Rapid sampling mechanism for glass microfiber material
By designing a quick sampling mechanism for glass microfibricated materials, the problems of waste of raw materials and inaccurate sampling volume caused by existing sampling tools are solved, and a fast, convenient and accurate sampling process is achieved.
Patent Information
- Application Number
- CN202421259745.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-04
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2034-06-04
AI Technical Summary
The existing sampling tools are prone to spilling glass microfibrotic materials after sampling, resulting in waste of raw materials and inaccurate sampling volume.
A glass microfibricated material rapid sampling mechanism is designed, including a hollow material extraction tube, a feed tube, a discharge tube and a liftable shell. The rapid sampling and transfer of samples are achieved through the cooperation of the connecting rod and the limit bolt.
This design not only improves the convenience and accuracy of sampling, reduces waste of raw materials, but also facilitates later detection and transfer.
Smart Images

Figure CN222938775U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of sampling equipment, in particular to a rapid sampling mechanism for glass microfibered materials. Background Technique
[0002] Glass microfibered materials, also known as glass fibers, are fibrous materials made by subjecting molten glass to processes such as high-speed stretching and cooling and solidification. It has the characteristics of light weight, high strength, corrosion resistance, and good insulation performance. It is an indispensable material in modern industry and has been widely used in many fields such as aerospace, construction, automotive, and electronics due to its unique physical and chemical properties. However, in order to ensure the quality of glass microfibered materials and the stability of the production process, sampling and analysis of them have become an essential link.
[0003] Common sampling tools such as sampling shovels are used for sampling glass microfibered materials. When sampling, the glass microfibered materials are directly taken out from the production equipment. However, when transferring the sampled materials after sampling, the situation of splashing of glass microfibered materials is likely to occur, which not only causes waste of raw materials but also easily affects the sampling quantity. In view of this, we propose a rapid sampling mechanism for glass microfibered materials. Content of the Utility Model
[0004] The purpose of the utility model is to provide a rapid sampling mechanism for glass microfibered materials to solve the problems raised in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solutions:
[0006] A rapid sampling mechanism for glass microfibered materials includes a material taking pipe;
[0007] The material taking pipe has a hollow structure. Feed pipes are installed at the bottom ends of both side walls of the material taking pipe, and a discharge pipe is installed near the upper part of the front end face of the material taking pipe; a fixing ring is coaxially fixed at the top end of the material taking pipe, and a limit bolt is threadedly connected to the fixing ring; a discharge groove is opened at the bottom end of the material taking pipe;
[0008] A liftable housing is installed inside the material taking pipe. A discharge port is opened below the front end face of the housing. When the discharge port is communicated with the discharge pipe, the sample in the housing can be discharged through the discharge pipe; connection grooves are opened on both the left and right side walls of the housing. When the connection grooves are communicated with the feed pipes, the sample can enter the housing through the feed pipes;
[0009] A connecting rod is coaxially fixed at the top end of the housing. The top end of the connecting rod passes through the top end of the housing and the fixing ring, and the end of the limit bolt abuts against the outer wall of the connecting rod; a handle is fixed at the top end of the connecting rod.
[0010] Preferably, a slot is provided at the top end of the discharge pipe, and a baffle plate is inserted at the slot, and the overall shape of the baffle plate is L-shaped.
[0011] Preferably, grips are fixed to the left and right side walls of the material taking pipe near the top end, and anti-slip sleeves are sleeved outside the grips.
[0012] Preferably, a limiting ring is coaxially fixed near the bottom end of the connecting rod, and the limiting ring is fixedly connected to the connecting rod by bolts.
[0013] Preferably, the opening of the feed pipe is obliquely upward, and the opening of the discharge pipe is obliquely downward.
[0014] Preferably, the material taking pipe, the feed pipe and the discharge pipe are of an integrally formed structure, and the material taking pipe, the feed pipe and the discharge pipe are all made of aluminum alloy.
[0015] Preferably, the size of the housing is adapted to the inner cavity size of the material taking pipe, and the housing is made of aluminum alloy.
