Balloon mold auxiliary rotation mechanism
Patent Information
- Application Number
- CN202522107283.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-30
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2035-09-30
AI Technical Summary
[0003]气球是通过玻璃的模具生产,通常普通的气球所使用的材质为天然乳胶,需要将模具外壁添加防粘涂层,随之将直接将模具侵入乳胶液体后成型,其中模具属于重复使用,从而需要对模具进行清理后使用,避免模具的外部残留杂物,避免导致再次使用异常,而现有清洗时会直接采用冲洗方式,会导致外壁无法完全清理,从而会使用到辅助转动模具的结构,让模具转动一定的角度,从而更好的实现对模具清理,但现有转向结构,无法适应于不同的批次模具使用,模具批次的不同,会让模具高度大小均发生变化,无法直接对转向结构进行调节,导致装置使用不便的问题
本实用新型中首先外箱架的上端位置处加装有升降组件,升降组件的顶升器设置为四组,顶升器通过同步杆同步控制,实现升降组件对滑移组件的稳定升降控制,从而达到对于不同批次模具高度的适应,滑移组件则直接安装两组承载组件,而滑移组件能够对承载组件进行位置的横向滑移,从而让承载组件上的运动组件更好的对应模具位置进行使用,承载组件上则同时安装对称的两组调节组件,承载组件处电机通过承载箱与连接架同时对两组调节组件的传动组件进行同步控制,而调节组件的两侧结构连接在承载组件上,让每组调节组件均能够在承载组件上调节位置,而调节组件自身则带有弹簧,使得调节组件顶部运动组件接触模具时,具有一定的缓冲空间,更好的实现对模具的转动,调节组件上的传动组件则保证了运动组件稳定进行内外的浮动运动。
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Figure CN224714445U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of surveying and mapping equipment technology, and in particular to an auxiliary rotation mechanism for a balloon mold. Background Technology
[0002] With the continuous development of technology, life has become increasingly diverse and colorful. For weddings and festival celebrations, ribbons and balloons are often used to create arches, pillars, and centerpieces. By twisting long balloons, sculptures of various animal shapes can be made, adding a joyful atmosphere to the event. Furthermore, balloons can be used as children's toys; helium-filled balloons float in the air for children to play with. In some celebrations, people also perform ceremonies of dropping or releasing balloons, symbolizing hope and dreams.
[0003] Balloons are produced using glass molds. Ordinary balloons typically use natural latex, requiring a non-stick coating on the mold's outer wall before immersing it in liquid latex to form the balloon. Since the molds are reusable, they need to be cleaned before each use to prevent residue buildup and potential malfunctions. Current cleaning methods, such as rinsing, often fail to completely clean the outer wall. A mechanism to rotate the mold at a specific angle is used for better cleaning. However, existing rotating mechanisms are incompatible with different batches of molds, as variations in mold height and size make direct adjustment of the rotating mechanism impossible, leading to inconvenience in using the device. Utility Model Content
[0004] This utility model relates to an auxiliary rotating mechanism for a balloon mold. A lifting component is installed at the upper end of the outer frame. The lifting component has the function of lifting and adjusting. A sliding component is mounted on the top of the lifting component. The sliding component can stably adjust the position of the supporting component. An adjusting component is installed inside the supporting component. The adjusting component realizes the interval adjustment of the positions of the two sets of transmission components. At the same time, the adjusting component is equipped with a spring to ensure that the moving component at the transmission component stably clamps the mold. The structure of the transmission component enables the moving component to run eccentrically, realizing the twisting adjustment function after the moving component stably clamps the mold.
[0005] This utility model provides an auxiliary rotation mechanism for a balloon mold, specifically including: an outer frame; an operating platform is installed on one side of the outer end of the outer frame, a lifting component is installed at the upper end of the outer frame, a sliding component is installed at the upper end of the lifting component, two sets of bearing components are slidably installed on the sliding component, two symmetrical adjustment components are installed inside the bearing components, a transmission component is installed in each set of adjustment components, and a motion component is installed on the transmission component. The motion components of the two sets of adjustment components directly clamp and rotate the mold.
[0006] The lifting motor of the lifting assembly is fixed at the middle position on the outer frame. Lifters are installed at the corner positions of the outer frame. Synchronizing rods are connected between the lifters. Support frames support the top of the lifters and the lifting motor.
