Portable double-cavity bottle
By designing the liquid mixing assembly and agitation structure in the double-cavity bottle, the rapid and effective mixing of the container is achieved, and the problem of unsatisfactory mixing effect of the existing double-cavity bottle is solved, and the needs of convenient mixing and preparation are met.
Patent Information
- Application Number
- CN202510521584.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2045-04-24
AI Technical Summary
When mixing the containers in existing double-cavity bottles, the mixing effect is not ideal enough, and it is difficult to meet the needs of situations where complete mixing is not required.
A convenient double-cavity bottle is designed with liquid mixing components and agitation structure. The liquid mixing assembly realizes intermittent injection and output of the inner containers of the first cavity and the second cavity through the suction structure, so that the two containers are input into the mixing chamber simultaneously for mixing. The agitating structure assists in the agitating mixing inside the mixing chamber by rotating the agitating blade.
The two types of containers are quickly and efficiently mixed, meeting the needs of convenient mixing and preparation, reducing waiting time, and allowing users to quickly drink new containers.
Smart Images

Figure CN120039503A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of double-chamber bottles, and in particular to a portable double-chamber bottle. Background Art
[0002] Bottles are one of the very commonly used items in daily life. Most of the existing bottles have only one cavity. In the process of real life, users often need to mix two kinds of contents. At this time, the two kinds of contents need to be stored separately in two bottles. When actually using, manually open the two bottles for mixing, which is extremely inconvenient. Therefore, in the prior art, by setting a double-chamber bottle, the two kinds of contents can be stored and used simultaneously.
[0003] There is a double-chamber content bottle with the application number CN201710300643.1, which includes a first bottle body and a second bottle body. The first bottle body includes a first bottle body and a bottle mouth provided at one end of the first bottle body. The first bottle body is provided with a first cavity; the second bottle body includes a second bottle body and an extension part connected to the second bottle body. The second bottle body is provided with a second cavity, and the extension part is screwed to the first bottle body; a first partition is provided in the extension part, the first partition is provided with a first through hole, and the first bottle body is provided with a central plug that protrudes into the first cavity and is used to seal the first through hole; the first content is installed in the first cavity, and the second content is installed in the second cavity. When it is necessary to mix the first content and the second content, the user rotates the first bottle body or the second bottle body until the central plug is pulled out of the first through hole, and the first content and the second content can be mixed through the first through hole; the invention has a simple structure, is convenient to use, and is convenient to quickly mix the two kinds of contents.
[0004] In the above-mentioned existing patent, when mixing the two kinds of contents stored inside, generally after the through hole is connected, the contents in the two cavities will be mixed simultaneously to form a new content. This mixing effect generally realizes the complete mixing of the new content. When there is a situation where there is no need to mix the new content too much, it is difficult to meet the needs of users. Summary of the Invention
[0005] The purpose of the present invention is to provide a portable double-chamber bottle to solve the problems raised in the above background art.
[0006] In order to achieve the above-mentioned purpose, the present invention adopts the following technical scheme: a convenient double-chamber bottle, comprising a bottle body, a bottle cap is threadedly connected to the upper end of the bottle body, liquid outlets are arranged on both sides of the upper end of the bottle cap, a sealing cover is arranged on the upper end cover of the liquid outlet, and one side of the sealing cover is connected to the liquid outlet, a partition is arranged in the middle of the bottle body, a first cavity and a second cavity are respectively opened on the left and right sides of the partition, the upper ends of the first cavity and the second cavity are both connected to the liquid outlet, a liquid mixing component is arranged at the lower end of the bottle body, and the rear side of the upper end of the bottle cap is tied There is a binding rope, and the liquid mixing component includes a connecting shell, which is arranged at the lower end of the bottle body, and suction structures are installed on both sides of the inside of the connecting shell, and the suction structure is connected to the lower end of the bottle body, and a stirring structure is provided in the middle of the connecting shell, and the stirring structure is connected to the lower end of the bottle body, a mixing chamber is opened at the lower end of the connecting shell, and the upper end of the mixing chamber is connected to the liquid guide groove, the suction structure and the stirring structure are connected to the outside with a stable frame, and the stable frame is connected to the lower end of the bottle body, and the suction structure and the stirring structure are respectively connected to the inside of the bottle body.
