Pressing type quantitative salt tank capable of solving salt blocking problem
By designing a press-type quantitative salt container, and utilizing the combination of a slider and a friction plate, the problems of salt jamming and contamination in traditional salt containers are solved, achieving smooth flow of salt particles and quantitative control, thus improving the user experience and hygiene safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional salt containers are prone to moisture and clumping, frequently causing salt jams. The salt outlet is also easily contaminated, and it is difficult to accurately control the amount of salt.
Design a press-type quantitative salt container. Through the cooperation of a slider and a friction plate, the salt particles can be smoothly discharged. A gear shaft drives a paddle to break up the salt blocks. An inverted structure is set to prevent contamination, and an inner guide cover ensures even salt distribution.
It solves the problem of salt getting stuck, prevents external dirt from contaminating the food, and enables single-quantity salt dispensing, thus improving cooking efficiency and hygiene safety.
Smart Images

Figure CN224039045U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to salt tank technical field, specifically, press type ration salt tank of solving card salt problem. BACKGROUND
[0002] In daily life, salt tank as the container of storing and taking salt, plays an indispensable role, however, the existing traditional salt tank has many obvious defects, and brings poor user experience.
[0003] The salt in the traditional salt tank is easy to be damp and caked, forming salt block, which not only destroys the original loose particle state of salt, but also makes it extremely inconvenient to take salt, once the salt block is formed, it is difficult to get the appropriate amount of salt whether using a spoon or pouring, which seriously affects the cooking efficiency and seasoning accuracy; The phenomenon of salt block is also very common, when pouring salt through the salt outlet of the salt tank, salt particles often extrude and block each other, causing the salt to flow out smoothly, and the user has to shake the salt tank repeatedly, or even use chopsticks to dredge, which is tedious and time-consuming, greatly affecting the operation fluency of the user during cooking; The salt outlet of the traditional salt tank is usually directly exposed to the external environment without any effective protection measures, which makes dust, hair, moisture and other external dirt easily contact the salt outlet, and then pollute the salt in the tank, the contaminated salt is not only in a poor sanitary condition, but also may affect the health if consumed for a long time.
[0004] In addition, the traditional salt tank lacks a design for precise control of salt amount, and it is difficult for the user to judge whether the amount of salt poured is appropriate, and the amount of salt may be too much or too little, too much salt will make the dish too salty, affecting the taste, and too little salt will result in insufficient seasoning, which cannot meet the cooking demand. INVENTION CONTENTS
[0005] The utility model aims at providing a press type ration salt tank that can solve the problem of salt block and external dirt pollution.
[0006] The embodiment of the utility model is implemented as follows:
[0007] The utility model embodiment provides a press type ration salt tank that can solve the problem of salt block, which comprises a bottle body;
[0008] The bottom of the bottle body is provided with an outer cover, the inner part of the outer cover has a separation layer, and the end of the bottle body close to the outer cover is threadedly connected to the outer cover and abuts against the separation layer;
[0009] The separation layer is provided with a salt inlet, and a sliding block is arranged on the side of the separation layer away from the bottle body, the sliding block has a salt storage chamber, the sliding block is slidably connected to the side of the separation layer away from the bottle body, and the salt storage chamber and the salt inlet are in communication or disconnected.
[0010] The side of the sliding block away from the separation layer is provided with an inner cover, the top surface of the inner cover abuts against the sliding block and is clamped to the outer cover, the top surface of the inner cover is provided with a salt outlet, and the salt outlet and the salt storage chamber are in communication or disconnected.
[0011] In use, an operator holds the bottle body, presses the button to push the sliding block inside the outer cover to slide between the separation layer and the inner cover, when the sliding block does not move, the salt in the bottle body enters the salt storage chamber through the salt inlet, when the sliding block moves, the salt storage chamber communicates with the salt outlet, and the salt in the salt storage chamber is discharged through the salt outlet, realizing quantitative salt sprinkling.
[0012] The press-type quantitative salt tank disclosed in the embodiment can solve the salt jamming problem. When the sliding block moves forward and backward, the salt particles in the salt storage chamber move relative to the first friction plate and the second friction plate, promoting the salt particles to fall out of the salt storage chamber through the salt outlet, avoiding salt jamming. The gear shaft drives the rabbet to perform a sweeping action, so that the salt particles can smoothly fall into the salt storage chamber, and the press-type quantitative salt tank has the beneficial effects of not easily jamming salt, not easily polluting salt by external dirt, and facilitating single quantitative salt discharge.