[0007] The support frame of the sliding component is fixed at the top of the lifting component. Two sets of guide rails are provided on the support frame. A transmission rod is rotatably installed between the guide rails. A sliding block is installed on the transmission rod. Sliding blocks are slidably installed on the guide rails. A top frame is fixedly installed on every four sets of sliding blocks. At the same time, the top frame is fixed to the sliding blocks at the bottom.
[0008] The carrier box of the carrier assembly is fixed on the sliding assembly. The top outer side of the carrier box is set as an extension structure. A connecting frame is slidably installed on the extension part of the carrier box. A motor is fixed at the bottom of the connecting frame. An adjusting component is installed between the connecting frame and the outer end of the carrier box.
[0009] The inner guide rail of the adjustment component is installed at the bottom of the bearing component. An inner frame is slidably installed on the inner guide rail. An outer plate frame is inserted and installed at the upper outer side of the inner frame. An adjustment rod is directly rotatably installed on the outer plate frame. The outer side of the adjustment rod is screwed to the bearing component. A spring is installed between the outer plate frame and the inner frame.
[0010] The drive wheel of the transmission assembly is fixed on the motor. The drive wheel is connected to two sets of motion components through a transmission belt. Two sets of motion components are installed at each set of adjustment components. A spacer shaft is installed between the bottom of the motion components. The spacer shaft and the two sets of motion components are driven by the transmission wheel.
[0011] An eccentric frame is fixed at the top of the motion axis of the motion component. A clamping plate is installed on the top of the eccentric frame at the rear position. An auxiliary frame is installed on the eccentric frame at the front position. The auxiliary frame is directly sleeved inside the clamping plate. A rubber plate is installed on the inner end face of the clamping plate.
[0012] This utility model provides an auxiliary rotation mechanism for a balloon mold, which has the following beneficial effects: In this invention, a lifting assembly is first installed at the upper end of the outer frame. The lifting assembly has four sets of lifting devices, which are synchronously controlled by a synchronizing rod to achieve stable lifting and lowering control of the sliding assembly, thereby adapting to the height of different batches of molds. The sliding assembly directly installs two sets of bearing components, which can laterally slide the bearing components, allowing the moving components on the bearing components to better correspond to the mold position. Two symmetrical sets of adjusting components are installed on the bearing components. The motor at the bearing component synchronously controls the transmission components of the two sets of adjusting components through the bearing box and connecting frame. The two side structures of the adjusting components are connected to the bearing components, allowing each set of adjusting components to adjust its position on the bearing components. The adjusting components themselves have springs, which provide a certain buffer space when the moving components at the top of the adjusting components contact the mold, better realizing the rotation of the mold. The transmission components on the adjusting components ensure the stable internal and external floating movement of the moving components.
[0013] In addition, existing devices are usually not compatible with different batches of molds. Therefore, a lifting motor is installed on the outer frame, and a lifting device is installed at the corner of the outer frame. The lifting devices are synchronously driven by a synchronizing rod, so that the lifting devices can raise the support frame more synchronously and stably, and the device can be better used for different batches of molds.
[0014] In addition, to ensure stable transmission of the transmission components, an extension structure is directly installed at the bearing box, and a connecting frame and motor are installed at the extension. The connecting frame is set to slide installation, and there are adjustment parts at the outer end of the connecting frame and the bearing box. The adjustment parts can be adjusted when rotating, ensuring stable tension when the motor is transmitting power, and achieving a stable effect on the transmission components.
[0015] In addition, the adjustment component is set as the main structure that can adjust the position of the moving component. The inner guide rail is directly set at the bottom of the load-bearing component, and the inner frame is directly slidably installed on the inner guide rail. Next, the outer plate frame is slidably installed on the top side of the inner frame, and the adjustment rod is rotatably installed on the outer plate frame. The adjustment rod itself is directly screwed to the load-bearing component. At this time, the position of the outer plate frame on the load-bearing component can be adjusted by manually controlling the adjustment rod, and the position of the inner frame can be adjusted at the same time, thereby realizing the position control function of the moving component on the adjustment component. When the moving component contacts the clamping mold, the spring between the outer plate frame and the inner frame can allow the adjustment component to assist the moving component to form a certain buffer, thus helping to protect the mold.