[0007] Preferably, the liquid mixing assembly includes a connecting pipe, a connecting cover, a liquid guide groove, a docking ring, a vertical rod and a spring, the connecting pipe is installed in the middle of the upper end of the bottle cap, the connecting cover is integrally installed on the top of the connecting pipe, the lower end of the connecting pipe is connected to the liquid guide groove, and the liquid guide groove is opened inside the partition, and the docking ring is arranged at the upper end of the connecting shell, the interior of the docking ring is connected to the outer side of the lower end of the bottle body, and both sides of the docking ring are plugged into the vertical rod, and a spring is provided on the outside of the lower end of the vertical rod.
[0008] Preferably, the suction structure includes a connecting rod, a connecting cylinder, a piston structure, a valve structure, a first connecting pipe and a second connecting pipe, the connecting rod is fixedly inserted at both sides of the lower end of the bottle body, the lower end of the connecting rod is inserted into the connecting cylinder, and the lower end of the connecting rod is connected to the piston structure, a valve structure is installed at the lower end of the connecting cylinder, the lower end of the connecting cylinder is connected to the first connecting pipe, and the upper end of the first connecting pipe is respectively connected to the first cavity or the second cavity, the second connecting pipe is connected to the side of the connecting cylinder, and the lower end of the second connecting pipe is connected to the mixing chamber.
[0009] Preferably, the piston structure includes a connecting cage, a sealing gasket, a docking seat, a plunger and a limit rod. The connecting cage is slidably built into the connecting tube, and the upper end of the connecting cage is connected to the connecting rod. The lower end of the connecting cage is threadedly docked with the docking seat. A sealing gasket is arranged between the connecting cage and the docking seat. A plunger is movably embedded in the docking seat. A limit rod is fixed to the middle part of the upper end of the plunger, and the limit rod is plugged into the inner wall of the connecting cage.
[0010] Preferably, the valve structure includes a connection disk, an opening and closing plate, a rubber sheet, a connecting member and a torsion spring. The connection disk is fastened to the lower end inside the connection cylinder. An opening and closing plate is provided at the upper end of the connection disk. A rubber sheet is installed in the middle of the lower end of the opening and closing plate. One side of the opening and closing plate is rotatably connected to the connecting member. The connecting member is fixedly connected to one side of the upper end of the connection disk. A torsion spring is provided at the rotation docking end of the connecting member and the opening and closing plate.
[0011] Preferably, the stirring structure includes a first cylinder, a second cylinder, a first connecting frame, a moving cylinder, a rotating rod, a pin shaft, a transmission groove, a second connecting frame, stirring blades and a mixing cavity. The first cylinder is installed in the middle of the lower end of the bottle body. A second cylinder is sleeved on the lower end of the first cylinder. The first connecting frame is fastened to the upper end inside the first cylinder. The first connecting frame is fixedly connected to the lower end of the moving cylinder. The rotating rod is inserted into the lower end of the moving cylinder. The pin shaft is inserted into one side of the upper end of the moving cylinder. The outer side of the pin shaft extends into the transmission groove. The transmission groove is opened inside the moving cylinder. A second connecting frame is provided on the outer side of the lower end of the rotating rod. The second connecting frame is connected to the inside of the connection shell. The bottom of the rotating rod is docked with the mixing cavity.
[0012] Preferably, the inside of the docking ring is provided with internal threads, and the docking ring is threadedly docked with the outer side of the lower end of the bottle body through the internal threads provided inside.
[0013] Preferably, the plunger is integrally arranged in an inverted frustum shape, and the upper end of the plunger abuts against the opening end of the top of the docking seat.
[0014] Preferably, both the first cylinder and the second cylinder are provided with hollow interiors, and the hollow interiors of the first cylinder and the second cylinder are both communicated with the liquid guide groove.
[0015] Preferably, the transmission groove is integrally spirally opened on the inner wall of the moving cylinder, and the middle of the lower end of the moving cylinder is hermetically treated with the rotating rod.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] By providing a liquid mixing assembly, that is, a suction structure docked on both sides of the bottom of the bottle body, when the bottle body is pushed and pulled up and down, the intermittent pumping in and output of the materials inside the first cavity and the second cavity can be carried out through the piston structure and the valve structure provided inside, so that the two materials are synchronously input into the mixing cavity for the mixing preparation of new materials, meeting the drinking requirements of the subsequent new materials. Moreover, a stirring structure is also provided on the bottle body, which can move up and down with the bottle body to perform synchronous rotational stirring, realizing the stirring and mixing of the two materials inside the mixing cavity, accelerating the mixing preparation efficiency of the new materials, without waiting for too long time, enabling the user to quickly drink the new materials and meeting the convenient mixing preparation requirements.
