Positionable storage lever-pressing type quantitative salt container
By designing a lever-press type quantitative salt container that uses a slider and gear shaft, the problems of inconvenient button storage and salt storage chamber jamming are solved, enabling precise quantitative storage and smooth discharge of salt particles, thus improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YIBIN PLASTIC PACKAGING MATERIALS CO LTD
- Filing Date
- 2025-08-20
- Publication Date
- 2026-08-04
AI Technical Summary
Existing lever-operated salt containers have the following drawbacks: the button opens too far at its initial position, making them difficult to store; and salt condensation at the salt storage chamber causes jamming, affecting the accuracy of salt retrieval.
A lever-press type quantitative salt container was designed, which includes a bottle body, an outer cap, an inner cap, and a flow guide cap. The slider and gear shaft work together to achieve the reciprocating motion of the slider, which drives the gear shaft to rotate, thus preventing the salt from condensing. Friction plates prevent salt particles from condensing inside the slider, ensuring quantitative salt dispensing.
It enables precise quantitative storage and retrieval of salt particles, avoids the problem of blockage in the salt storage chamber, improves the accuracy of salt output, and facilitates the organization and storage of the device.
Smart Images

Figure CN224584654U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of salt container structure, and in particular relates to a lever-press type quantitative salt container that can be positioned and stored. Background Technology
[0002] Currently available lever-operated salt containers generally have a large initial opening distance between the buttons, which makes them difficult to organize and store after use. In addition, they require additional metal parts for positioning and transmission, which increases the difficulty of subsequent material recycling.
[0003] In particular, due to environmental temperature and humidity, there is a problem of salt getting stuck at the salt storage chamber in the existing technology, which affects the accuracy of salt retrieval and storage. That is, how to ensure that salt can be accurately stored each time and that the quantitative amount of salt in the salt storage chamber can be completely extracted smoothly to achieve true quantitative salt retrieval is a technical problem that urgently needs to be solved. Utility Model Content
[0004] The purpose of this utility model is to overcome the problems of the prior art by disclosing a lever-pressable quantitative salt container that can be positioned and stored, thus solving the problem of jamming caused by salt condensation at the salt storage chamber.
[0005] The objective of this utility model is achieved through the following technical solution: A repositionable, lever-press type metering salt container, comprising: a bottle body, an outer cap, an inner cap, and a flow guide cap. The outer cap is connected to the top of the bottle body via a threaded structure, the inner cap is nested on the top of the outer cap, and the flow guide cap is nested on the top of the inner cap; The outer cover is equipped with a reciprocating quantitative salt storage structure, which is used to extract salt from the bottle and discharge the salt through the corresponding salt outlet channels on the inner cover and the guide cover.
[0006] According to a preferred embodiment, the quantitative salt storage structure on the outer cover includes: a button and a slider. The slider is movably mounted on a partition inside the outer cover, and the slider contains a salt storage chamber with an open structure on the top and bottom sides. The partition plate is provided with a salt filling hole and communicates with the internal cavity of the bottle; the top side of the slider is the bottom plate of the inner cover, and the bottom plate is provided with a salt outlet hole, which is connected to the corresponding salt outlet channel on the inner cover and the guide cover; The top of the button is hinged to the double-eared pivot on the outer wall of the outer cover, and one end of the slider is connected to the button, which drives the slider to reciprocate. When the slider moves to the salt dispensing position on the outside of the outer cover, the bottom side of the salt storage chamber coincides with the salt filling hole, and the top side of the salt storage chamber contacts the bottom plate. At this time, the storage chamber is connected to the internal cavity of the bottle. If the salt container is inverted, the salt in the bottle can flow into the salt storage chamber. When the slider moves to the salt outlet position inside the outer cover, the bottom side of the salt storage chamber contacts the top of the partition, and the top side of the salt storage chamber coincides with the salt outlet hole on the bottom plate. At this time, the storage chamber and the salt outlet channel are connected, and salt can be discharged.
[0007] According to a preferred embodiment, the slider has a positioning post at one end and a cross shaft at the other end; The bottom side walls of the button are provided with sliding grooves, and the positioning post at the end of the slider is respectively engaged in the two sliding grooves to achieve a movable connection with the button. A second ring is provided on the inner wall of the outer cover, and a compressed spring is provided between the cross shaft and the second ring, so that the spring can push the slider to move towards the salt-taking position.