[0013] Optionally, the side of the separation layer away from the bottle body has a first friction plate and a second friction plate, the first friction plate and the second friction plate are respectively located on the two sides of the salt inlet and are mutually symmetrical, the inside of the sliding block has a first guide surface and a second guide surface which are mutually symmetrical, the first friction plate and the second friction plate are respectively embedded in the first guide surface and the second guide surface, and the sliding block slides along the axial direction of the first friction plate and the second friction plate.
[0014] In this way, the sliding block can slide along the long direction of the first friction plate and the second friction plate, and has a guiding effect.
[0015] Optionally, the first guide surface and the second guide surface have a first salt guide plate and a second salt guide plate which are arranged symmetrically, and the salt storage chamber is located in a cavity surrounded by the first friction plate, the second friction plate, the first salt guide plate and the second salt guide plate.
[0016] Thus, when the sliding block slides on the first and second friction plates, the salt particles in the salt storage chamber are pushed to move, and the salt storage chamber is used to store a certain amount of salt, so that the salt weight can be controlled when the salt is spilled, and the salt blocking phenomenon is avoided, and the outside dirt is prevented from contacting the salt in the bottle body.
[0017] Optionally, a press hole is formed in the radial direction of the outer cover, the press hole penetrates one side wall of the outer cover, a slidable button is arranged in the press hole, the button has a catch tooth at one end close to the sliding block, the sliding block has a first buckle groove at one end close to the button, and the catch tooth is connected to the first buckle groove.
[0018] Thus, the button is pressed to push the sliding block to move, and the salt storage chamber on the sliding block is connected or disconnected with the salt inlet or the salt outlet, so that a small amount of salt is filled in the salt storage chamber to control the amount of salt.
[0019] Optionally, the sliding block has a cross shaft at one end away from the button, the cross shaft has a positioning ring corresponding to the inner wall of the outer cover, a spring is arranged between the positioning ring and the cross shaft, one end of the spring is elastically abutted in the positioning ring, and the other end of the spring is elastically sleeved on the cross shaft.
[0020] Thus, the spring is arranged to always push the button out of the press hole when the sliding block is not working, the button is pressed to push the sliding block to slide and make the salt storage chamber communicate with the salt outlet when the salt is needed to be spilled, the purpose of spilling salt is achieved, the button is released, the sliding block is pushed by the spring to the button, the button is popped out, the salt storage chamber communicates with the salt inlet, and the salt in the bottle body is filled into the salt storage chamber.
[0021] Optionally, the side away from the bottle body of the separation layer further has a first sleeve ring penetrating the separation layer, the top end of the inner cover has a second sleeve ring, the first sleeve ring and the second sleeve ring are coaxially and symmetrically arranged, a gear shaft is arranged between the first sleeve ring and the second sleeve ring, the top end of the gear shaft penetrates the first sleeve ring, the bottom end of the gear shaft abuts in the second sleeve ring, the side close to the gear shaft of the sliding block has a gear rack, the gear rack is toothedly connected to the gear shaft, and the top end of the gear shaft is fixedly connected with a push piece.
[0022] Thus, when the sliding block slides, the gear rack drives the gear shaft to rotate, the gear shaft drives the push piece to rotate to realize sweeping, and the salt block at the salt inlet of the bottle body is stirred to make the salt particles smoothly fall into the salt storage chamber.
[0023] Optionally, the outer wall of the first ring has a first positioning rib, the first positioning rib extends along the axial direction of the gear shaft, the gear shaft has a first positioning groove in the gear circumferential direction, and the end surface of the first positioning groove is in abutment with the first positioning rib.
[0024] In this way, the first positioning rib and the first positioning groove are used for positioning the gear shaft during assembly, which facilitates the limitation of the angle position of the push piece.
[0025] Optionally, the top end of the gear shaft has a rectangular guide hole, the push piece has a rectangular guide shaft, the rectangular guide shaft is inserted into the rectangular guide hole, the outer wall of the rectangular guide shaft has a second positioning rib, the opening of the rectangular guide hole is provided with a second positioning groove, the second positioning rib is limited in the second positioning groove, the push piece has a push bar in the radial direction, the push bar can abut against the separation layer, and the axis of the rectangular guide shaft is provided with a tapped hole.
