Sodium pyroantimonate production transportation tank
Through the design of the distance adjustment module and the stabilization module, the sodium pyromonate production transport tanks are used to stabilize and fix the tanks of different sizes, solving the problems of small scope of application and low flexibility in the prior art, and improving the flexibility and stability of transportation.
Patent Information
- Application Number
- CN202422533406.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-21
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-10-21
AI Technical Summary
The existing sodium pyromonate production transport tanks have small application scope and low flexibility, so they cannot effectively fix tank bodies of different sizes.
The distance adjustment component and the stabilization component are adopted. The distance adjustment component adjusts the distance of the support component through bidirectional threaded columns and mobile plates. The stabilization component is tied and fixed by fixed straps, achieving suitable and stable fixation for tank bodies of different sizes.
The scope of application of transport tanks has been expanded, the flexibility and stability of transportation has been increased, and the safety of sodium pyromonate has been ensured during transportation.
Smart Images

Figure CN223174652U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of sodium pyroantimonate production and transportation, in particular to a sodium pyroantimonate production and transportation tank. Background Art
[0002] Sodium pyroantimonate is an inorganic salt compound of antimony, with low toxicity. It is produced from antimony products such as antimony oxide through alkali and hydrogen peroxide. It appears as a white powder, with two forms: granular crystals and equiaxed crystals. Its melting point is 1200°C, boiling point is 1400°C, soluble in tartaric acid, sodium sulfide solution, concentrated sulfuric acid, slightly soluble in alcohol, insoluble in acetic acid, dilute alkali and dilute inorganic acids, insoluble in cold water, and has good chemical stability. It is mainly used as a fining agent and defoaming agent for photovoltaic solar glass, black-and-white, and color display tube glass. It is also used as a fining and defoaming agent for high-grade glass such as glass fiber, gem glass, and high-grade glass tableware. It is more widely used as a flame retardant for electronic manufacturing, engineering thermoplastics, and rubber, such as flame-retardant electronic device casings, flame-retardant carriages, and flame-retardant wires. It is also used as a flame retardant for textiles, plastics, and building materials, etc.
[0003] During the transportation of sodium pyroantimonate, it is necessary to prevent moisture, rain, and packaging damage. In the authorized Chinese utility model patent "Publication No.: CN215973232U, Name: An explosion-proof, leak-proof, and corrosion-resistant temporary storage tank for chemical reagent transportation", by setting a slidable fixed base and installing a fiberglass storage tank on the fixed base, when the transport vehicle starts or stops, the fiberglass storage tank and the chemical reagent contained therein can move together, thereby reducing the amplitude of the chemical reagent shaking in the fiberglass storage tank, and further reducing the risk of chemical reagent transportation. However, in the above application, only tanks with fixed dimensions can be supported and fixed, resulting in a small application range of the above application and affecting the flexibility in the production and transportation of sodium pyroantimonate. Summary of the Utility Model
[0004] The technical problem to be solved by the utility model is to overcome the defects of small application range and low flexibility in the prior art, and provide a sodium pyroantimonate production and transportation tank.
[0005] In order to achieve the above-mentioned invention purpose, the utility model adopts the following technical solutions:
[0006] The utility model provides a sodium pyroantimonate production and transportation tank, including a support platform and a storage tank. The storage tank is arranged above the support platform, and the storage tank is used for storing sodium pyroantimonate.
[0007] Support blocks, two groups of support components are arranged above the support platform. The two groups of support components include two symmetrically distributed support blocks, and the support blocks are used for supporting the storage tank.
[0008] The distance - adjusting component, the distance - adjusting component is slidably connected to the support platform, the top of the distance - adjusting component is connected to the bottom of the support block, and the distance - adjusting component is used to adjust the distance between two groups of support components;
[0009] The stabilizing component, the stabilizing component is connected to the side of the support platform, and the stabilizing component is used to bundle and fix the storage tank.