[0008] According to a preferred embodiment, the slider includes two side plates, a first end plate, and a second end plate, wherein the two side plates, the first end plate, and the second end plate form a rectangular frame structure; The rectangular frame structure includes two chamber panels, which are arranged parallel to the first end plate and the second end plate. The two chamber panels are fixedly connected to the first end plate and the second end plate on both sides, respectively. A plate structure is provided at the bottom between the chamber panels and the first end plate and the second end plate on both sides, and a gap structure is provided between the two chamber panels and the side plate. Two parallel friction plates are fixedly provided on the partition plate, and the two friction plates are respectively disposed in the gap structure between the chamber panel and the side plate; The salt storage chamber is formed by a rectangular frame enclosed by two friction plates and a chamber panel.
[0009] According to a preferred embodiment, when the slider moves to the salt-taking position outside the outer cover, one end of the two friction plates contacts the top of the second end plate; When the slider moves to the salt outlet position inside the outer cover, one end of the two friction plates contacts the top of the first end plate.
[0010] According to a preferred embodiment, a gear shaft is further provided inside the outer cover, and the gear shaft passes through the partition through a through hole provided on the partition. The bottom end of the gear shaft is connected to a paddle, which is used to scrape the salt hole on the bottom side of the partition during the rotation of the gear shaft. The top end of the gear shaft is movably connected to the first collar on the bottom side of the bottom plate of the inner cover. The circumferential teeth on the side of the gear shaft mesh with the rack on the side wall of the slider, thereby driving the gear shaft to rotate reciprocally through the reciprocating motion of the slider.
[0011] According to a preferred embodiment, the gear shaft is further provided with a second limiting groove in the circumferential direction on its side surface, and a second positioning rib is provided on the inner side surface of the outer cover. The second positioning rib cooperates with the second limiting groove to assist in completing the assembly and positioning of the gear shaft.
[0012] According to a preferred embodiment, the bottom end of the gear shaft is further provided with a horizontally arranged third limiting groove. The vertical connecting rod of the paddle is inserted into the bottom end of the gear shaft and is matched with the third limiting groove by the fourth positioning ribs arranged on both sides of the vertical connecting rod to achieve the function of rotational transmission.
[0013] According to a preferred embodiment, the button includes a button body and a limiting block. The limiting block is slidably connected to the pressing body, and the bottom surface of the limiting block is provided with an L-shaped third positioning rib, which extends through the pressing body. The outer cover has a positioning groove on its surface. When the button rotates and fits against the outer cover, the third positioning rib of the limiting block can be inserted into the positioning groove to lock the relative position of the button and the outer cover.
[0014] According to a preferred embodiment, the bottom surface of the limiting block is further provided with two parallel protruding second buckles. The surface of the main body of the insert is provided with a limiting groove that matches the second buckle. The second buckle is engaged in the limiting groove and can slide along the limiting groove. The second buckle and the limiting groove are respectively provided with anti-slip protrusions to prevent the limiting block from being accidentally touched or sliding.
[0015] The aforementioned main solution of this utility model and its various further alternative solutions can be freely combined to form multiple solutions, all of which are solutions that can be adopted by this utility model and for which protection is sought. Those skilled in the art, after understanding the solution of this utility model, will realize, based on existing technology and common knowledge, that there are many combinations, all of which are technical solutions to be protected by this utility model; therefore, they are not exhaustively listed here.