[0018] The arrangement of the docking ring, the vertical rod and the spring, namely, the internal thread is provided inside the docking ring, so that when the connecting shell and the bottle body are connected to each other, the threaded fastening docking can be achieved, so as to improve the structural docking firmness, and the stability of the subsequent up and down movement of the bottle body can be guaranteed by the guidance of the vertical rods on both sides. At the same time, supported by the elastic force of the springs arranged at the bottom of the vertical rods on both sides, the docking ring can assist in supporting the bottle body, so as to ensure that the bottle body can be in a stable upper position when no new content is mixed and prepared.
[0019] The setting of the suction structure, that is, the suction structure connected to the two sides of the bottom of the bottle body, can be connected with the first cavity and the second cavity respectively set on both sides of the bottle body through the first connecting pipe arranged inside. When the bottle body is pushed and pulled up and down, the connecting rod connected at the bottom can be inserted into the connecting cylinder and push the piston structure arranged inside the connecting cylinder, so that the piston structure cooperates with the up and down movement and the change of air pressure inside the connecting cylinder to conveniently realize the opening and closing of the valve structure arranged at the lower end of the connecting cylinder. In this way, the contents inside the first cavity and the second cavity can be intermittently drawn in and input into the mixing chamber through the second connecting pipe to mix and prepare the new contents to meet the subsequent drinking needs of the new contents.
[0020] The setting of the stirring structure, that is, when the bottle body moves up and down, the first cylinder arranged in the middle of the lower end can also be driven synchronously, so that the moving cylinder installed inside the first cylinder can rotate the rotating rod through the connection between the transmission groove opened inside and the pin shaft on one side of the upper end of the rotating rod while moving up and down. In this way, the stirring blade connected to the bottom of the rotating rod can rotate rapidly to assist in the stirring and mixing of the two contents in the mixing chamber, speed up the mixing and preparation efficiency of the new content, and enable the user to quickly drink the new content without waiting for too long, thereby meeting the needs of convenient mixing and preparation. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the structure of the present invention;
[0022] Figure 2 It is a schematic diagram of the internal structure of the present invention;
[0023] Figure 3 This is a schematic diagram of the internal structure of the liquid mixing assembly of the present invention;
[0024] Figure 4 It is a schematic diagram of the internal structure of the suction structure of the present invention;
[0025] Figure 5 This is a schematic diagram of the split structure of the piston structure of the present invention;
[0026] Figure 6 For the present invention Figure 4 The enlarged structural diagram at A in the middle;
[0027] Figure 7This is the front view structural schematic diagram of the stirring structure of the present invention;
[0028] Figure 8 This is the front view internal structural schematic diagram of the moving cylinder of the present invention.
[0029] In the figure: bottle body - 1, bottle cap - 2, liquid outlet - 3, sealing cap - 4, partition - 5, first cavity - 6, second cavity - 7, liquid mixing assembly - 8, connecting pipe - 81, connecting cover - 82, liquid guiding groove - 83, connecting shell - 84, docking ring - 85, vertical rod - 86, spring - 87, suction structure - 88, connecting rod - 881, connecting cylinder - 882, piston structure - 883, connecting cage - 8831, sealing gasket - 8832, docking seat - 8833, plunger - 8834, limiting rod - 8835, valve structure - 884, connecting disk - 8841, opening and closing plate - 8842, rubber sheet - 8843, connecting piece - 8844, torsion spring - 8845, first connecting pipe - 885, second connecting pipe - 886, stirring structure - 89, first cylinder - 891, second cylinder - 892, first connecting frame - 893, moving cylinder - 894, rotating rod - 895, pin shaft - 896, transmission groove - 897, second connecting frame - 898, stirring blade - 899, mixing cavity - 810, stabilizing frame - 811, binding rope - 9. Detailed implementation manners
[0030] In order to further explain the technical solution of the present invention, it will be elaborated in detail through specific embodiments below.