[0010] In this technical solution, the distance - adjusting component can be used to adjust the distance between two groups of support components, so as to install and fix storage tanks with different lengths and sizes, expand the scope of application, increase the flexibility during the use of the transport tank. At the same time, the stabilizing component can be used to bundle and fix the storage tank, increasing the stability of the storage tank during transportation, thus facilitating the transportation of sodium pyroantimonate.
[0011] For the sodium pyroantimonate production and transport tank, the distance - adjusting component includes a bidirectional threaded column. The bidirectional threaded column is arranged below the support platform, and both ends of the bidirectional threaded column are rotatably connected with fixing plates. The top of the fixing plate is connected to the bottom of the support platform;
[0012] The surface of the bidirectional threaded column is threadedly connected with two symmetrically distributed moving plates. The top of the moving plate is connected with two symmetrically distributed connecting columns, and the tops of the two connecting columns are both connected with support blocks.
[0013] In this technical solution, the distance - adjusting component can be used to adjust the distance between two groups of support components.
[0014] For the sodium pyroantimonate production and transport tank, a sliding opening is formed on the top surface of the support platform, and the connecting column is slidably and penetratingly connected to the support platform through the sliding opening.
[0015] In this technical solution, the connecting column can connect the moving plate and the support block.
[0016] For the sodium pyroantimonate production and transport tank, one end of the bidirectional threaded column is connected with a power source, and the power source is installed on one side of the fixing plate.
[0017] In this technical solution, the power source can provide driving force for the rotation of the bidirectional threaded column.
[0018] For the sodium pyroantimonate production and transport tank, a plurality of anti - deviation tracks are connected between the two fixing plates, and the surface of the anti - deviation track is slidably and penetratingly connected with the moving plate.
[0019] In this technical solution, the anti - deviation track can limit the moving track of the moving plate.
[0020] For the sodium pyroantimonate production and transport tank, the stabilizing component includes a plurality of fixed straps, and sliding collars are connected to both ends of the fixed straps;
[0021] The sliding collar is connected to the surface of the rotating shaft in a slidable but non-rotatable manner, and both ends of the rotating shaft are rotatably connected to the side surfaces of the support platforms.
[0022] In this technical solution, the storage tank can be bundled and fixed by using the stabilizing component.
[0023] For the sodium pyroantimonate production and transportation tank described above, two symmetrically distributed rotating shafts are rotatably connected to the side surfaces of the support platforms, and driving sprockets are connected to both ends of the two rotating shafts;
[0024] The side surfaces of the driving sprockets are meshed and connected with a driving chain, and the two driving sprockets are drivingly connected through the driving chain;
[0025] One of the driving sprockets is connected to the output end of the driving source, and installation shells are connected to both sides of the support platform, and the driving source is installed in the inner cavity of the installation shell.
[0026] In this technical solution, the synchronous rotation of the rotating shafts on both sides can be achieved by using the driving sprockets and the driving chain.
[0027] For the sodium pyroantimonate production and transportation tank described above, a plurality of anti-rotation grooves are formed on the surface of the rotating shaft, a plurality of anti-rotation protrusions are connected to the inner wall of the sliding collar, and the anti-rotation protrusions are arranged in the anti-rotation grooves.
[0028] In this technical solution, the sliding collar can slide but not rotate on the rotating shaft by using the anti-rotation protrusions and the anti-rotation grooves.
[0029] For the sodium pyroantimonate production and transportation tank described above, a pushing handrail is installed on the top of the installation shell.
[0030] In this technical solution, it is convenient to push and pull the transportation tank by using the pushing handrail.
[0031] For the sodium pyroantimonate production and transportation tank described above, a plurality of traveling wheels are installed at the bottom of the support platform.
[0032] In this technical solution, it is convenient to move the transportation tank by using the traveling wheels.
[0033] On the basis of conforming to the common knowledge in the art, the above preferred conditions can be combined arbitrarily to obtain various preferred embodiments of the present utility model.