[0016] In addition, to ensure stable operation and transmission of the motion components, the drive wheel directly transmits power to the two sets of motion components via a transmission belt. A spacer shaft is installed between the two sets of motion components of the adjustment component. The spacer shaft enables stable transmission of the motion components through the transmission wheel. First, an eccentric frame is directly fixed to the top of the motion shaft. Clamping plates and auxiliary frames are respectively installed on the eccentric frame at the front and rear positions. When the eccentric structure of the eccentric frame is running, the clamping plate and the auxiliary frame form a mutual rubbing motion. The auxiliary frame and the clamping plate are interlocked to achieve a certain degree of fault tolerance when the motion components are running. The rubber plate on the inner end face of the clamping plate helps to ensure greater stability when the mold rotates, and also helps to protect the mold. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly described below.
[0018] The accompanying drawings described below are only related to some embodiments of the present invention and are not intended to limit the present invention.
[0019] In the attached diagram: Figure 1 A schematic diagram of the overall structure of this application is shown; Figure 2 A schematic diagram of the lifting component structure of this application is shown; Figure 3 A schematic diagram of the sliding component structure of this application is shown; Figure 4 A schematic diagram of the adjustment component structure of this application is shown; Figure 5 A schematic diagram of the transmission component structure of this application is shown; Figure 6 A schematic diagram of the motion component structure of this application is shown; List of reference numerals 1. Outer box rack; 2. Lifting assembly; 201. Lifting motor; 202. Lifting device; 203. Synchronizing rod; 204. Support frame; 3. Sliding assembly; 301. Support frame; 302. Guide rail rod; 303. Transmission rod; 304. Sliding block; 305. Sliding block; 306. Top frame frame; 4. Load-bearing components; 401. Load-bearing box; 402. Connecting frame; 403. Adjusting components; 5. Adjustment assembly; 501. Inner guide rail; 502. Inner frame; 503. Outer frame; 504. Adjustment rod; 6. Transmission assembly; 601. Drive pulley; 602. Belt; 603. Spacer shaft; 604. Drive pulley; 7. Motion components; 701. Motion shaft; 702. Eccentric frame; 703. Clamping plate; 704. Auxiliary frame; 705. Rubber plate; 8. Control panel. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the described embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0021] Example 1: Please refer to Figures 1 to 6 : This utility model proposes an auxiliary rotation mechanism for a balloon mold, comprising: an outer frame 1; an operating platform 8 is installed on one side of the outer end of the outer frame 1; a lifting component 2 is installed at the upper end of the outer frame 1; a sliding component 3 is installed at the upper end of the lifting component 2; two sets of bearing components 4 are slidably installed on the sliding component 3; two symmetrical adjustment components 5 are installed inside the bearing component 4; a transmission component 6 is installed in each set of adjustment components 5; and a motion component 7 is installed on the transmission component 6. The motion components 7 of the two sets of adjustment components 5 directly clamp and rotate the mold.
[0022] Among them, such as Figure 1 Figure 2 As shown, the lifting motor 201 of the lifting assembly 2 is fixed at the middle position on the outer frame 1. A lifting device 202 is installed at the corner position of the outer frame 1. Synchronizing rods 203 are connected between the lifting devices 202. A support frame 204 supports the top of the lifting devices 202 and the lifting motor 201. The existing device cannot be used for different batches of molds. Therefore, the lifting motor 201 is installed on the outer frame 1, and the lifting devices 202 are installed at the corner position of the outer frame 1. The lifting devices 202 are synchronously driven by the synchronous rods 203, so that the lifting devices 202 lift the support frame 204 more synchronously and stably, and the device can be better used for different batches of molds.
[0023] Among them, such as Figure 1 Figure 3As shown, the support frame 301 of the sliding assembly 3 is fixed at the top of the lifting assembly 2. Two sets of guide rails 302 are provided on the support frame 301. A transmission rod 303 is rotatably installed between the guide rails 302. A sliding block 304 is installed on the transmission rod 303, and sliding blocks 305 are slidably installed on the guide rails 302. A top frame 306 is fixedly installed on every four sets of sliding blocks 305, and the bottom of the top frame 306 is fixed to the sliding blocks 304. First, two sets of guide rails 302 and one set of transmission rods 303 are directly installed on the support frame 301. Sliding blocks 305 are directly slidably installed at rod 302, and sliding blocks 304 are installed at transmission rod 303. Top frame 306 is fixed directly on every four sets of sliding blocks 305. At the same time, the bottom of top frame 306 is fixed to sliding blocks 304. Thus, when the transmission rod 303 is connected to an external motor and runs, the transmission rod 303 drives the sliding blocks 304, thereby driving the top frame 306. This allows the sliding assembly 3 to adjust and control the load-bearing assembly 4 and other components on the top frame 306, and allows the motion assembly 7 and other components to better correspond to the mold position.