[0031] Please refer to Figure 1-2 , the present invention provides a portable double - cavity bottle, including a bottle body 1, a bottle cap 2, a liquid outlet 3, a sealing cap 4, a partition 5, a first cavity 6, a second cavity 7, a liquid mixing assembly 8 and a binding rope 9. The upper end of the bottle body 1 is threadedly docked with the bottle cap 2. On the upper end of the bottle cap 2, liquid outlets 3 are provided on both the left and right sides. The upper end of the liquid outlet 3 is covered with a sealing cap 4, and one side of the sealing cap 4 is integrally connected and combined with the liquid outlet 3. In this way, it can be ensured that the sealing cap 4 can perform stable opening and closing activities. A partition 5 is provided in the middle of the bottle body 1. A first cavity 6 and a second cavity 7 are respectively opened on the left and right sides of the partition 5. The upper ends of the first cavity 6 and the second cavity 7 are both communicated with the liquid outlet 3. A liquid mixing assembly 8 is provided at the lower end of the bottle body 1. A binding rope 9 is tied to the rear side of the upper end of the bottle cap 2. Through the setting of the binding rope 9, the convenient carrying and use of the bottle can be realized.
[0032] Specifically, by rotating the bottle cap 2 connected to the upper end of the bottle body 1, the first cavity 6 and the second cavity 7 on both sides inside the bottle body 1 can be exposed. In this way, the user can pour the materials to be used into the first cavity 6 and the second cavity 7 respectively. After pouring is completed, tighten the bottle cap 2. Thus, through the binding rope 9 connected to the rear side of the bottle cap 2, convenient carrying activities can be carried out. When drinking activities are required, by opening the sealing cover 4 connected to the corresponding liquid outlet 3 at the upper ends of the first cavity 6 and the second cavity 7, the corresponding liquid outlet 3 can be opened. In this way, the materials stored inside the first cavity 6 or the second cavity 7 can be poured out respectively to meet different drinking needs.
[0033] Please refer to Figure 3 , the liquid mixing assembly 8 in this embodiment includes a connecting pipe 81, a connecting cap 82, a liquid guiding groove 83, a connecting shell 84, a docking ring 85, a vertical rod 86, a spring 87, a suction structure 88, a stirring structure 89, a mixing cavity 810 and a stabilizing frame 811. The connecting pipe 81 is installed in the middle of the upper end of the bottle cap 2. A connecting cap 82 is integrally installed at the top of the connecting pipe 81. The lower end of the connecting pipe 81 is communicated with the liquid guiding groove 83, and the liquid guiding groove 83 is opened in the partition plate 5. The connecting shell 84 is arranged at the lower end of the bottle body 1, and a docking ring 85 is built in the upper end of the connecting shell 84. The inside of the docking ring 85 is connected to the outer side of the lower end of the bottle body 1. In this way, the docking combination of the connecting shell 84 and the bottle cap 2 can be assisted. The docking ring 85 is inserted into the left and right sides of the vertical rod 86 respectively. In this way, with the guidance of the two vertical rods 86, the overall stable up and down movement of the docking ring 85 can be realized. Springs 87 are arranged outside the lower ends of the two vertical rods 86, and the two springs 87 are respectively built in the left and right sides of the upper end of the connecting shell 84. Suction structures 88 are installed on both sides inside the connecting shell 84, and the suction structures 88 are docked with the lower end of the bottle body 1. A stirring structure 89 is arranged in the middle of the connecting shell 84, and the stirring structure 89 is connected to the lower end of the bottle body 1. A mixing cavity 810 is opened at the lower end inside the connecting shell 84, and the upper end of the mixing cavity 810 is communicated with the liquid guiding groove 83. The stabilizing frame 811 is docked at the lower end of the bottle body 1, and the inside of the bottle body 1 is respectively connected to the suction structure 88 and the stirring structure 89.
[0034] Among them, the inside of the docking ring 85 is provided with internal threads, and the docking ring 85 is threadedly docked with the outer side of the lower end of the bottle body 1 through the internal threads provided inside, ensuring that the docking ring 85 can be firmly threadedly docked with the lower end of the bottle body 1 and ensuring the firm connection combination of the liquid mixing assembly 8 and the bottle body 1.