[0034] Due to the adoption of the above technical solution, the present utility model has the following beneficial effects:
[0035] The utility model utilizes the distance adjusting component to adjust the distance between two groups of supporting components, so as to install and fix storage tanks with different length dimensions, expand the applicable range, increase the flexibility during the use of the transportation tank, and at the same time utilize the stabilizing component to bundle and fix the storage tank, increase the stability of the storage tank during transportation, and thus facilitate the transportation of sodium pyroantimonate. BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Figure 1 is a schematic structural diagram of the utility model;
[0037] Figure 2 is Figure 1 the overall internal structural schematic diagram of;
[0038] Figure 3 is Figure 1 the overall side view structural schematic diagram of;
[0039] Figure 4 is the connection relationship structural schematic diagram between the distance adjusting component and the support block;
[0040] Figure 5 is the connection relationship structural schematic diagram between the rotating shaft, the transmission sprocket, the transmission chain and the driving source;
[0041] Figure 6 is Figure 3 the partial enlarged structural schematic diagram at A in;
[0042] DESCRIPTION OF THE REFERENCE NUMERALS
[0043] 1, support platform;
[0044] 2, storage tank;
[0045] 3, support block;
[0046] 4, distance adjusting component; 41, bidirectional threaded column; 42, fixing plate; 43, moving plate; 44, connecting column; 45, power source; 46, anti-deviation track;
[0047] 5, stabilizing component; 51, fixed binding strap; 52, sliding collar; 53, rotating shaft; 54, transmission sprocket; 55, transmission chain; 56, driving source; 57, installation housing;
[0048] 6, pushing handrail;
[0049] 7, walking wheel. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0050] The present utility model can be more detailedly explained through the following embodiments. The present utility model is not limited to the following embodiments. The purpose of disclosing the present utility model is to protect all changes and improvements within the scope of the present utility model;
[0051] Figures 1 to 6 The following is a schematic structural diagram of an embodiment of the sodium pyroantimonate production and transportation tank of the present utility model. Connect the power source 45 and the drive source 56 to the switch and the power supply respectively;
[0052] The sodium pyroantimonate production and transportation tank includes a support platform 1 and a storage tank 2. The storage tank 2 is arranged above the support platform 1, and the storage tank 2 is used for storing sodium pyroantimonate.
[0053] Support blocks 3. There are two groups of support components arranged above the support platform 1. The two groups of support components include two symmetrically distributed support blocks 3, and the support blocks 3 are used to support the storage tank 2.
[0054] The distance adjustment component 4 is slidably connected to the support platform 1. The top of the distance adjustment component 4 is connected to the bottom of the support block 3, and the distance adjustment component 4 is used to adjust the distance between the two groups of support components.
[0055] The stability component 5 is connected to the side of the support platform 1, and the stability component 5 is used to bundle and fix the storage tank 2.
[0056] In this technical solution, the distance between the two groups of support components can be adjusted by using the distance adjustment component 4, so that the storage tank 2 with different length dimensions can be installed and fixed, the applicable range is expanded, the flexibility during the use of the transportation tank is increased, and at the same time, the storage tank 2 can be bundled and fixed by using the stability component 5, and the stability of the storage tank 2 during transportation is increased, so as to facilitate the transportation of sodium pyroantimonate.
[0057] The distance adjustment component 4 includes a bidirectional threaded column 41. The bidirectional threaded column 41 is arranged below the support platform 1. Both ends of the bidirectional threaded column 41 are rotatably connected with fixing plates 42, and the top of the fixing plate 42 is connected to the bottom of the support platform 1.
[0058] Two symmetrically distributed moving plates 43 are threadedly connected to the surface of the bidirectional threaded column 41. The top of the moving plate 43 is connected with two symmetrically distributed connecting columns 44, and the top ends of the two connecting columns 44 are both connected with the support block 3.
[0059] In this technical solution, the distance between the two groups of support components can be adjusted by using the distance adjustment component 4.
[0060] A sliding opening is formed on the top surface of the support platform 1, and the connecting column 44 is slidably penetrated and connected to the support platform 1 through the sliding opening.
[0061] In this technical solution, the connecting column 44 can be connected with the moving plate 43 and the support block 3.
[0062] One end of the bidirectional threaded column 41 is connected with a power source 45, and the power source 45 is installed on one side of the fixing plate 42.