[0016] The beneficial effects of this utility model are: In use, first slide the limit block to the end of the button to unlock and position it. After unlocking, the slider in the initial position of the button is pushed to one side under the preload of the spring. At this time, the inner cavity of the salt container is connected to the salt storage chamber and closed to the outside. Salt particles fall into the preset volume of the salt storage chamber under the action of gravity, realizing quantitative salt storage. Pressing the button then pushes the slider to move axially, continuously compressing the spring. During this process, the salt storage chamber gradually connects to the outside world while gradually closing off from the inner cavity of the bottle. When the preset stroke is reached, it is completely sealed off from the inner cavity of the bottle. At this point, the end face of the friction plate contacts and presses against the end plate of the slider, restricting further movement of the slider. During its axial movement, the slider can drive the gear shaft to rotate via a rack on one side, and under the transmission, drive the paddle to rotate to achieve a sweeping action, which is used to disperse the salt clumps that have condensed at the salt filling hole of the bottle, so that the salt particles can fall smoothly into the salt storage chamber and avoid the problem of salt jamming in the corresponding position. Meanwhile, during the forward and backward movement of the slider, the salt particles in the chamber rub against the friction plates fixed on both sides, ensuring that the salt particles will not condense in the slider chamber, further ensuring that the device can accurately pick up and discharge salt. After use, press the button to the end of the stroke and slide the limit block to the beginning of the limit groove. At this time, the third positioning rib is inserted into the positioning groove of the outer cover, and the button will remain close to the bottle and will not reset. This allows the button to stay close to the bottle, making it easy to organize and store. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of the lever-press type quantitative salt container of this utility model; Figure 2 This is an exploded structural diagram of the lever-press type quantitative salt container of this utility model; Figure 3 This is a longitudinal sectional view of the lever-press type quantitative salt container of this utility model in the locked state of the button and the outer cover; Figure 4 This is a longitudinal sectional view of the lever-press type quantitative salt container of this utility model before the button is pressed; Figure 5 This is a cross-sectional view of the lever-press type quantitative salt container of this utility model before the button is pressed; Figure 6 This is a longitudinal sectional view of the lever-press type quantitative salt container of this utility model after the button is pressed; Figure 7 This is a cross-sectional view of the lever-press type quantitative salt container of this utility model after the button is pressed; Figure 8 This is a schematic diagram of the guide cover structure of the lever-press type quantitative salt container of this utility model; Figure 9 This is a schematic diagram of the inner cover structure of the lever-press type quantitative salt container of this utility model; Figure 10 This is a schematic diagram of the slider structure of the lever-press type quantitative salt container of this utility model; Figure 11 This is a schematic diagram of the gear shaft structure of the lever-press type quantitative salt container of this utility model; Figure 12 This is a schematic diagram of the lever-operated quantitative salt container of this utility model; Figure 13 This is a schematic diagram of the outer cover structure of the lever-press type quantitative salt container of this utility model; Figure 14 This is a schematic diagram of the button body of the lever-press type quantitative salt container of this utility model; Figure 15 This is a schematic diagram of the limiting block of the lever-pressing quantitative salt container of this utility model; Among them, 1-bottle body, 2-outer cap, 201-partition plate, 202-salt filling hole, 203-positioning groove, 204-friction plate, 205-second positioning rib, 206-second collar, 207-second buckle groove, 208-double-ear pivot, 209-slot hole, 210-through hole, 3-button, 301-button body, 302-limiting block, 303-third positioning rib, 304-second buckle, 305-second anti-slip protrusion, 306-pivot hole, 307-slide groove, 308-limiting groove, 309-first anti-slip protrusion, 4-inner cap, 401-bottom plate, 402- Salt outlet, 403-first positioning rib, 404-first buckle, 405-first buckle groove, 406-first collar, 5-guide cover, 501-first positioning groove, 502-first buckle tooth, 503-discharge hole, 6-spring, 7-slider, 701-salt storage chamber, 702-side wall, 703-rack, 704-chamber panel, 705-connecting plate, 706-positioning post, 708-cross shaft, 709-first end plate, 710-second end plate, 8-gear shaft, 801-second limiting groove, 802-third limiting groove, 9-paddle, 901-fourth positioning rib. Detailed Implementation
[0018] The following specific examples illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. This utility model can also be implemented or applied through other different specific embodiments, and various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of this utility model. It should be noted that, unless otherwise specified, the following embodiments and features described therein can be combined with each other.
[0019] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0020] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this utility model is in use. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first," "second," and "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0021] Furthermore, terms such as "horizontal," "vertical," and "sag" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal relative to "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.
[0022] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0023] Furthermore, it should be noted that unless otherwise specified, the specific structures, connections, positions, power sources, etc. involved in this utility model are all things that a person skilled in the art can know without creative effort based on the prior art.
[0024] Example refer to Figures 1 to 15 As shown in the figure, a lever-operated, press-type quantitative salt container that can be positioned and stored is illustrated. The lever-operated, press-type quantitative salt container includes: a bottle body 1, an outer cover 2, an inner cover 4, and a flow guide cover 5. The outer cover 2 is connected to the top of the bottle body 1 via a threaded structure. The inner cover 4 is nested on the top of the outer cover 2, and the flow guide cover 5 is nested on the top of the inner cover 4. The outer cover 2 is provided with a reciprocating quantitative salt storage structure, which is used to realize the extraction and storage of salt from the bottle body 1, and the discharge of salt through the corresponding salt outlet channels on the inner cover 4 and the flow guide cover 5.