[0026] In this way, the rectangular guide shaft and the rectangular guide hole are matched to fix the push piece on the gear shaft and facilitate synchronous rotation, the second positioning rib is matched with the second positioning groove to further prevent the push piece from rotating at the top end of the gear shaft, the push bar facilitates the scattering of salt blocks at the salt inlet, the salt particles can smoothly fall into the salt storage chamber, and the tapped hole is arranged to facilitate the insertion of a screw, and the push piece and the gear shaft are fastened to each other through the screw.
[0027] Optionally, the bottom end of the inner cover is provided with a flow guide cover, the outer wall of the flow guide cover is uniformly distributed with a plurality of first buckling teeth in the circumferential direction, the inner wall of the inner cover is provided with a plurality of first buckling grooves in the circumferential direction, and the flow guide cover is inserted into the inner part of the inner cover and is clamped in the plurality of first buckling grooves through the plurality of first buckling teeth.
[0028] In this way, the flow guide cover facilitates the dispersion of salt and facilitates the uniform scattering of salt.
[0029] Optionally, the outer edge of the inner cover has a plurality of uniformly distributed protruding teeth, the inner wall of the outer cover has a plurality of clamping grooves matched with the plurality of protruding teeth, and the plurality of protruding teeth are clamped in the plurality of clamping grooves.
[0030] In this way, the inner cover can be clamped at the bottom of the outer cover, and the purpose of salt scattering is facilitated.
[0031] Optionally, the inner cover is further provided with a third positioning rib and a fourth positioning rib in the radial direction, the third positioning rib and the fourth positioning rib are parallel to each other and have a gap fit, the inner wall of the outer cover has a fifth positioning rib, and the fifth positioning rib is slidably fitted between the third positioning rib and the fourth positioning rib.
[0032] Thus, the inner cover is clamped at the bottom end of the outer cover through the fifth positioning rib along the gap between the third positioning rib and the fourth positioning rib, so that the cooperation of the fifth positioning rib, the third positioning rib and the fourth positioning rib has a guiding effect, thereby facilitating smooth docking of each component.
[0033] Optionally, the inner bottom surface of the flow guide cover has a conical protrusion, a plurality of flow guide holes are formed between the conical protrusion and the inner bottom wall of the flow guide cover, and the plurality of flow guide holes penetrate the inner bottom surface of the flow guide cover and are uniformly distributed along the circumference of the flow guide cover.
[0034] Thus, the plurality of flow guide holes facilitate the flow of salt, and the conical protrusion facilitates the dispersion of salt, so that the plurality of flow guide holes can uniformly sprinkle the salt, thereby uniformly sprinkling the salt from the salt tank.
[0035] In summary, the press-type quantitative salt tank capable of solving the salt jamming problem has the beneficial effects of not easily jamming salt, not easily polluting salt by external dirt, and facilitating single-quantitative salt discharge. BRIEF DESCRIPTION OF DRAWINGS
[0036] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.
[0037] Figure 1 is an exploded view of the press-type quantitative salt tank capable of solving the salt jamming problem in the embodiments of the present application;
[0038] Figure 2 is a structural schematic view of the push piece in the embodiments of the present application;
[0039] Figure 3 is a structural schematic view of the outer cover in the embodiments of the present application;
[0040] Figure 4 is a structural schematic view of the slider in the embodiments of the present application;
[0041] Figure 5 is a structural schematic view of the gear shaft in the embodiments of the present application;
[0042] Figure 6 is a structural schematic view of the inner cover in the embodiments of the present application;
[0043] Figure 7The structure schematic view of the flow guide cover in the embodiment of the utility model;
[0044] Figure 8 The sealing state plan view of the press type quantitative salt tank capable of solving the salt clamping problem in the embodiment of the utility model;
[0045] Figure 9 The sectional view of the embodiment of the utility model; Figure 8
[0046] Figure 10 The salt discharging state plan view of the press type quantitative salt tank capable of solving the salt clamping problem in the embodiment of the utility model;
[0047] Figure 11 The sectional view of the embodiment of the utility model; Figure 10
[0048] Figure 12 The partial sectional three-dimensional view of the press type quantitative salt tank capable of solving the salt clamping problem in the embodiment of the utility model;
[0049] Figure 13 The finished product schematic view of the press type quantitative salt tank capable of solving the salt clamping problem in the embodiment of the utility model.
