Snowflake salt brine water content based experiment table
By introducing a combination of a baffle plate and a threaded structure into the snowflake brine moisture content experimental platform, the problem of uncontrollable brine volume in the storage tank was solved, achieving quantitative water storage and improving the accuracy of the experiment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUNAN XIANGHENG SALT CHEM
- Filing Date
- 2025-04-25
- Publication Date
- 2026-05-15
AI Technical Summary
Traditional snowflake brine moisture content experimental setups lack quantitative water storage capabilities, resulting in uncontrollable brine storage levels in the storage tank and affecting experimental accuracy.
A snowflake brine moisture content experimental platform was designed. By combining a baffle plate with a threaded structure, the baffle plate can be vertically lifted and rotated and locked, dynamically adjusting the water storage volume and ensuring precise control of the water storage volume.
Precise adjustment of the storage volume of snowflake brine was achieved, ensuring the accuracy and reliability of experimental data.
Smart Images

Figure CN224236891U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of snowflake salt testing technology, and in particular to a snowflake salt brine moisture content basic experimental platform. Background Technology
[0002] The development background of the Snowflake Salt Brine Moisture Content Baseline Test Bench stems primarily from the limitations of traditional brine testing technologies in salt lake resource development and salt product production. In the comprehensive utilization of salt lake brine, the moisture content directly affects salt crystallization efficiency and product quality. For example, the national standard for edible salt clearly requires that raw brine undergo precise processing to ensure salt purity. Existing testing methods include drying and alcohol combustion methods.
[0003] Common snowflake brine moisture content experimental platforms only include the function of conducting experiments on the platform, but lack the function of quantitative water storage. This makes it impossible to guarantee the accuracy of the snowflake brine storage. It is easy for the snowflake brine to be stored in a storage box under the experimental platform, but the storage box cannot be adjusted. This makes it impossible to store a quantitative amount of snowflake brine according to the experimental needs, which affects the accuracy of the experiment.
[0004] Therefore, in response to the problem that the above-mentioned snowflake brine moisture content experimental platform lacks a quantitative water storage function, resulting in uncontrollable brine storage in the storage tank below the platform and inability to accurately adjust the water storage according to experimental needs, thus affecting the accuracy of experimental data, it is urgent to design a new type of snowflake brine moisture content experimental platform. Utility Model Content
[0005] To overcome the problem that common snowflake brine moisture content experimental platforms lack quantitative water storage function, resulting in uncontrollable brine storage in the storage tank under the platform, making it impossible to accurately adjust the water storage according to experimental needs, and affecting the accuracy of experimental data.
[0006] The technical solution of this utility model is as follows: a snowflake brine moisture content experimental platform, including an experimental platform plate; it also includes a snowflake brine storage tank, a baffle plate, a sealing gasket, a sealing groove, a slot, a handle, a rotating shaft, an internal screw head, and an external screw rod. The snowflake brine storage tank is arranged on the rear side of the bottom of the experimental platform plate. Several baffle plates are arranged at equal intervals inside the snowflake brine storage tank. A sealing gasket is arranged at the bottom end of the baffle plate. Several sealing grooves are opened at equal intervals at the bottom end of the snowflake brine storage tank corresponding to the position of the sealing gasket. Several slots are opened at equal intervals at the top of the snowflake brine storage tank corresponding to the position of the baffle plate. The sealing gasket is inserted into the sealing groove. A handle is connected to the top of the baffle plate through the slot. A rotating shaft is rotatably connected to the top of the handle. An internal screw head is arranged at the top of the rotating shaft. Several external screw rods are arranged at equal intervals at the bottom of the experimental platform corresponding to the position of the internal screw head.
[0007] Preferably, the corresponding number of baffles are lifted upwards using the corresponding number of handles until the inner screw head moves to the bottom of the outer screw. Then, the inner screw head is rotated so that the outer screw is screwed into the inner screw head, thus fixing the lifted baffles and increasing the volume of the snowflake brine storage tank. When the volume needs to be reduced, the corresponding number of inner screw heads are rotated so that the outer screw is screwed out from the inner screw head. At this time, the baffles fall downwards due to their own weight until the sealing gasket at the bottom of the baffles is engaged in the sealing groove. The baffles isolate the interior of the snowflake brine storage tank, realizing the function of quantitative water storage. This solves the problem of common snowflake brine moisture content experimental platforms, which only include the function of conducting experiments on the platform but lack the function of quantitative water storage. This makes it impossible to guarantee the accuracy of snowflake brine storage. It is easy for snowflake brine to be stored in a storage box under the experimental platform, but the storage box cannot adjust the storage volume. This makes it impossible to store a quantitative amount of snowflake brine according to experimental needs, affecting the accuracy of the experiment.