[0025] Preferably, the quantitative salt storage structure on the outer cover 2 includes: a button 3 and a slider 7. The slider 7 is movably disposed on the partition 201 inside the outer cover 2, and the slider 7 is provided with a salt storage cavity 701. The top and bottom sides of the salt storage cavity 701 are open structures to facilitate salt dispensing and salt filling.
[0026] The partition 201 is provided with a salt filling hole 202, which is connected to the internal cavity of the bottle body 1; the top side of the slider 7 is the bottom plate 401 of the inner cover 4, and the bottom plate 401 is provided with a salt outlet hole 402, which is connected to the corresponding salt outlet channel on the inner cover 4 and the guide cover 5.
[0027] The top of the button 3 is hinged to the double-eared pivot 208 on the outer wall of the outer cover 2. One end of the slider 7 is connected to the button 3, and the button 3 drives the slider 7 to reciprocate. When the slider 7 moves to the salt-taking position outside the outer cover 2, the bottom side of the salt storage cavity 701 coincides with the salt filling hole 202, and the top side of the salt storage cavity 701 contacts the bottom plate 401. At this time, the storage box cavity is connected to the internal cavity of the bottle body 1. If the salt container is inverted, the salt in the bottle body 1 will flow into the salt storage cavity 701. When the slider 7 moves to the salt outlet position inside the outer cover 2, the bottom side of the salt storage chamber 701 contacts the top of the partition 201, and the top side of the salt storage chamber 701 coincides with the salt outlet hole 402 on the bottom plate 401. At this time, the storage chamber and the salt outlet channel are connected, and salt can be discharged.
[0028] Preferably, the slider 7 has a positioning post 706 at one end and a cross shaft 708 at the other end; the bottom side walls of the button 3 have grooves 307, and the positioning post 706 at the end of the slider 7 is respectively engaged in the two grooves 307, thereby realizing the movable connection with the button 3; the inner side wall of the outer cover 2 has a second collar 206, and a compression spring 6 is provided between the cross shaft 708 and the second collar 206, so that the spring can push the slider 7 to move towards the salt taking position.
[0029] Preferably, the slider 7 includes two side plates 702, a first end plate 709, and a second end plate 710, wherein the two side plates 702, the first end plate 709, and the second end plate 710 form a rectangular frame structure.
[0030] The rectangular frame structure includes two chamber panels 704, which are arranged parallel to the first end plate 709 and the second end plate 710. The two chamber panels 704 are fixedly connected to the first end plate 709 and the second end plate 710 on both sides, respectively. A plate structure is provided at the bottom between the chamber panel 704 and the first end plate 709 and the second end plate 710 on both sides (by setting the plate structure, the bottom surface of the slider 7 has a gap only at the salt storage chamber, so that salt can enter into the salt storage chamber).
[0031] Furthermore, a gap structure is provided between the two chamber panels 704 and the side plate, and two parallel friction plates 204 are fixedly provided on the partition plate 201. The two friction plates 204 are respectively located in the gap structure between the chamber panels 704 and the side plate; the two friction plates 204 and the chamber panels 704 form a rectangular frame, constituting the salt storage chamber 701.
[0032] By setting two friction plates 204, the salt particles in the chamber rub against the friction plates 204 fixed on both sides during the forward and backward movement of the slider 7, ensuring that the salt particles will not condense in the chamber of the slider 7, thereby allowing the quantitative amount of salt particles in the chamber to be completely discharged, improving the accuracy of salt dispensing.
[0033] Preferably, when the slider 7 moves to the salt dispensing position outside the outer cover 2, one end of the two friction plates 204 contacts the second end plate 710; when the slider 7 moves to the salt dispensing position inside the outer cover 2, one end of the two friction plates 204 contacts the first end plate 709.
[0034] That is, by setting the position or distance between the friction plate 204 and the end plates at both ends, the state switching of the slider picking up or discharging salt can be realized.
[0035] Preferably, the outer cover 2 is further provided with a gear shaft 8, which passes through the partition 201 through a through hole 210. The bottom end of the gear shaft 8 is connected to a paddle 9, which is used to scrape the salt hole 202 on the bottom side of the partition 201 during the rotation of the gear shaft 8. The top end of the gear shaft 8 is movably sleeved with the first collar 406 on the bottom side of the bottom plate 401 of the inner cover 4. The circumferential teeth on the side of the gear shaft 8 mesh with the rack 703 on the side plate 702 of the slider 7, thereby driving the gear shaft 8 to reciprocate through the reciprocating motion of the slider 7.