[0016] Compared with the prior art, the beneficial effects of the present utility model are:
[0017] By providing the material taking pipe: during sampling, the feed pipes on both sides are inserted into the glass microfibered material body, and the glass microfibered material enters the housing through the feed pipes, and then the housing is pulled upward so that the housing rises along the material taking pipe. When the discharge port moves to the discharge pipe, the sample obtained in the housing is discharged. This design not only facilitates sampling but also facilitates transfer after sampling, improving the convenience of sampling and being beneficial to the later detection of the glass microfibered material. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is the overall structural schematic diagram of the present utility model;
[0019] Figure 2 is the overall structural sectional view of the present utility model;
[0020] Figure 3 is the exploded structural schematic diagram of the material taking pipe in the present utility model;
[0021] Figure 4 is the structural schematic diagram of the connecting rod in the present utility model.
[0022] In the figure:
[0023] 1. Material taking pipe; 10. Feed pipe; 11. Discharge pipe; 111. Slot; 12. Fixed ring; 121. Limit bolt; 13. Baffle plate; 14. Grip; 15. Housing; 151. Discharge port; 152. Connection groove; 16. Connecting rod; 161. Limiting ring; 17. Handle; 18. Discharge groove. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0025] This embodiment provides a technical solution:
[0026] Please refer to Figures 1 - 4 As shown, a rapid sampling mechanism for glass microfiber material includes a sampling tube 1. The sampling tube 1 has a hollow structure. Feeding tubes 10 are installed near the bottom ends of both side walls of the sampling tube 1, and a discharging tube 11 is installed near the upper part of the front end face of the sampling tube 1; a fixing ring 12 is coaxially fixed at the top end of the sampling tube 1, and a limit bolt 121 is threadedly connected to the fixing ring 12; a discharging groove 18 is opened at the bottom end of the sampling tube 1; a liftable housing 15 is installed inside the sampling tube 1, and a discharging port 151 is opened below the front end face of the housing 15. When the discharging port 151 is communicated with the discharging tube 11, the sample inside the housing 15 can be discharged through the discharging tube 11; connecting grooves 152 are opened on both the left and right side walls of the housing 15. When the connecting grooves 152 are communicated with the feeding tubes 10, the sample can enter the housing 15 through the feeding tubes 10; a connecting rod 16 is coaxially fixed at the top end of the housing 15. The top end of the connecting rod 16 passes through the top end of the housing 15 and the fixing ring 12, and the end of the limit bolt 121 abuts against the outer wall of the connecting rod 16; a handle 17 is fixed at the top end of the connecting rod 16.
[0027] Furthermore, a slot 111 is opened at the top end of the discharging tube 11, and a baffle plate 13 is inserted into the slot 111, and the overall shape of the baffle plate 13 is L-shaped. The setting of the baffle plate 13 facilitates controlling the discharging, and thus facilitates transferring the sample after sampling.
[0028] In this embodiment, grip handles 14 are fixed near the top ends of both the left and right side walls of the sampling tube 1, and anti-slip sleeves are sleeved outside the grip handles 14. The grip handles 14 facilitate holding the device, improving the convenience of operation. The setting of the anti-slip sleeves increases the friction with the hand, thereby improving the stability and firmness when holding.
[0029] In this embodiment, a limit ring 161 is coaxially fixed near the bottom end of the connecting rod 16, and the limit ring 161 is fixedly connected to the connecting rod 16 by bolts. When the connecting rod 16 moves upward and the limit ring 161 abuts against the inner top of the sampling tube 1, the housing 15 is limited, and at this time the discharging port 151 is communicated with the discharging tube 11, thus facilitating discharging the sample.
[0030] In this embodiment, the opening of the feed pipe 10 is obliquely upward, and the opening of the discharge pipe 11 is obliquely downward. On the one hand, the obliquely upward shape facilitates the entry of the sample into the feed pipe 10, which is convenient for sampling. On the other hand, the obliquely downward shape facilitates the discharge of the sample through the discharge pipe 11, which is beneficial for discharging.
[0031] In this embodiment, the sampling pipe 1, the feed pipe 10, and the discharge pipe 11 are of an integrally formed structure, and the sampling pipe 1, the feed pipe 10, and the discharge pipe 11 are all made of aluminum alloy. The integrally formed sampling pipe 1, feed pipe 10, and discharge pipe 11 have better structural strength, and the aluminum alloy material has the advantage of corrosion resistance, ensuring the service life of the sampling pipe 1, feed pipe 10, and discharge pipe 11.