[0050] Icon: 1-bottle body, 2-outer cover, 3-separation layer, 4-salt inlet, 5-sliding block, 6-salt storage chamber, 7-inner cover, 8-salt outlet, 9-first friction plate, 10-second friction plate, 11-first guide surface, 12-second guide surface, 13-first salt guide plate, 14-second salt guide plate, 15-pressing hole, 16-button, 17-detent, 18-first buckle groove, 19-cross shaft, 20-positioning ring, 21-spring, 22-first sleeve ring, 23-second sleeve ring, 24-gear shaft, 25-rack, 26-pushing piece, 27-first positioning rib, 28-first positioning groove, 29-rectangular guide hole, 30-rectangular guide shaft, 31-second positioning rib, 32-second positioning groove, 33-pushing strip, 34-tapped hole, 35-flow guide cover, 36-first detent, 37-first buckle groove, 38-protruding tooth, 39-buckling groove, 40-third positioning rib, 41-fourth positioning rib, 42-fifth positioning rib, 43-tapered protrusion, 44-flow guide hole. DETAILED DESCRIPTION
[0051] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments of the utility model will be described clearly and completely below in combination with the drawings in the embodiments of the utility model. Obviously, the described embodiments are part of the embodiments of the utility model, rather than all the embodiments. The components of the embodiments of the utility model described and shown in the drawings here can be arranged and designed in various different configurations.
[0052] Therefore, the following detailed description of embodiments of the application provided in the drawings is not intended to limit the scope of the application claimed, but merely represents selected embodiments of the application. Based on the embodiments in the application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of the application.
[0053] Embodiments
[0054] Referring to Figures 1-13 The embodiment provides a press-type quantitative salt tank capable of solving the salt sticking problem, comprising a bottle body 1;
[0055] The bottom of the bottle body 1 is provided with an outer cover 2, the inner part of the outer cover 2 has a separation layer 3, and one end of the bottle body 1 close to the outer cover 2 is threadedly connected to the outer cover 2 and abuts against the separation layer 3;
[0056] The separation layer 3 is provided with an inlet salt hole 4, and the side of the separation layer 3 away from the bottle body 1 is provided with a sliding block 5, the sliding block 5 has a salt storage chamber 6, the sliding block 5 is slidably connected to the side of the separation layer 3 away from the bottle body 1, and the salt storage chamber 6 and the inlet salt hole 4 are in communication or disconnected with each other;
[0057] The side of the sliding block 5 away from the separation layer 3 is provided with an inner cover 7, the top surface of the inner cover 7 abuts against the sliding block 5 and is clamped to the outer cover 2, the top surface of the inner cover 7 is provided with an outlet salt hole 8, and the outlet salt hole 8 and the salt storage chamber 6 are in communication or disconnected with each other.
[0058] In use, an operator holds the bottle body 1, presses a button to push the sliding block 5 in the inner part of the outer cover 2 to slide between the separation layer 3 and the inner cover 7, when the sliding block 5 does not move, the salt in the inner part of the bottle body 1 enters the salt storage chamber 6 through the inlet salt hole 4, when the sliding block 5 moves, the salt storage chamber 6 is in communication with the outlet salt hole 8, and the salt in the salt storage chamber 6 falls out through the outlet salt hole 8, so that quantitative salt scattering is realized.
[0059] The press-type quantitative salt tank capable of solving the salt sticking problem disclosed in the embodiment has the beneficial effects that when the sliding block 5 moves forward and backward, the salt particles in the salt storage chamber 6 move relative to the first friction sheet 9 and the second friction sheet 10, so that the salt particles fall out of the salt storage chamber 6 through the outlet salt hole 8, the salt sticking problem is avoided, the gear shaft 24 is arranged to drive the push piece 26 to perform a sweeping action, so that the salt particles can smoothly fall into the salt storage chamber 6, and the press-type quantitative salt tank capable of solving the salt sticking problem has the beneficial effects of not being easy to stick salt, external dirt not being easy to contaminate the salt, and being convenient to realize single quantitative salt scattering.
[0060] Referring to Figures 1-13The first friction sheet 9 and the second friction sheet 10 are respectively embedded in the first guide surface 11 and the second guide surface 12, and the sliding block 5 is slidably fitted along the axial direction of the first friction sheet 9 and the second friction sheet 10, so that the sliding block 5 can slide along the length direction of the first friction sheet 9 and the second friction sheet 10, and the guiding effect is achieved.