[0008] As a preferred option, four support legs are provided at the four corners of the bottom of the test bench, and each of the four support legs is equipped with a self-locking universal wheel at its bottom.
[0009] Preferably, a connecting groove is provided on the left end of the rear side of the top of the test bench, corresponding to the position of the snowflake brine storage tank, and a protective cover is provided on the left end of the rear side of the top of the test bench, corresponding to the position of the connecting groove.
[0010] Preferably, a handle is provided in the middle of the top of the protective cover, and a connecting frame is provided at the bottom of the protective cover, with the connecting frame inserted into the connecting groove.
[0011] As a preferred embodiment, a storage box is provided at the right end of the rear side of the top of the test bench, corresponding to the position of the protective cover. The interior of the storage box has several drawers arranged at equal intervals.
[0012] Preferably, the front side of the top of the test bench has several test area slots at equal intervals corresponding to the positions of the protective cover and the storage box.
[0013] Preferably, a drain pipe is installed at the bottom right side of the snowflake brine storage tank, and a connecting rod is installed at the top right side of the snowflake brine storage tank, with the top of the connecting rod connected to the bottom of the test bench.
[0014] The beneficial effects of this utility model are:
[0015] 1. By operating the corresponding number of handles, the corresponding baffle plate is vertically lifted until the inner screw head is aligned with the bottom of the outer screw. Then, the inner screw head is rotated to engage with the outer screw thread, thereby locking the raised baffle plate and expanding the effective volume of the snowflake brine storage tank. When the volume needs to be reduced, the designated inner screw head is rotated in the opposite direction to disengage from the outer screw. The baffle plate falls vertically back under gravity until its bottom sealing gasket is tightly embedded in the sealing groove to form a barrier. Through the dynamic division of the internal space of the snowflake brine storage tank by the baffle plate, the quantitative adjustment function of precise control of water storage is finally realized. Attached Figure Description
[0016] Figure 1 The diagram shown is a front view of the overall structure of a snowflake brine moisture content experimental platform according to this utility model.
[0017] Figure 2 The diagram shown is a bottom view of the overall structure of a snowflake brine moisture content experimental platform according to this utility model.
[0018] Figure 3 The diagram shown is a schematic diagram of the experimental platform structure of a snowflake brine moisture content experimental bench according to this utility model.
[0019] Figure 4 The diagram shown is a schematic representation of the structure of a snowflake brine storage tank for a snowflake brine moisture content experimental platform according to this utility model.
[0020] Figure 5 The diagram shown is a cross-sectional view of the snowflake brine storage tank on the experimental platform for measuring the water content of snowflake brine according to this utility model.
[0021] Figure 6 The diagram shown is a bottom view of the protective cover of the experimental platform for measuring the moisture content of snowflake brine according to this utility model.
[0022] Figure 7 The diagram shown is a schematic diagram of the water baffle structure of a snowflake brine moisture content experimental platform according to this utility model.