[0035] Specifically, after the activity of pouring and storing the materials is completed, the bottle body 1 can be inserted into the upper end inside the connecting shell 84, and by rotating the bottle body 1, the threaded docking of the outer side of the lower end of the bottle body 1 and the docking ring 85 provided inside the upper end of the connecting shell 84 can be realized. In this way, the docking combination of the liquid mixing assembly 8 and the bottle body 1 can be conveniently realized.
[0036] Please refer toFigures 4-6 The suction structure 88 in this embodiment includes a connecting rod 881, a connecting tube 882, a piston structure 883, a valve structure 884, a first connecting tube 885 and a second connecting tube 886. The connecting rod 881 is fixedly inserted into the left and right sides of the lower end of the bottle body 1, the lower end of the connecting rod 881 is inserted into the connecting tube 882, and the lower end of the connecting rod 881 is connected to the piston structure 883, and the outer side of the connecting tube 882 is connected to the inside of the stabilizing frame 811, and the valve structure 884 is installed at the lower end of the connecting tube 882. The lower end of the connecting tube 882 is connected to the first connecting tube 885, and the upper end of the first connecting tube 885 is connected to the first cavity 6 or the second cavity 7 respectively. The second connecting tube 886 is connected to the side of the connecting tube 882, and the lower end of the second connecting tube 886 is connected to the mixing chamber 810. The first connecting tube 885 and the second connecting tube 886 are both arranged in a hose shape.
[0037] Among them, the piston structure 883 includes a connecting cage 8831, a sealing gasket 8832, a docking seat 8833, a plunger 8834 and a limiting rod 8835. The connecting cage 8831 is slidably built into the connecting tube 882, and the upper end of the connecting cage 8831 is connected to the connecting rod 881, and the lower end of the connecting cage 8831 is threadedly connected to the docking seat 8833, so as to ensure the firmness of the structure. A sealing gasket 8832 is arranged between the connecting cage 8831 and the docking seat 8833, and the outer part of the sealing gasket 8832 is against the inner wall of the connecting tube 882, so as to ensure the efficiency of the suction process. A plunger 8834 is movably embedded in the docking seat 8833, and a limiting rod 8835 is fixed in the middle of the upper end of the plunger 8834, and the limiting rod 8835 is plugged into the inner wall of the connecting cage 8831. Through the setting of the limiting rod 8835, the plunger 8834 can be ensured to move up and down smoothly as a whole.
[0038] Among them, the valve structure 884 includes a connecting disk 8841, an opening and closing plate 8842, a rubber sheet 8843, a connecting piece 8844 and a torsion spring 8845. The connecting disk 8841 is fastened to the lower end of the connecting tube 882, and the middle part of the connecting disk 8841 is hollow. The upper end of the connecting disk 8841 is provided with an opening and closing plate 8842, and the middle part of the lower end of the opening and closing plate 8842 is provided with a rubber sheet 8843, and one side of the opening and closing plate 8842 is rotatably connected to the connecting piece 8844, thereby ensuring that the opening and closing plate 8842 can perform stable opening and closing activities as a whole. The connecting piece 8844 is fixedly connected to one side of the upper end of the connecting disk 8841, and a torsion spring 8845 is provided at the rotating docking end of the connecting piece 8844 and the opening and closing plate 8842. Through the assistance of the torsion spring 8845, the opening and closing plate 8842 can be automatically closed, and the overall elastic force of the torsion spring 8845 supports the subsequent suction activities of the piston structure 883.
[0039] Among them, the plunger 8834 is arranged in an inverted cone shape as a whole, and the upper end of the plunger 8834 is against the top opening end of the docking seat 8833, ensuring that the plunger 8834 can achieve efficient suction activity through its own shape during the up and down movement.