[0032] In this embodiment, the size of the housing 15 is adapted to the inner cavity size of the sampling pipe 1, and the housing 15 is a finished product made of aluminum alloy. This design facilitates the smooth sliding of the housing 15 in the inner cavity of the sampling pipe 1, ensuring the stability of the housing 15 and facilitating the movement of the sample through the housing 15. At the same time, the aluminum alloy material has the advantage of corrosion resistance, ensuring the service life of the housing 15.
[0033] It can be understood that the bottom end of the sampling pipe 1 in this embodiment is sharp, which is beneficial for the sampling pipe 1 to be inserted into the glass microfibered material, facilitating the sampling operation.
[0034] During specific use, the user first inserts the bottom end of the sampling pipe 1 into the glass microfibered material, and immerses the feed pipes 10 on both sides into the glass microfibered material. At this time, the glass microfibered material enters the inner bottom of the housing 15 through the feed pipes 10 on both sides and the connecting grooves 152 on both sides. Subsequently, the user pulls up the handle 17, and the handle 17 drives the connecting rod 16 and the housing 15 to move upward. At this time, the connecting groove 152 disengages from the feed pipe 10, and the housing 15 moves upward along the inner cavity of the sampling pipe 1. When the limiting ring 161 abuts against the inner top of the sampling pipe 1, the user tightens the limiting bolt 121, and the connecting rod 16 is fixed, and the housing 15 is fixed. At the same time, the discharge port 151 is communicated with the discharge pipe 11. Finally, the user pulls up the baffle plate 13, the discharge pipe 11 is opened, and the sample of the glass microfibered material is discharged through the discharge pipe 11, and the user can collect it with a container.
[0035] The above has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present utility model and are not used to limit the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. A glass microfiber material rapid sampling mechanism, comprising a sampling tube (1), characterized in that: The material taking pipe (1) is of a hollow structure. A feeding pipe (10) is installed near the bottom end of the two side walls of the material taking pipe (1), and a discharge pipe (11) is installed near the top of the front end of the material taking pipe (1). A fixing ring (12) is coaxially fixed at the top of the material taking pipe (1), and a limit bolt (121) is threadedly connected to the fixing ring (12). A discharge groove (18) is provided at the bottom end of the material taking pipe (1). A liftable shell (15) is installed inside the material taking pipe (1), and a discharge port (151) is provided at the lower part of the front end surface of the shell (15). When the discharge port (151) is connected to the discharge pipe (11), the sample in the shell (15) can be discharged through the discharge pipe (11); the left and right side walls of the shell (15) are both provided with connecting grooves (152). When the connecting grooves (152) are connected to the feed pipe (10), the sample can enter the shell (15) through the feed pipe (10); A connecting rod (16) is coaxially fixed at the top of the housing (15), the top of the connecting rod (16) passes through the top of the housing (15) and the fixing ring (12), and the end of the limiting bolt (121) is pressed against the outer wall of the connecting rod (16); a handle (17) is fixed at the top of the connecting rod (16).
2. The glass microfiber material rapid sampling mechanism according to claim 1, characterized in that: The top end of the discharge pipe (11) is provided with a slot (111), a material blocking plate (13) is inserted into the slot (111), and the overall shape of the material blocking plate (13) is L-shaped.
3. The glass microfiber material rapid sampling mechanism according to claim 1, characterized in that: A handle (14) is fixed to the left and right side walls of the material taking tube (1) near the top, and an anti-slip sleeve is provided on the outside of the handle (14).
4. The glass microfiber material rapid sampling mechanism according to claim 1, characterized in that: A limiting ring (161) is coaxially fixed on the connecting rod (16) near the bottom end, and the limiting ring (161) is fixedly connected to the connecting rod (16) via bolts.
5. The glass microfiber material rapid sampling mechanism according to claim 1, characterized in that: The opening of the feed pipe (10) is inclined upward, and the opening of the discharge pipe (11) is inclined downward.
6. The glass microfiber material rapid sampling mechanism according to claim 1, characterized in that: The material taking pipe (1), the material feeding pipe (10) and the material discharging pipe (11) are integrally formed structures, and the material taking pipe (1), the material feeding pipe (10) and the material discharging pipe (11) are all manufactured products made of aluminum alloy.
7. The glass microfiber material rapid sampling mechanism according to claim 1, characterized in that: The size of the shell (15) is compatible with the inner cavity size of the material taking tube (1), and the shell (15) is a product made of aluminum alloy.