[0023] Explanation of reference numerals in the attached drawings: 1. Test bench; 2. Snowflake brine storage tank; 3. Water baffle; 4. Sealing gasket; 5. Sealing groove; 6. Groove; 7. Handle; 8. Shaft; 9. Internal thread; 10. External thread; 11. Support leg; 12. Self-locking caster wheel; 13. Connecting groove; 14. Protective cover; 15. Handle; 16. Connecting frame; 17. Storage box; 18. Drawer; 19. Test area groove; 20. Drain pipe; 21. Connecting rod. Detailed Implementation
[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0025] Please see Figures 1-7 This utility model provides an embodiment: a snowflake brine moisture content baseline test bench, including a test bench plate 1; it also includes a snowflake brine storage tank 2, baffle plates 3, sealing gaskets 4, sealing grooves 5, slots 6, handles 7, rotating shafts 8, internal screw heads 9, and external screws 10. The snowflake brine storage tank 2 is arranged on the rear side of the bottom of the test bench plate 1. Several baffle plates 3 are arranged at equal intervals inside the snowflake brine storage tank 2. Sealing gaskets 4 are arranged at the bottom ends of the baffle plates 3, and the bottom ends of the snowflake brine storage tank 2 are correspondingly sealed. The gasket 4 has several sealing grooves 5 at equal intervals. The top of the snowflake brine storage tank 2 has several slots 6 at equal intervals corresponding to the position of the baffle plate 3. The sealing gasket 4 is inserted into the sealing groove 5. The top of the baffle plate 3 is connected to a handle 7 through the slot 6. The top of the handle 7 is rotatably connected to a shaft 8. The top of the shaft 8 is provided with an internal thread 9. The bottom of the test bench 1 has several external threads 10 at equal intervals corresponding to the position of the internal thread 9. The corresponding number of baffle plates 3 are lifted upward by the corresponding number of handles 7. The process begins by rotating the inner screw head 9 until it reaches the bottom of the outer screw 10. Then, the inner screw head 9 is rotated so that the outer screw 10 is screwed into the inner screw head 9, thus fixing the raised baffle plate 3 and increasing the volume of the snowflake brine storage tank 2. When the volume needs to be reduced, the corresponding number of inner screw heads 9 are rotated so that the outer screw 10 is screwed out from the inner screw head 9. At this point, the baffle plate 3 falls downwards due to its own weight until the sealing gasket 4 at the bottom of the baffle plate 3 is engaged in the sealing groove 5. The baffle plate 3 isolates the interior of the snowflake brine storage tank 2, achieving a quantitative water storage function. This addresses the common problem of snowflake brine moisture content testing platforms, which only allow experiments to be conducted on the platform but lack quantitative water storage. This makes it difficult to guarantee the accuracy of snowflake brine storage, and it is easy for snowflake brine to be stored in a storage box under the testing platform, but the storage box cannot adjust the storage volume. This makes it impossible to store a quantitative amount of snowflake brine according to experimental needs, affecting the accuracy of the experiment.
[0026] Please see Figures 2-7In this embodiment, four support legs 11 are provided at the four corners of the bottom of the test bench 1. Each of the four support legs 11 is provided with a self-locking universal wheel 12 at its bottom end. The self-locking universal wheel 12 allows the test bench to move freely. A connecting groove 13 is provided at the left end of the rear top of the test bench 1, corresponding to the position of the snowflake brine storage tank 2. A protective cover 14 is provided at the left end of the rear top of the test bench 1, corresponding to the position of the connecting groove 13. The protective cover 14 prevents foreign objects from entering the interior of the snowflake brine storage tank 2. A handle 15 is provided in the middle of the top of the protective cover 14. A connecting frame 16 is provided at the bottom of the protective cover 14. The connecting frame 16 is inserted into the interior of the connecting groove 13. The insertion of the connecting frame 16 into the interior of the connecting groove 13 limits the position of the protective cover 14, preventing the protective cover 14 from shifting and causing the shielding to fail.
[0027] Please see Figures 1-7 In this embodiment, a storage box 17 is provided at the right end of the rear side of the top of the test bench 1, corresponding to the position of the protective cover 14. Several drawers 18 are arranged at equal intervals inside the storage box 17. Experimental tools are placed in sections through the drawers 18 in the storage box 17. Several test area slots 19 are opened at equal intervals on the front side of the top of the test bench 1, corresponding to the positions of the protective cover 14 and the storage box 17. The test area slots 19 are used to distinguish different experiments. A drain pipe 20 is provided at the bottom right side of the snowflake brine storage tank 2. A connecting rod 21 is provided on the right side of the top of the snowflake brine storage tank 2. The top of the connecting rod 21 is connected to the bottom of the test bench 1. The snowflake brine stored in the snowflake brine storage tank 2 can be discharged by opening the drain pipe 20.
[0028] During operation, the corresponding baffle plate 3 is vertically lifted by operating the corresponding number of handles 7 until the inner screw head 9 is aligned with the bottom end of the outer screw rod 10. Then, the inner screw head 9 is rotated to engage with the outer screw rod 10, thereby locking the lifted baffle plate 3 and expanding the effective volume of the snowflake brine storage tank 2. When the volume needs to be reduced, the designated inner screw head 9 is rotated in the opposite direction to disengage from the outer screw rod 10. The baffle plate 3 falls vertically back under gravity until its bottom sealing gasket 4 is tightly embedded in the sealing groove 5 to form a barrier. Through the dynamic division of the internal space of the snowflake brine storage tank 2 by the baffle plate 3, after the volume of the snowflake brine storage tank 2 is adjusted, the protective cover 14 is opened by the handle 15, and then the snowflake brine is poured into the snowflake brine storage tank 2 for storage, thus realizing the function of quantitative water storage.