[0040] Specifically, when the contents stored in the first cavity 6 and the second cavity 7 are to be mixed and drunk, the bottle body 1 can be pressed down to drive the docking ring 85 connected to the lower end to move downward, and the docking ring 85 can cooperate with the vertical rods 86 connected to both sides to move downward stably, and compress the spring 87 provided on the outer side of the lower end. When the bottle body 1 moves downward, the connecting rods 881 connected to both sides of the lower end of the bottle body 1 will be inserted into the connecting cylinder 882 and push the connecting cage 8831 connected at the bottom. When the connecting cage 8831 moves downward along the connecting cylinder 882, the sealing gasket 8832, the docking seat 8833 and the plunger 883 will be simultaneously realized. 4 is driven downward, and the plunger 8834 between the connecting cage 8831 and the docking seat 8833 will be affected by the downward movement and the strengthening effect of the internal air pressure of the connecting tube 882 to perform a self-upward movement. When the bottle body 1 completes the downward push movement and performs the upward pull movement, the connecting rod 881 can realize the synchronous upward pull of the connecting cage 8831, the sealing gasket 8832, the docking seat 8833 and the plunger 8834. At this time, the plunger 8834 that is located between the connecting cage 8831 and the docking seat 8833 and is opened will perform a self-closing movement through the change of the internal air pressure of the connecting tube 882, and the opening and closing plate 88 installed at the lower end of the connecting tube 882 42, it can be opened accordingly, so that the contents stored in the first cavity 6 and the second cavity 7 will enter the interior of the connecting cylinder 882 through the first connecting pipe 885 correspondingly connected at the bottom through the suction force. When the bottle body 1 is pushed down again, the opened opening and closing plate 8842 will automatically close the bottom opening of the connecting cylinder 882 through the support of the internal air pressure of the connecting cylinder 882 and the restoring elastic force of the torsion spring 8845 connected to one side, so as to prevent the contents from entering. At the same time, the plunger 8834 between the connecting cage 8831 and the docking seat 8833 will be opened again, so that the contents entering the interior of the connecting cylinder 882 can be sucked out through The opened plunger 8834 enters the upper end of the connecting tube 882 and is input into the mixing chamber 810 opened at the lower end of the connecting tube 882 along the second connecting pipe 886 connected to the side of the connecting tube 882, so that the contents in the first cavity 6 and the second cavity 7 are mixed in the mixing chamber 810 to form new contents. When the new contents need to be poured out, the connecting cover 82 at the upper end of the connecting pipe 81 is opened. Thus, when the bottle body 1 is held to pour water, the new contents mixed in the mixing chamber 810 can flow to the connecting pipe 81 through the liquid guide groove 83 opened in the partition 5, and then poured out for drinking.
[0041] During the above process, through the overall suction activity of the suction structure 88, the partial extraction and mixing of the materials in the first cavity 6 and the second cavity 7 can be assisted to avoid the complete mixing of the materials in the first cavity 6 and the second cavity 7, which may cause inconvenience when it is necessary to drink one of the materials in the first cavity 6 or the second cavity 7 subsequently. Secondly, when the bottle body 1 is not pushed or pulled up and down, the docking ring 85 can support the whole bottle body 1 by the elastic force of the springs 87 arranged outside the lower ends of the two vertical rods 86, so that the bottle body 1 is in a stable state.
[0042] Please refer to Figures 7-8 , in this embodiment, the stirring structure 89 includes a first cylinder 891, a second cylinder 892, a first connecting frame 893, a moving cylinder 894, a rotating rod 895, a pin shaft 896, a transmission groove 897, a second connecting frame 898, stirring blades 899 and a mixing cavity 810. The first cylinder 891 is vertically connected to the middle of the lower end of the bottle body 1, and the second cylinder 892 is sleeved at the lower end of the first cylinder 891, and the lower end of the second cylinder 892 is connected to the inside of the connecting shell 84. In this way, the first cylinder 891 and the second cylinder 892 can stably form a telescopic state. The upper end inside the first cylinder 891 is fixedly connected with the first connecting frame 893, and the first connecting frame 893 is integrally arranged in a cross shape. The lower end of the first connecting frame 893 is fixedly connected with the moving cylinder 894. The rotating rod 895 is movably inserted into the lower end of the moving cylinder 894. The pin shaft 896 is inserted into the left side of the upper end of the moving cylinder 894, and the outside of the pin shaft 896 extends into the transmission groove 897. The transmission groove 897 is opened inside the moving cylinder 894. The outside of the lower end of the rotating rod 895 is provided with the second connecting frame 898, and the second connecting frame 898 is connected to the inside of the connecting shell 84, and the shape of the second connecting frame 898 is the same as that of the first connecting frame 893. The bottom of the rotating rod 895 is connected to the mixing cavity 810.
[0043] Among them, both the first cylinder 891 and the second cylinder 892 are provided with hollow openings, and the hollow parts inside the first cylinder 891 and the second cylinder 892 are both communicated with the liquid guide groove 83. Ensuring the connection and cooperation of the first cylinder 891, the second cylinder 892 and the liquid guide groove 83 can efficiently realize the pouring and use of the new material.