[0036] That is, during the axial movement of the slider 7, the gear shaft 8 can be rotated by the rack 703 on one side, and the paddle 9 can be rotated under the transmission to achieve a sweeping action, which is used to disperse the salt block condensed at the salt filling hole 202 of the bottle body 1, so that the salt particles can fall smoothly into the salt storage chamber 701.
[0037] Preferably, the gear shaft 8 is further provided with a second limiting groove 308 on the circumferential side, and a second positioning rib 205 is provided on the inner side of the outer cover 2. The second positioning rib 205 cooperates with the second limiting groove 308 to assist in completing the assembly and positioning of the gear shaft 8, that is, to enable the gear shaft 8 to be assembled in a relatively definite position, so as to avoid misalignment of the lower paddle 9.
[0038] Preferably, the bottom end of the gear shaft 8 is further provided with a horizontally arranged third limiting groove 308. The vertical connecting rod of the paddle 9 is inserted into the bottom end of the gear shaft 8 and is matched with the third limiting groove 308 by the fourth positioning ribs 901 arranged on both sides of the vertical connecting rod to achieve the function of rotational transmission.
[0039] Preferably, the button 3 includes a button body 301 and a limiting block 302. The limiting block 302 is slidably connected to the button body 301, and the bottom surface of the limiting block 302 is provided with an L-shaped third positioning rib 303, which passes through the button body 301. The surface of the outer cover 2 is provided with a positioning groove 203. When the button 3 rotates and fits against the outer cover 2, the third positioning rib 303 of the limiting block 302 can be inserted into the positioning groove 203 to lock the relative position of the button 3 and the outer cover 2.
[0040] Preferably, the bottom surface of the limiting block 302 is further provided with two parallel protrusions of the second buckle 304, and the surface of the pressing body 301 is provided with a limiting groove 308 that matches the second buckle 304. The second buckle 304 is engaged in the limiting groove 308 and can slide along the limiting groove 308. The surfaces of the second buckle 304 and the limiting groove 308 are respectively provided with anti-slip protrusions to prevent the limiting block 302 from being accidentally touched or sliding.
[0041] In this application, the slider 7 forms a salt storage chamber 701 through the cooperation of the chamber panel 704 and the friction plate 204. The spring 6 is fixedly installed at the rear end of the slider 7 through the cross shaft 708 and the second collar 206. The button 3 achieves positioning transmission between the button 3 and the slider 7 by inserting the positioning post 706 of the slider 7 into the slide groove 307. The limiting block 302 is inserted into the limiting groove 308 on the button 3, and the positioning between the limiting block 302 and the button 3 is achieved through the second buckle 304.
[0042] The gear shaft 8 is inserted into the through hole 210 of the outer cover 2 and is limited by the first collar 406; the paddle 9 is installed into the bottom end of the gear shaft 8, at which time the third positioning rib 303 is inserted into the third limiting groove 802, and the rotational transmission between the paddle 9 and the gear shaft 8 can be realized through the mating surface.
[0043] In use, first slide the limit block 302 to the end position of button 3 to unlock and position it. After unlocking, the slider 7 is pushed to one side under the preload of spring 6 at the initial position of button 3. At this time, the inner cavity of the salt container is connected to the salt storage chamber and closed to the outside. Salt particles fall into the preset volume salt storage chamber 701 under the action of gravity, realizing quantitative salt storage. Then, press button 3. Button 3 will push the slider 7 to move axially, and spring 6 will be continuously compressed. During this process, the salt storage chamber 701 gradually connects to the outside and gradually closes to the inner cavity of the bottle. When the preset stroke is reached, When the inner cavity of the bottle is completely sealed, the end face of the friction plate 204 contacts and presses against the end plate of the slider 7, restricting the further movement of the slider 7. During the axial movement of the slider 7, the gear shaft 8 can be rotated by the rack 703 on one side, and the paddle 9 can be rotated under the transmission to achieve a sweeping action, which is used to disperse the salt block condensed at the salt filling hole 202 of the bottle body 1, so that the salt particles can fall smoothly into the salt storage chamber 701. At the same time, during the forward and backward movement of the slider 7, the salt particles in the chamber rub against the friction plates 204 fixed on both sides, ensuring that the salt particles will not condense in the chamber of the slider 7.
