparing the moisture content at the corresponding position under standard test, it can be determined whether the pluggable water-absorbing plate 23 corresponding to the current humidity sensor 24 has reached water absorption saturation and needs to be replaced.
[0040] In addition, the hand mold 51 is equipped with a fixing clamp 52. Pressing the pressing plate 522 will cause the arc-shaped clamp 523 to lift up. After the end of the glove is completely fitted and fitted, the pressing plate 522 is released. It can return to its original position under the torque of the torsion spring, which will drive the arc-shaped clamp 523 to return to its original position and clamp and fix the end of the glove. This ensures that the glove can be firmly fixed on the hand mold 51 and will not fall off, thus ensuring the efficient operation of the drying process.
[0041] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. An energy-saving drying equipment for the production of safety and environmentally friendly gloves, characterized in that, include: Hot air blower (3); The drying oven (1) includes a through-shell (11), with air guide hoods (12) at both ends of the through-shell (11), and several glove hanging parts (5) suspended inside the through-shell (11). In addition to the water tank (2), there is a sealed shell (21) with several slots (22) on it, and a pluggable water suction plate (23) is inserted into the slot (22); The air outlet of the hot air blower (3) is connected to the air guide shroud (12) on one side through the hot air circulation pipe (4), and the air guide shroud (12) on the other side is connected to one end of the sealed housing (21). The other end of the sealed housing (21) is connected to the air inlet of the hot air blower (3) through the hot air circulation pipe (4). The glove suspension component (5) includes a hand mold (51) on which a fixing clamp (52) is mounted.
2. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 1, characterized in that: The fixing clamp (52) includes a hinge seat (521) on which a pressing plate (522) is rotatably mounted, and a torsion spring connected to the pressing plate (522) is provided in the hinge seat (521). An arc-shaped clamp (523) is fixedly connected to the end of the pressing plate (522), and a rubber pad (524) is attached to its inner wall.
3. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 1, characterized in that: A suspension beam (13) is fixedly installed on the lower end face of the top plate of the through box shell (11), and a number of rectangular fixing sleeves (131) are fixedly installed on its lower end face. A hanging rod (53) is fixedly connected to the top of the hand mold (51), and a rectangular plug (531) corresponding to the rectangular fixing sleeve (131) is fixedly installed at its end.
4. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 1, characterized in that: The sealed housing (21) is fixedly provided with several guide rails (221) corresponding to the slots (22), and the width of the guide rails is consistent with the width of the slots (22).
5. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 4, characterized in that: The plug-in absorbent plate (23) includes a plate frame (231) that is slidably connected to the guide rail (221), wherein two layers of mesh (233) are fixedly connected, and a water-absorbing resin layer (232) is filled between the mesh layers (233).
6. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 1, characterized in that: Several humidity sensors (24) are fixedly installed on the inner wall of the sealed housing (21). The number of these sensors is the same as the number of plug-in water absorption plates (23). Each humidity sensor (24) is located on the rear side of its corresponding plug-in water absorption plate (23).
7. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 1, characterized in that: The air guide hood (12) includes a platform-shaped cover (121), inside which a flow equalization plate (122) is provided. The flow equalization plate (122) has flow equalization holes (123) arranged in an array, and the small end of the platform-shaped cover (121) is connected to a pipe interface (124).
8. The energy-saving drying equipment for the production of safety and environmentally friendly gloves according to claim 1, characterized in that: An operating port is provided on the through-hole shell (11), and a rotating flip-top door (14) is installed on the through-hole shell (11) and is corresponding to the position of the operating port.
Citation Information
Patent Citations
Rapid drying equipment for butyronitrile glove production
CN216011585U