[0044] Among them, the transmission groove 897 is integrally formed in a spiral shape on the inner wall of the moving cylinder 894, and the middle of the lower end of the moving cylinder 894 is hermetically treated with the rotating rod 895 to ensure that the new solution is not easily introduced into the inside of the moving cylinder 894 and to ensure the dryness inside the moving cylinder 894.
[0045] Specifically, when pushing and pulling the bottle body 1 up and down to suck and mix new materials, the first cylinder 891 docked at the middle of the lower end of the bottle body 1 can move down synchronously. During the downward movement of the first cylinder 891, the first connecting frame 893 fastened to the upper end inside can be driven, and then the moving cylinder 894 docked at the lower end of the first connecting frame 893 can move into the second cylinder 892. Since a spiral transmission groove 897 is formed inside the moving cylinder 894, during the downward movement of the moving cylinder 894, it can be transmitted to the rotating rod 895 with a pin shaft 896 at the upper end, so that the rotating rod 895 moves and rotates along with the downward movement of the moving cylinder 894. Thus, with the rotation of the moving cylinder 894, the stirring blade 899 docked at the lower end of the moving cylinder 894 and inside the mixing chamber 810 can rotate synchronously to stir and mix the materials entering the mixing chamber 810, realizing the auxiliary stirring and mixing of the two materials, improving the forming efficiency of the new materials, and meeting the user's drinking needs without excessive waiting time.
[0046] The above are only the preferred examples of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or equivalently replace some of the technical features. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A portable double-chamber bottle, characterized in that: The invention comprises a bottle body (1), wherein the upper end of the bottle body (1) is threadedly connected to a bottle cap (2), and both sides of the upper end of the bottle cap (2) are provided with liquid outlets (3), and the upper end of the liquid outlet (3) is covered with a sealing cover (4), and one side of the sealing cover (4) is connected to the liquid outlet (3), a partition (5) is provided in the middle of the bottle body (1), and a first cavity (6) and a second cavity (7) are respectively opened on the left and right sides of the partition (5), and the upper ends of the first cavity (6) and the second cavity (7) are both connected to the liquid outlet (3), a liquid mixing component (8) is provided at the lower end of the bottle body (1), and a binding rope (9) is tied to the rear side of the upper end of the bottle cap (2), and the liquid mixing component (8) comprises a connecting shell (84), and the connecting shell (84) is arranged at the lower end of the bottle body (1), suction structures (88) are installed on both sides of the interior of the connecting shell (84), and the suction structure (88) is connected to the lower end of the bottle body (1), a stirring structure (89) is arranged in the middle of the connecting shell (84), and the stirring structure (89) is connected to the lower end of the bottle body (1), a mixing chamber (810) is opened at the lower end of the interior of the connecting shell (84), and the upper end of the mixing chamber (810) is connected to the liquid guide groove (83), the suction structure (88) and the stirring structure (89) are connected to the outside of the suction structure (88) and the stirring structure (89), and the stable frame (811) is arranged to be connected to the lower end of the bottle body (1), and the suction structure (88) and the stirring structure (89) are respectively connected to the inside of the bottle body (1).
2. A portable double-chamber bottle according to claim 1, characterized in that: The liquid mixing assembly (8) comprises a connecting pipe (81), a connecting cover (82), a liquid guiding groove (83), a docking ring (85), a vertical rod (86) and a spring (87). The connecting pipe (81) is mounted at the middle of the upper end of the bottle cap (2). The connecting cover (82) is integrally mounted on the top of the connecting pipe (81). The lower end of the connecting pipe (81) is connected to the liquid guiding groove (83), and the liquid guiding groove (83) is arranged inside the partition (5). The docking ring (85) is arranged at the upper end of the connecting shell (84). The interior of the docking ring (85) is connected to the outer side of the lower end of the bottle body (1), and both sides of the docking ring (85) are plugged into the vertical rod (86). A spring (87) is arranged outside the lower end of the vertical rod (86).