[0029] Through the above steps, the corresponding number of baffle plates 3 are lifted upwards using the corresponding number of handles 7 until the inner screw head 9 moves to the bottom of the outer screw 10. Then, the inner screw head 9 is rotated so that the outer screw 10 is screwed into the inner screw head 9, thus fixing the lifted baffle plate 3 and increasing the volume of the snowflake brine storage tank 2. When it is necessary to reduce the volume, the corresponding number of inner screw heads 9 are rotated so that the outer screw 10 is screwed out from the inner screw head 9. At this time, the baffle plate 3 falls downwards due to its own weight until the sealing gasket 4 at the bottom of the baffle plate 3 is engaged. Inside the tank 5, the interior of the snowflake brine storage tank 2 is separated by a baffle plate 3, realizing the function of quantitative water storage. This solves the problem of common snowflake brine moisture content experimental platforms, which only include the function of conducting experiments on the platform but lack the function of quantitative water storage. This makes it impossible to guarantee the accuracy of the snowflake brine storage volume. It is easy for snowflake brine to be stored in a storage box under the experimental platform, but the storage box cannot adjust the storage volume. This makes it impossible to store a quantitative amount of snowflake brine according to the experimental needs, affecting the accuracy of the experiment.
Claims
1. A snowflake brine moisture content baseline experimental platform, comprising an experimental platform plate (1); characterized in that: It also includes a snowflake brine storage tank (2), baffles (3), sealing gaskets (4), sealing grooves (5), slots (6), handles (7), rotating shafts (8), internal screw heads (9), and external screws (10). The snowflake brine storage tank (2) is set on the rear side of the bottom of the test bench (1). Several baffles (3) are set at equal intervals inside the snowflake brine storage tank (2). Sealing gaskets (4) are set at the bottom of the baffles (3). The bottom of the snowflake brine storage tank (2) corresponds to the position of the sealing gaskets (4) at equal intervals. Several sealing grooves (5) are provided at intervals. Several slots (6) are provided at equal intervals on the top of the snowflake brine storage tank (2) corresponding to the position of the baffle plate (3). The sealing gasket (4) is inserted into the interior of the sealing groove (5). The top of the baffle plate (3) is connected to a handle (7) through the slot (6). The top of the handle (7) is rotatably connected to a rotating shaft (8). The top of the rotating shaft (8) is provided with an internal screw head (9). Several external screws (10) are provided at equal intervals on the bottom of the test bench (1) corresponding to the position of the internal screw head (9).
2. The experimental platform for measuring the water content of snowflake brine according to claim 1, characterized in that: Four support legs (11) are provided at the four corners of the bottom of the test bench (1), and the bottom of each of the four support legs (11) is provided with a self-locking universal wheel (12).
3. The experimental platform for measuring the water content of snowflake brine according to claim 1, characterized in that: A connecting groove (13) is provided on the left end of the rear top of the test bench (1) corresponding to the position of the snowflake brine storage tank (2), and a protective cover (14) is provided on the left end of the rear top of the test bench (1) corresponding to the position of the connecting groove (13).
4. The experimental platform for measuring the water content of snowflake brine according to claim 3, characterized in that: A handle (15) is provided in the middle of the top of the protective cover (14), and a connecting frame (16) is provided at the bottom of the protective cover (14). The connecting frame (16) is inserted into the interior of the connecting groove (13).
5. The experimental platform for measuring the water content of snowflake brine according to claim 4, characterized in that: A storage box (17) is provided on the right side of the rear top of the test bench (1), corresponding to the position of the protective cover (14). The interior of the storage box (17) is provided with several drawers (18) at equal intervals.
6. The experimental platform for measuring the water content of snowflake brine according to claim 5, characterized in that: Several test area slots (19) are provided at equal intervals on the front side of the top of the test bench (1), corresponding to the positions of the protective cover (14) and the storage box (17).
7. The experimental platform for measuring the water content of snowflake brine according to claim 1, characterized in that: A drain pipe (20) is installed at the bottom right side of the snowflake brine storage tank (2), and a connecting rod (21) is installed at the top right side of the snowflake brine storage tank (2). The top of the connecting rod (21) is connected to the bottom of the test bench (1).