[0044] When the product is finished, press button 3 to reach the end of the stroke and slide the limit block 302 to the beginning of the limit groove 308. At this time, the third positioning rib 303 is inserted into the positioning groove 203 of the outer cover 2, and button 3 will remain close to the bottle body 1 and will not reset.
[0045] During the assembly of this device: During installation, first insert the gear shaft 8 into the circular through hole 210 of the outer cover 2, and rotate the gear counterclockwise so that the end face of the second limiting groove 801 abuts against the second positioning rib 205. Then, insert the paddle 9 into the gear shaft hole with the fourth positioning rib 901 and the third limiting groove 802 aligned, and drive in the self-tapping screws to secure the connection. Next, while aligning the positions of the side chamber panels 704 and the friction plate 204, tilt the slider 7 so that the front end of the slider passes through the hole in the front of the outer cover. Then, press the slider 7 vertically so that the slider 7 is in close contact with the bottom surface of the outer cover 2, while ensuring that there is no gap between the second end plate inside the slider 7 and the rear end face of the friction plate 204. Then, install the spring 6 into the rear end of the slider, and the two ends of the spring 6 are radially fixed by the cross shaft 708 and the second collar 206 respectively. After the internal components are installed, press the guide cover 5 into the inner cover 4 so that the first snap tooth 502, the first snap groove 405, the first positioning rib 403, and the first positioning groove 501 are accurately aligned. Then, align the first ring 406 with the axis of the gear shaft 8 and press the inner cover 4 into the outer cover 2 until the first buckle and the second buckle groove are aligned. Then, install the limiting block 302 into the limiting groove 308 on the button and fix it by engaging with the inner wall of the button through the second buckle 304. Then, rotate the button at a small angle and let the positioning post at the front end of the slider 7 abut against the inner wall of the button. Then, rotate it in the opposite direction to reset it. At this time, the positioning post is installed in the sliding groove 307 of the button. Then, align the pivot hole 306 of the button with the double-ear rotating shaft 208 of the outer cover and push it in along the axial direction of the button to lock it. Finally, screw it into the bottle to complete the overall installation.
[0046] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A lever-operated, press-type, positionable, and retractable dispensing salt container, characterized in that, The lever-operated quantitative salt container includes: a bottle body (1), an outer cap (2), an inner cap (4), and a flow guide cap (5). The outer cap (2) is connected to the top of the bottle body (1) via a threaded structure, the inner cap (4) is nested on the top of the outer cap (2), and the flow guide cap (5) is nested on the top of the inner cap (4); The outer cover (2) is provided with a reciprocating quantitative salt storage structure, which is used to realize the salt from the bottle (1) and the salt body is discharged through the corresponding salt outlet channel structure on the inner cover (4) and the guide cover (5).
2. The lever press type constant salt pot according to claim 1, wherein The quantitative salt storage structure on the outer cover (2) includes: a button (3) and a slider (7). The slider (7) is movably mounted on the partition (201) inside the outer cover (2), and the slider (7) is provided with a salt storage cavity (701). The top and bottom sides of the salt storage cavity (701) are open structures. The partition (201) is provided with a salt filling hole (202) and communicates with the internal cavity of the bottle body (1); the top side of the slider (7) is the bottom plate (401) of the inner cover (4), the bottom plate (401) is provided with a salt outlet hole (402), and the salt outlet hole (402) is connected to the corresponding salt outlet channel on the inner cover (4) and the guide cover (5); The top of the button (3) is hinged to the double-eared pivot (208) on the outer wall of the outer cover (2), and one end of the slider (7) is connected to the button (3). The slider (7) is driven to reciprocate through the button (3). When the slider (7) moves to the salt-taking position outside the outer cover (2), the bottom side of the salt storage cavity (701) coincides with the salt filling hole (202), and the top side of the salt storage cavity (701) touches the bottom plate (401). At this time, the salt storage cavity (701) is connected to the internal cavity of the bottle body (1). If the salt container is inverted, the salt in the bottle body (1) can flow into the salt storage cavity (701). When the slider (7) moves to the salt outlet position inside the outer cover (2), the bottom side of the salt storage chamber (701) contacts the top of the partition (201), and the top side of the salt storage chamber (701) coincides with the salt outlet hole (402) on the bottom plate (401). At this time, the salt storage chamber (701) is connected to the salt outlet channel, and salt can be discharged.