[0063] In this technical solution, the power source 45 can provide a driving force for the rotation of the bidirectional threaded column 41.
[0064] A plurality of anti-deviation tracks 46 are connected between the two fixing plates 42, and the surface of the anti-deviation track 46 is slidably and penetratively connected with the moving plate 43.
[0065] In this technical solution, the moving track of the moving plate 43 can be limited by the anti-deviation track 46.
[0066] During use, according to the length of the storage tank 2, the power source 45 drives the bidirectional threaded column 41 to rotate, thereby driving the moving plates 43 on both sides to move towards or away from each other along the anti-deviation track 46, thereby driving the connecting columns 44 to move in the same direction, and further driving the supporting blocks 3 to move in the same direction. At this time, the supporting blocks 3 on both sides can move towards or away from each other, so that the supporting blocks 3 can support and lift storage tanks 2 of different lengths.
[0067] The stabilizing assembly 5 includes a plurality of fixing straps 51, and sliding collar 52s are connected to both ends of the fixing straps 51;
[0068] The sliding collar 52 is slidably and non-rotatably penetrated through the surface of the rotating shaft 53, and both ends of the rotating shaft 53 are rotatably connected to the side surface of the support table 1.
[0069] In this technical solution, the stabilizing assembly 5 can bundle and fix the storage tank 2.
[0070] Two symmetrically distributed rotating shafts 53 are rotatably connected to the side surface of the support table 1, and transmission sprockets 54 are connected to both ends of the two rotating shafts 53;
[0071] The side surface of the transmission sprocket 54 is meshed and connected with a transmission chain 55, and the two transmission sprockets 54 are connected by the transmission chain 55;
[0072] One of the transmission sprockets 54 is connected to the output end of the drive source 56, and mounting shells 57 are connected to both sides of the support table 1, and the drive source 56 is installed in the inner cavity of the mounting shell 57.
[0073] In this technical solution, the transmission sprockets 54 and the transmission chain 55 can make the rotating shafts 53 on both sides rotate synchronously.
[0074] A plurality of anti-rotation grooves are formed on the surface of the rotating shaft 53, and a plurality of anti-rotation protrusions are connected to the inner wall of the sliding collar 52, and the anti-rotation protrusions are arranged in the anti-rotation grooves.
[0075] In this technical solution, the anti-rotation protrusion and the anti-rotation groove are used to enable the sliding collar 52 to slide but not rotate on the rotating shaft 53.
[0076] After the storage tank 2 is placed, a plurality of sliding collars 52 are respectively slid along the rotating shaft 53, so as to adjust the positions of the plurality of fixing straps 51. Then, the driving source 56 is used to drive the corresponding transmission sprocket 54 to rotate, thereby driving the transmission chain 55 to rotate, and further driving the other transmission sprocket 54 to rotate. When the two transmission sprockets 54 rotate, they can respectively drive the rotating shafts 53 on both sides to rotate. When the rotating shafts 53 rotate, they can drive the sliding collars 52 to rotate, so as to wind up the fixing straps 51. At this time, the storage tank 2 can be tied up by the fixing straps 51 to increase the stability of the storage tank 2 during transportation.
[0077] So that sodium pyroantimonate can be put into the storage tank 2 for transportation, and then taken out of the storage tank 2 after arriving at the destination, and the transportation of sodium pyroantimonate is repeated in a cycle;
[0078] Or sodium pyroantimonate can be directly put into the storage tank 2 for transportation, and the entire storage tank 2 is taken out after arriving at the destination, and a new storage tank 2 is placed for the next transportation, and the transportation of sodium pyroantimonate is repeated in a cycle.
[0079] A pushing handrail 6 is installed on the top of the installation housing 57.
[0080] In this technical solution, the pushing handrail 6 can be used to facilitate the pushing and pulling of the transportation tank.
[0081] A plurality of walking wheels 7 are installed at the bottom of the support table 1.
[0082] In this technical solution, the walking wheels 7 can be used to facilitate the movement of the transportation tank.
[0083] The power source 45 and the driving source 56 are motors or other devices that can output rotational kinetic energy.