[0024] Among them, such as Figure 3 Figure 4 As shown, the carrier box 401 of the carrier component 4 is fixed on the sliding component 3. The top outer side of the carrier box 401 is set as an extension structure. The extension part of the carrier box 401 is slidably mounted with a connecting frame 402. The bottom position of the connecting frame 402 is fixed with a motor. An adjusting component 403 is added between the connecting frame 402 and the outer end of the carrier box 401. In order to ensure stable transmission of the transmission component 6, an extension structure is directly set at the carrier box 401, and then the connecting frame 402 and the motor are installed at the extension. The connecting frame 402 is set as a sliding installation. The adjusting component 403 at the outer end of the connecting frame 402 and the carrier box 401 can be adjusted when rotating, ensuring stable tension when the motor is transmitting, and achieving a stable effect on the transmission component 6.
[0025] Among them, such as Figure 3 Figure 4As shown, the inner guide rail 501 of the adjusting component 5 is installed at the bottom of the bearing component 4. An inner frame 502 is slidably installed on the inner guide rail 501. An outer plate frame 503 is inserted and installed at the outer side of the upper end of the inner frame 502. An adjusting rod 504 is directly rotatably installed on the outer plate frame 503. The outer side of the adjusting rod 504 is screwed to the bearing component 4. A spring is installed between the outer plate frame 503 and the inner frame 502. The adjusting component 5 is set as the main structure that can adjust the position of the moving component 7. The inner guide rail 501 is directly installed at the bottom of the bearing component 4, and the inner frame 502 is directly slidably installed on the inner guide rail 501. An outer plate frame 503 is slidably mounted on one side of the top of the frame 502. An adjusting rod 504 is rotatably mounted on the outer plate frame 503. The adjusting rod 504 is directly screwed onto the bearing component 4. At this time, the position of the outer plate frame 503 on the bearing component 4 can be adjusted by manually controlling the adjusting rod 504. At the same time, the position of the inner frame 502 can be adjusted, thereby realizing the position control function of the moving component 7 on the adjusting component 5. When the moving component 7 contacts the clamping mold, the spring between the outer plate frame 503 and the inner frame 502 can allow the adjusting component 5 to assist the moving component 7 in forming a certain buffer, thus helping to protect the mold.
[0026] Among them, such as Figure 4 Figure 5 As shown, the drive wheel 601 of the transmission assembly 6 is fixed to the motor. The drive wheel 601 is connected to two sets of motion assemblies 7 through the conveyor belt 602. Two sets of motion assemblies 7 are installed at each adjustment assembly 5. A spacer shaft 603 is installed between the bottom of the motion assemblies 7. The spacer shaft 603 and the two sets of motion assemblies 7 are driven by the transmission wheel 604. In order to ensure the stable operation of the motion assemblies 7, the drive wheel 601 is directly driven to the two sets of motion assemblies 7 through the conveyor belt 602. The spacer shaft 603 is installed between the two sets of motion assemblies 7 of the adjustment assembly 5. The spacer shaft 603 can also provide stable transmission of the motion assemblies 7 through the transmission wheel 604.
[0027] Among them, such as Figure 5 Figure 6As shown, an eccentric frame 702 is fixed at the top of the motion shaft 701 of the motion component 7. A clamping plate 703 is installed on the top of the eccentric frame 702 at the rear position, and an auxiliary frame 704 is installed on the eccentric frame 702 at the front position. The auxiliary frame 704 is directly sleeved inside the clamping plate 703. A rubber plate 705 is installed on the inner end face of the clamping plate 703. First, the motion shaft 701 is directly fixed to the top with the eccentric frame 702. The clamping plate 703 and the auxiliary frame 704 are respectively installed on the eccentric frame 702 at the front and rear positions. When the eccentric structure of the eccentric frame 702 is running, the clamping plate 703 and the auxiliary frame 704 form a mutual rubbing motion. The auxiliary frame 704 and the clamping plate 703 are sleeved together to achieve a certain fault tolerance effect when the motion component 7 is running. The rubber plate 705 on the inner end face of the clamping plate 703 helps to ensure that the mold rotation is more stable and also helps to protect the mold.