3. The lever press type constant salt pot according to claim 2, wherein The slider (7) has a positioning post (706) at one end and a cross shaft (708) at the other end. The bottom side walls of the button (3) are provided with sliding grooves (307), and the positioning post (706) at the end of the slider (7) is respectively engaged in the two sliding grooves (307) to achieve a movable connection with the button (3); The inner wall of the outer cover (2) is provided with a second collar (206), and a compressed spring (6) is provided between the cross shaft (708) and the second collar (206), so that the spring (6) can push the slider to move to the salt taking position.
4. The lever press type constant salt pot according to claim 3, wherein The slider (7) includes two side plates (702), a first end plate (709), and a second end plate (710). The two side plates (702), the first end plate (709), and the second end plate (710) form a rectangular frame structure. The rectangular frame structure includes two chamber panels (704), which are arranged parallel to the first end plate (709) and the second end plate (710). The two chamber panels (704) are fixedly connected to the first end plate (709) and the second end plate (710) on both sides, respectively. A plate structure is provided at the bottom between the chamber panels (704) and the first end plate (709) and the second end plate (710) on both sides, and a gap structure is provided between the two chamber panels (704) and the side plate (702). Two parallel friction plates (204) are fixedly provided on the partition (201), and the two friction plates (204) are respectively disposed in the gap structure between the chamber panel (704) and the side plate (702); A rectangular frame is formed by two friction plates (204) and a chamber panel (704) to form a salt storage chamber (701).
5. The lever press type constant salt pot according to claim 4, wherein When the slider (7) moves to the salt-taking position outside the outer cover (2), one end of the two friction plates (204) comes into contact with the second end plate (710); When the slider (7) moves to the salt outlet position inside the outer cover (2), one end of the two friction plates (204) comes into contact with the top of the first end plate (709).
6. The lever press type constant salt pot according to claim 4, wherein The outer cover (2) is also provided with a gear shaft (8), which passes through the partition (201) through a through hole (210) provided on the partition (201); The bottom end of the gear shaft (8) is connected to a paddle (9), which is used to scrape the salt hole (202) on the bottom side of the partition (201) during the rotation of the gear shaft (8). The top end of the gear shaft (8) is movably connected to the first collar (406) on the bottom side of the bottom plate (401) of the inner cover (4). The teeth on the side of the gear shaft (8) mesh with the rack (703) on the side plate (702) of the slider (7), thereby driving the gear shaft (8) to rotate back and forth through the reciprocating motion of the slider (7).
7. The lever press type constant salt pot according to claim 6, wherein The gear shaft (8) is provided with a second limiting groove (801) on the circumferential side, and the outer cover (2) is provided with a second positioning rib (205) on the inner side. The second positioning rib (205) cooperates with the second limiting groove (801) to assist in the assembly and positioning of the gear shaft (8).
8. The lever press type constant salt pot according to claim 6, wherein The bottom end of the gear shaft (8) is also provided with a horizontally arranged third limiting groove (802). The vertical connecting rod of the paddle (9) is inserted into the bottom end of the gear shaft (8) and is matched with the third limiting groove (802) by the fourth positioning rib (901) set on both sides of the vertical connecting rod to achieve the function of rotational transmission.
9. The lever press type constant salt pot according to claim 2, wherein The button (3) includes a button body (301) and a limiting block (302). The limiting block (302) is slidably connected to the pressing body (301), and the bottom surface of the limiting block (302) is provided with an L-shaped third positioning rib (303), which passes through the pressing body (301); The outer cover (2) has a positioning groove (203) on its surface. When the button (3) rotates and fits against the outer cover (2), the third positioning rib (303) of the limiting block (302) is inserted into the positioning groove (203) to lock the relative position of the button (3) and the outer cover (2).
10. The lever press type constant salt pot according to claim 9, wherein The bottom surface of the limiting block (302) is also provided with two parallel protrusions of the second buckle (304). The surface of the pressing body (301) is provided with a limiting groove (308) that matches the second buckle (304). The second buckle (304) is engaged in the limiting groove (308) and can slide along the limiting groove (308). The second buckle (304) and the limiting groove (308) are respectively provided with anti-slip protrusions to prevent the limiting block (302) from being accidentally touched or sliding.