[0061] The first guide salt plate 13 and the second guide salt plate 14 are symmetrically arranged between the first guide surface 11 and the second guide surface 12, and the salt storage chamber 6 is located in the cavity surrounded by the first friction sheet 9, the second friction sheet 10, the first guide salt plate 13 and the second guide salt plate 14, so that the salt particles in the salt storage chamber 6 can be easily moved when the sliding block 5 slides on the first friction sheet 9 and the second friction sheet 10, and meanwhile, the salt storage chamber 6 is beneficial to pre-store a certain amount of salt, so that the salt weight can be controlled when the salt is poured, and the phenomenon of salt blockage is avoided, and the external impurities are prevented from contacting the salt in the bottle body 1.
[0062] Referring to Figures 1-13 The radial direction of the outer cover 2 is provided with a press hole 15, the press hole 15 penetrates through one side wall of the outer cover 2, and the press hole 15 is provided with a slidable button 16, one end of the button 16 close to the sliding block 5 is provided with a catch tooth 17, one end of the sliding block 5 close to the button 16 is provided with a first clamping groove 18, the catch tooth 17 is connected to the first clamping groove 18, and the sliding block 5 can be pushed to move by pressing the button 16, so that the salt storage chamber 6 on the sliding block 5 is connected or disconnected with the salt inlet 4 or the salt outlet 8, and a small amount of salt is filled in the salt storage chamber 6, so that the salt pouring amount can be controlled.
[0063] The end of the sliding block 5 away from the button 16 is provided with a cross shaft 19, the cross shaft 19 corresponds to a positioning ring 20 on the inner wall of the outer cover 2, a spring 21 is arranged between the positioning ring 20 and the cross shaft 19, one end of the spring 21 is elastically abutted in the positioning ring 20, and the other end of the spring 21 is elastically sleeved on the cross shaft 19, so that the button 16 is always pushed out of the press hole 15 when the sliding block 5 is not working, the button 16 pushes the sliding block 5 to slide and makes the salt storage chamber 6 communicate with the salt outlet 8 when the salt is needed to be poured, the purpose of pouring salt is achieved, the button 16 is popped out when the button 16 is released, the salt storage chamber 6 communicates with the salt inlet 4, and the salt in the bottle body 1 can be filled into the salt storage chamber 6.
[0064] The side of the separation layer 3 away from the bottle body 1 is also provided with a first collar 22, the first collar 22 penetrates the separation layer 3, the top end of the inner cover 7 is provided with a second collar 23, the first collar 22 and the second collar 23 are coaxial and symmetrical with each other, a gear shaft 24 is arranged between the first collar 22 and the second collar 23, the top end of the gear shaft 24 penetrates the first collar 22, and the bottom end of the gear shaft 24 abuts against the second collar 23, the side of the sliding block 5 close to the gear shaft 24 is provided with a rack 25, the rack 25 is connected to the gear shaft 24 in a toothed manner, the top end of the gear shaft 24 is fixedly connected with a push piece 26, when the sliding block 5 slides, the rack 25 drives the gear shaft 24 to rotate, the gear shaft 24 drives the push piece 26 to rotate to realize sweeping, so as to stir the salt block at the salt inlet 4 of the bottle body 1, and make the salt particles smoothly fall into the salt storage chamber 6.
[0065] The outer wall of the first collar 22 is provided with a first positioning rib 27, the first positioning rib 27 extends along the axial direction of the gear shaft 24, the gear shaft 24 is provided with a first positioning groove 28 in the circumferential direction of the gear, and the end face of the first positioning groove 28 abuts against the first positioning rib 27. The first positioning rib 27 and the first positioning groove 28 are used for positioning the gear shaft 24 during assembly, so as to conveniently limit the angular position of the push piece 26.
[0066] Referring to Figures 1-13 , the top end of the gear shaft 24 is provided with a rectangular guide hole 29, the push piece 26 is provided with a rectangular guide shaft 30, the rectangular guide shaft 30 is embedded in the rectangular guide hole 29, the outer wall of the rectangular guide shaft 30 is provided with a second positioning rib 31, the opening of the rectangular guide hole 29 is provided with a second positioning groove 32, the second positioning rib 31 is limited in the second positioning groove 32, the push piece 26 is provided with a push bar 33 in the radial direction, the push bar 33 abuts against the separation layer 3 in a swing manner, a tapping hole 34 is arranged in the axis of the rectangular guide shaft 30, the cooperation between the rectangular guide shaft 30 and the rectangular guide hole 29 makes the push piece 26 fixed on the gear shaft 24 and convenient for synchronous rotation, the cooperation between the second positioning rib 31 and the second positioning groove 32 further prevents the push piece 26 from rotating at the top end of the gear shaft 24, and simultaneously has the effect of installation guide, the push bar 33 is convenient for stirring the salt block at the salt inlet 4, so that the salt particles can smoothly fall into the salt storage chamber 6, and the setting of the tapping hole 34 is convenient for placing a screw, and the push piece 26 and the gear shaft 24 are fastened to each other through the screw.