[0028] The working principle of this embodiment is as follows: During installation, first select the position and height of the mold on the equipment, and adjust the device through the sliding component 3 so that the moving component 7 on the top of the bearing component 4 is placed at the designated position of the mold. At this time, the clamping position of the adjusting component 5 at the bearing component 4 needs to be adjusted. Then, start the motor of the bearing component 4 so that the motor drives the coarse transmission component 6 of the adjusting component 5. The transmission component 6 then runs the moving component 7. At this time, observe whether the moving component 7 can clamp the mold and rotate. At the same time, the adjusting component 5 needs to be adjusted according to the observation. For the clamping stability of the mold, select the rubber plate 705 of the moving component 7 with the corresponding thickness for replacement. After simulated operation, the sliding component 3 is raised to the position of the corresponding mold through the lifting component 2, and the equipment can be used.
[0029] The following points should be noted in this article: 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.
[0030] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0031] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. An auxiliary rotating mechanism for a balloon mold, comprising: Outer frame (1); an operating table (8) is installed on one side of the outer end of the outer frame (1). The outer frame (1) is characterized in that a lifting component (2) is installed at the upper end of the outer frame (1), a sliding component (3) is installed at the upper end of the lifting component (2), two sets of bearing components (4) are slidably installed on the sliding component (3), two symmetrical adjustment components (5) are installed inside the bearing component (4), a transmission component (6) is installed in each set of adjustment components (5), and a motion component (7) is installed on the transmission component (6). The motion components (7) of the two sets of adjustment components (5) directly clamp and rotate the mold.
2. The auxiliary rotating mechanism for a balloon mold according to claim 1, characterized in that, The lifting motor (201) of the lifting assembly (2) is fixed at the middle position on the outer frame (1). A lifting device (202) is installed at the corner of the edge of the outer frame (1). Synchronous rods (203) are connected between the lifting devices (202). A support frame (204) supports the top of the lifting device (202) and the lifting motor (201).
3. The auxiliary rotating mechanism for a balloon mold according to claim 1, characterized in that, The support frame (301) of the sliding component (3) is fixed at the top of the lifting component (2). Two sets of guide rails (302) are provided on the support frame (301). A transmission rod (303) is rotatably installed between the guide rails (302). A sliding block (304) is installed on the transmission rod (303). A sliding block (305) is slidably installed on the guide rails (302). A top frame (306) is fixedly installed on every four sets of sliding blocks (305). At the same time, the bottom of the top frame (306) is fixed to the sliding block (304).
4. The auxiliary rotating mechanism for a balloon mold according to claim 1, characterized in that, The carrier box (401) of the carrier assembly (4) is fixed on the sliding assembly (3). The top outer side of the carrier box (401) is set as an extension structure. A connecting frame (402) is slidably installed on the extension part of the carrier box (401). A motor is fixed at the bottom of the connecting frame (402). An adjusting component (403) is installed between the connecting frame (402) and the outer end of the carrier box (401).
5. The auxiliary rotating mechanism for a balloon mold according to claim 1, characterized in that, The inner guide rail (501) of the adjustment component (5) is installed at the bottom of the bearing component (4). An inner frame (502) is slidably installed on the inner guide rail (501). An outer plate frame (503) is inserted and installed on the outer side of the upper end of the inner frame (502). An adjustment rod (504) is directly rotatably installed on the outer plate frame (503). The outer side of the adjustment rod (504) is screwed onto the bearing component (4). A spring is installed between the outer plate frame (503) and the inner frame (502).
6. The auxiliary rotating mechanism for a balloon mold according to claim 1, characterized in that, The drive wheel (601) of the transmission assembly (6) is fixed on the motor. The drive wheel (601) is connected to two sets of motion assemblies (7) through the conveyor belt (602). Two sets of motion assemblies (7) are installed at each set of adjustment assembly (5). A spacer shaft (603) is installed between the bottoms of the motion assemblies (7). The spacer shaft (603) and the two sets of motion assemblies (7) are driven to each other through the transmission wheel (604).
7. The auxiliary rotating mechanism for a balloon mold according to claim 1, characterized in that, An eccentric frame (702) is fixed at the top of the motion shaft (701) of the motion component (7). A clamping plate (703) is installed on the top of the eccentric frame (702) at the rear position. An auxiliary frame (704) is installed on the eccentric frame (702) at the front position. The auxiliary frame (704) is directly sleeved in the clamping plate (703). A rubber plate (705) is installed on the inner end face of the clamping plate (703).