[0084] The parts not detailed in this utility model are prior art.
Claims
1. A sodium pyroantimonate production and transportation tank, comprising a support platform (1) and a storage tank (2), the storage tank (2) is arranged above the support platform (1), and the storage tank (2) is used for storing sodium pyroantimonate, characterized in that, The sodium pyroantimonate production and transportation tank further comprises: a support block (3); two groups of support components are provided above the support platform (1); each group of support components comprises two symmetrically distributed support blocks (3); the support blocks (3) are used to support the storage tank (2); A distance adjustment component (4), wherein the distance adjustment component (4) is slidably connected to the support platform (1), the top of the distance adjustment component (4) is connected to the bottom of the support block (3), and the distance adjustment component (4) is used to adjust the distance between the two groups of support components; A stabilizing component (5) is connected to the side of the support platform (1), and the stabilizing component (5) is used to bind and fix the storage tank (2).
2. The sodium pyroantimonate production and transportation tank according to claim 1, wherein: The distance adjustment assembly (4) comprises a bidirectional threaded column (41), the bidirectional threaded column (41) is arranged below the support platform (1), both ends of the bidirectional threaded column (41) are rotatably connected to a fixed plate (42), and the top of the fixed plate (42) is connected to the bottom of the support platform (1); The surface of the bidirectional threaded column (41) is threadedly connected to two symmetrically distributed moving plates (43), the top of the moving plate (43) is connected to two symmetrically distributed connecting columns (44), and the tops of the two connecting columns (44) are both connected to support blocks (3).
3. The sodium pyroantimonate production and transportation tank according to claim 2, characterized in that: The top surface of the support platform (1) is provided with a sliding opening, and the connecting column (44) is slidably connected to the support platform (1) through the sliding opening.
4. The sodium pyroantimonate production and transportation tank according to claim 2, characterized in that: One end of the bidirectional threaded column (41) is connected to a power source (45), and the power source (45) is installed on one side of the fixing plate (42).
5. The sodium pyroantimonate production and transportation tank according to claim 2, characterized in that: A plurality of anti-deflection rails (46) are connected between the two fixed plates (42), and the surfaces of the anti-deflection rails (46) are slidably connected to the movable plate (43).
6. The sodium pyroantimonate production and transportation tank according to claim 1, characterized in that: The stabilizing assembly (5) comprises a plurality of fixing straps (51), and both ends of the fixing straps (51) are connected to sliding rings (52); The sliding collar (52) is slidably connected to the surface of the rotating shaft (53) but not rotatably connected thereto, and both ends of the rotating shaft (53) are rotatably connected to the side surfaces of the support platform (1).
7. The sodium pyroantimonate production and transportation tank according to claim 6, characterized in that: The support platform (1) is rotatably connected to two rotating shafts (53) that are symmetrically distributed on the left and right sides, and both ends of the two rotating shafts (53) are connected to transmission sprockets (54); The side surface of the transmission sprocket (54) is meshedly connected with the transmission chain (55), and the two transmission sprockets (54) are transmission-connected via the transmission chain (55); One of the transmission sprockets (54) is connected to the output end of the driving source (56); Both sides of the support platform (1) are connected to mounting shells (57), and the driving source (56) is installed in the inner cavity of one of the mounting shells (57).
8. The sodium pyroantimonate production and transportation tank according to claim 6, wherein: The surface of the rotating shaft (53) is provided with a plurality of anti-rotation grooves, and the inner wall of the sliding collar (52) is connected with a plurality of anti-rotation protrusions, which are arranged in the anti-rotation grooves.
9. The sodium pyroantimonate production and transportation tank according to claim 7, wherein: The tops of the two mounting shells (57) are both equipped with sliding handrails (6).
10. The sodium pyroantimonate production and transportation tank according to claim 1, characterized in that: A plurality of running wheels (7) are installed at the bottom of the support platform (1).
Citation Information
Patent Citations
Explosion-proof, leakage-proof and corrosion-resistant temporary storage tank for chemical reagent transportation
CN215973232U