[0067] The bottom end of the inner cover 7 is provided with a flow guide cover 35, the outer wall of the flow guide cover 35 is uniformly distributed with a plurality of first buckling teeth 36 in the circumferential direction, a plurality of first buckling grooves 37 are arranged in the circumferential direction of the inner cover 7, the flow guide cover 35 is embedded in the inner cover 7 and is clamped in the first buckling grooves 37 through the first buckling teeth 36, and the flow guide cover 35 is convenient for dispersing salt and is beneficial to uniformly scattering the salt.
[0068] The outer edge of the inner cover 7 has a plurality of uniformly distributed protrusions 38, and the inner wall of the outer cover 2 has a plurality of clamping grooves 39 matched with the protrusions 38, and the protrusions 38 are clamped in the clamping grooves 39, so that the inner cover 7 can be clamped at the bottom of the outer cover 2, facilitating the purpose of salt sprinkling.
[0069] Referring to Figures 1-13 , the inner cover 7 is further provided with a third positioning rib 40 and a fourth positioning rib 41 in the radial direction, the third positioning rib 40 and the fourth positioning rib 41 are parallel to each other and gap-fitted, and the inner wall of the outer cover 2 has a fifth positioning rib 42 which is slidably fitted between the third positioning rib 40 and the fourth positioning rib 41, and the inner cover 7 is clamped at the bottom end of the outer cover 2 through the fifth positioning rib 42 along the gap between the third positioning rib 40 and the fourth positioning rib 41, so that the cooperation of the fifth positioning rib 42, the third positioning rib 40 and the fourth positioning rib 41 has a guiding effect, thereby facilitating the smooth docking of each component.
[0070] The inner bottom surface of the flow guide cover 35 has a conical protrusion 43, and a plurality of flow guide holes 44 are formed between the conical protrusion 43 and the inner bottom wall of the flow guide cover 35, the plurality of flow guide holes 44 pass through the inner bottom surface of the flow guide cover 35 and are uniformly distributed along the circumferential direction of the flow guide cover 35, the plurality of flow guide holes 44 facilitate the flow of salt, the conical protrusion 43 facilitates the dispersion of salt, and the plurality of flow guide holes 44 can uniformly sprinkle the salt, thereby making the salt tank sprinkle salt uniformly.
[0071] Referring to Figures 1-13 In this embodiment, by pressing the button 16, the problem of salt clamping existing in the traditional quantitative salt tank is solved while achieving single-quantitative salt dispensing, and by setting the inverted jar structure and allowing the salt outlet 8 to have a certain distance from the end face of the outer cover 2, the direct contact of external dirt with the salt outlet 8 can be effectively prevented, the user experience is improved, and the advantages of convenience and reliability are achieved.
[0072] Referring to Figures 1-13In the embodiment, the slider 5 cooperates with the first guide surface 11 and the second guide surface 12 and the first friction sheet 9 and the second friction sheet 10 on the separation layer 3 to form the salt storage chamber 6, the spring 21 is fixedly installed on the end of the slider 5 away from the button 16 through the cross shaft 19 and the positioning ring 20, the buckle tooth 17 on the button 16 cooperates with the first buckle slot 18 to realize axial fixation of the button 16, the gear shaft 24 is inserted into the shaft hole of the outer cover 2 and is positioned through the first sleeve ring 22 and the second sleeve ring 23, the rectangular guide shaft 30 of the paddle 26 is inserted into the rectangular guide hole 29 of the gear shaft 24, and the two are fastened through self-tapping screws screwed into the tapping holes 34; when the components are at rest, the slider 5 is pushed to one side under the pre-tightening force of the spring 21, at this time, the salt jar bottle body 1 is in communication with the salt storage chamber 6 and is closed to the outside, and the salt particles fall into the preset volume of the salt storage chamber 6 under the action of gravity, realizing the quantitative effect; when the button 16 is pressed, the end surface of the button 16 pushes the slider 5 to move axially, and the spring 21 is compressed continuously, in this process, the salt storage chamber 6 is gradually in communication with the outside and closed to the inner cavity of the bottle body 1, when the preset stroke is reached, the end surfaces of the first friction sheet 9 and the second friction sheet 10 are in contact with and pressed against the inner wall surface of the slider 5, limiting further movement of the slider 5.