3. A portable double-chamber bottle according to claim 1, characterized in that: The suction structure (88) comprises a connecting rod (881), a connecting tube (882), a piston structure (883), a valve structure (884), a first connecting tube (885) and a second connecting tube (886); the connecting rod (881) is fixedly plugged into both sides of the lower end of the bottle body (1); the lower end of the connecting rod (881) is inserted into the interior of the connecting tube (882), and the lower end of the connecting rod (881) is connected to the piston structure (883); the lower end of the connecting tube (882) is provided with a valve structure (884); the lower end of the connecting tube (882) is connected to the first connecting tube (885), and the upper end of the first connecting tube (885) is connected to the first cavity (6) or the second cavity (7), respectively; the second connecting tube (886) is connected to the side of the connecting tube (882), and the lower end of the second connecting tube (886) is connected to the mixing chamber (810).
4. A portable double-chamber bottle according to claim 3, characterized in that: The piston structure (883) comprises a connecting cage (8831), a sealing gasket (8832), a docking seat (8833), a plunger (8834) and a limiting rod (8835); the connecting cage (8831) is slidably built into the connecting tube (882); the upper end of the connecting cage (8831) is connected to the connecting rod (881); the lower end of the connecting cage (8831) is threadedly docked with the docking seat (8833); a sealing gasket (8832) is provided between the connecting cage (8831) and the docking seat (8833); a plunger (8834) is movably embedded in the docking seat (8833); a limiting rod (8835) is fixedly provided in the middle of the upper end of the plunger (8834); and the limiting rod (8835) is plugged into the inner wall of the connecting cage (8831).
5. The portable double-chamber bottle according to claim 3, characterized in that: The valve structure (884) comprises a connecting disk (8841), an opening and closing plate (8842), a rubber sheet (8843), a connecting piece (8844) and a torsion spring (8845); the connecting disk (8841) is fastened to the lower end of the connecting tube (882); the upper end of the connecting disk (8841) is provided with an opening and closing plate (8842); the middle part of the lower end of the opening and closing plate (8842) is provided with a rubber sheet (8843); one side of the opening and closing plate (8842) is rotatably connected to the connecting piece (8844); the connecting piece (8844) is fixedly connected to one side of the upper end of the connecting disk (8841); and a torsion spring (8845) is provided at the rotatably butting end between the connecting piece (8844) and the opening and closing plate (8842).
6. The portable double-chamber bottle according to claim 1, characterized in that: The stirring structure (89) comprises a first cylinder (891), a second cylinder (892), a first frame (893), a moving cylinder (894), a rotating rod (895), a pin (896), a transmission groove (897), a second frame (898), a stirring blade (899) and a mixing chamber (810), wherein the first cylinder (891) is installed at the middle part of the lower end of the bottle body (1), and the second cylinder (892) is sleeved at the lower end of the first cylinder (891), the first frame (893) is fastened to the upper end of the first cylinder (891), and the first frame (893) is fixed to the inner upper end of the first cylinder (891). The lower end of the frame (893) is fixedly connected to a moving cylinder (894), the lower end of the moving cylinder (894) is plugged with a rotating rod (895), one side of the upper end of the moving cylinder (894) is plugged with a pin shaft (896), and the outer side of the pin shaft (896) extends into a transmission groove (897), and the transmission groove (897) is opened in the moving cylinder (894), the outer side of the lower end of the rotating rod (895) is provided with a second connecting frame (898), and the second connecting frame (898) is connected to the inside of the connecting shell (84), and the bottom of the rotating rod (895) is connected to a mixing chamber (810).
7. The portable double-chamber bottle according to claim 2, characterized in that: The interior of the docking ring (85) is provided with an internal thread, and the docking ring (85) is threadably connected to the outer side of the lower end of the bottle body (1) via the internal thread.
8. The portable double-chamber bottle according to claim 4, characterized in that: The plunger (8834) is arranged in an inverted truncated cone shape as a whole, and the upper end of the plunger (8834) abuts against the top opening end of the docking seat (8833).
9. The portable double-chamber bottle according to claim 6, characterized in that: The first cylinder (891) and the second cylinder (892) are both hollow, and the hollow parts inside the first cylinder (891) and the second cylinder (892) are both connected to the liquid guide groove (83).
10. The portable double-chamber bottle according to claim 6, characterized in that: The transmission groove (897) is spirally formed on the inner wall of the moving cylinder (894), and the middle portion of the lower end of the moving cylinder (894) is sealed with the rotating rod (895).
Citation Information
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