[0073] Referring to Figures 1-13 In the embodiment, the rack 25 drives the gear shaft 24 to rotate during the movement of the slider 5, the gear shaft 24 drives the paddle 26 to rotate to realize sweeping, which is used to scatter the salt block at the salt inlet 4 of the bottle body 1, so that the salt particles can smoothly fall into the salt storage chamber 6.
[0074] Referring to Figures 1-13 In the embodiment, when the slider 5 moves forward and backward, the salt particles in the salt storage chamber 6 move relative to the first friction sheet 9 and the second friction sheet 10 fixed on the two sides of the outer cover 2, promoting the final salt particles to fall out of the salt storage chamber 6 through the salt outlet 8, solving the problem of salt jamming at the salt outlet 8.
[0075] Referring to Figures 1-13 In the embodiment, by setting the jar body as a reverse buckle usage mode and allowing the salt outlet 8 to be a distance from the end surface of the outer cover 2, the external dirt can be effectively prevented from contacting the salt outlet 8, and the salt particles are further contaminated.
[0076] Referring to Figures 1-13 The specific installation principle of the pressing type quantitative salt jar for solving the salt jamming problem in the embodiment is as follows:
[0077] During installation, first, the gear shaft 24 is inserted into the sleeve ring, and the first positioning groove 28 is rotated counterclockwise to make the end surface of the first positioning groove 28 abut against the first positioning rib 27, then the rectangular guide shaft 30 of the paddle 26 is inserted into the rectangular guide hole 29 of the gear shaft 24, and self-tapping screws are screwed into the tapping holes 34 to fasten the two together;
[0078] Secondly, aligning the position of the first guide surface 11 and the second guide surface 12 with the first friction plate 9 and the second friction plate 10, the end of the first friction plate 9 and the second friction plate 10 is in contact with the wall surface of the slider 5, then, the spring 21 is installed at the rear end of the slider 5, the button 16 is pressed into the press hole 15 of the outer cover 2, so that the catch tooth 17 of the button 16 is clamped into the first clamping groove 18;
[0079] Then, after the internal installation, the flow guide cover 35 is pressed into the inner cover 7, so that the first catch tooth 36 is matched with the first clamping groove 37, then the inner cover 7 is roughly aligned with the first ring 22 and the second ring 23, the fifth positioning rib 42 is aligned with the gap between the third positioning rib 40 and the fourth positioning rib 41, and the inner cover 7 is pressed into the outer cover 2;
[0080] Finally, the bottle body 1 is screwed with the outer cover 2.
[0081] The above only describes the preferred embodiments of the present application and is not used to limit the present application. For those skilled in the art, the present application can have various changes and variations. Any modification, equivalent replacement, improvement, etc. within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A press-type quantitative salt tank capable of solving the problem of salt sticking, characterized in that: it comprises a bottle body (1); the bottom of the bottle body (1) is provided with an outer cover (2), the inner part of the outer cover (2) has a partition layer (3), and the end of the bottle body (1) close to the outer cover (2) is threadedly connected to the outer cover (2) and abuts against the partition layer (3); the partition layer (3) is provided with an inlet (4), the side of the partition layer (3) away from the bottle body (1) is provided with a sliding block (5), the sliding block (5) has a salt storage chamber (6), the sliding block (5) is slidably connected to the side of the partition layer (3) away from the bottle body (1), and the salt storage chamber (6) and the inlet (4) are in communication or disconnected; the side of the sliding block (5) away from the partition layer (3) is provided with an inner cover (7), the top surface of the inner cover (7) abuts against the sliding block (5) and is clamped to the outer cover (2), the top surface of the inner cover (7) is provided with an outlet (8), and the outlet (8) and the salt storage chamber (6) are in communication or disconnected.
2. The press-type quantitative salt tank capable of solving the problem of salt sticking according to claim 1, characterized in that: the side of the partition layer (3) away from the bottle body (1) is provided with a first friction plate (9) and a second friction plate (10), the first friction plate (9) and the second friction plate (10) are respectively located on the two sides of the inlet (4) and are symmetrical to each other, the inner part of the sliding block (5) is provided with a first guide surface (11) and a second guide surface (12) which are symmetrical to each other, the first friction plate (9) and the second friction plate (10) are respectively embedded in the inner part of the sliding block (5) and are in sliding fit with the first guide surface (11) and the second guide surface (12), and the sliding block (5) is in axial sliding fit with the first friction plate (9) and the second friction plate (10).
3. The press-type quantitative salt tank capable of solving the problem of salt sticking according to claim 2, characterized in that: the first guide surface (11) and the second guide surface (12) are provided with a first salt guide plate (13) and a second salt guide plate (14) which are symmetrical to each other, and the salt storage chamber (6) is located in the cavity surrounded by the first friction plate (9), the second friction plate (10), the first salt guide plate (13) and the second salt guide plate (14).
4. The press-type quantitative salt tank capable of solving the problem of salt sticking according to claim 1, characterized in that: the outer cover (2) is provided with a press hole (15) in the radial direction, the press hole (15) penetrates through one side wall of the outer cover (2), the press hole (15) is provided with a slidable button (16), one end of the button (16) close to the sliding block (5) is provided with a catch tooth (17), one end of the sliding block (5) close to the button (16) is provided with a first clamping groove (18), and the catch tooth (17) is connected to the first clamping groove (18).
5. The press-type quantitative salt tank capable of solving the problem of salt sticking according to claim 4, characterized in that: The slider (5) has a cross shaft (19) at one end away from the button (16), the cross shaft (19) corresponds to a positioning ring (20) on the inner wall of the outer cover (2), a spring (21) is arranged between the positioning ring (20) and the cross shaft (19), one end of the spring (21) is elastically abutted in the positioning ring (20), and the other end of the spring (21) is elastically sleeved on the cross shaft (19).
6. The press type quantitative salt tank capable of solving the salt sticking problem according to claim 1, wherein: The first sleeve ring (22) is coaxially and symmetrically arranged with the second sleeve ring (23), a gear shaft (24) is arranged between the first sleeve ring (22) and the second sleeve ring (23), the top end of the gear shaft (24) penetrates the first sleeve ring (22), the bottom end of the gear shaft (24) is abutted in the second sleeve ring (23), the slider (5) has a gear rack (25) at one side close to the gear shaft (24), the gear rack (25) is toothedly connected to the gear shaft (24), and the top end of the gear shaft (24) is fixedly connected with a push piece (26).
7. The press type quantitative salt tank capable of solving the salt sticking problem according to claim 6, wherein: The outer wall of the first sleeve ring (22) has a first positioning rib (27), the first positioning rib (27) extends along the axial direction of the gear shaft (24), the gear shaft (24) has a first positioning groove (28) in the circumferential direction of the gear, and the end face of the first positioning groove (28) is abutted against the first positioning rib (27).
8. The press type quantitative salt tank capable of solving the salt sticking problem according to claim 6, wherein: The top end of the gear shaft (24) has a rectangular guide hole (29), the push piece (26) has a rectangular guide shaft (30), the rectangular guide shaft (30) is embedded in the rectangular guide hole (29), the outer wall of the rectangular guide shaft (30) has a second positioning rib (31), a second positioning groove (32) is formed at the opening of the rectangular guide hole (29), the second positioning rib (31) is limited in the second positioning groove (32), the push piece (26) has a push strip (33) in the radial direction, the push strip (33) is abutted against the separation layer (3) and can swing, and a tapping hole (34) is formed in the axis of the rectangular guide shaft (30).
9. The press type quantitative salt tank capable of solving the salt sticking problem according to claim 1, wherein: The bottom end of the inner cover (7) is provided with a flow guide cover (35), the outer wall of the flow guide cover (35) is uniformly distributed with a plurality of first buck teeth (36), the circumference of the inner cover (7) is provided with a plurality of first buck grooves (37), the flow guide cover (35) is embedded in the inside of the inner cover (7) and is clamped in the plurality of first buck grooves (37) through the plurality of first buck teeth (36).
10. The press-type quantitative salt tank capable of solving the problem of salt sticking according to claim 1, characterized in that: The outer edge of the inner cover (7) has a plurality of uniformly distributed convex teeth (38), the inner wall of the outer cover (2) has a plurality of clamping grooves (39) matched with the plurality of convex teeth (38), and the plurality of convex teeth (38) are clamped in the plurality of clamping grooves (39).