Spraying and pouring integrated oil bottle
The rotating dust cover structure solves the problems of cumbersome spray-and-pour oil can structure and forgetting to close the cover, realizing a simple and hygienic spray-and-pour function that can adapt to different oil usage needs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SINOGLASS HOUSEWARES CO LTD
- Filing Date
- 2025-06-04
- Publication Date
- 2026-04-14
AI Technical Summary
The existing integrated spray and pour oil can has a cumbersome structure. When pouring oil, it is necessary to control the dust cover to prevent it from flipping over. It is also inconvenient for large amounts of oil to be used, and it is easy to forget to close the cover.
A spray-and-pour integrated oil bottle was designed, featuring a rotating dust cover. By rotating the dust cover clockwise or counterclockwise, the pouring port and spray port can be opened or blocked simultaneously, simplifying operation and preventing the cover from flipping over.
It achieves convenient and hygienic spraying and pouring functions, has a neat appearance, avoids the problem of forgetting to close the cover, and adapts to different oil usage needs.
Smart Images

Figure CN224117891U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of kitchenware technology, specifically to an integrated spray and pour oil bottle. Background Technology
[0002] Common kitchen containers for storing cooking oil typically have a lid on the pouring spout to ensure oil cleanliness. To pour oil, the lid is opened, and then poured; when finished, the lid is closed. However, this design often results in forgetting to close the lid after use. With improved lifestyles and government initiatives, metered spray oil dispensers or integrated spray-and-pour oil dispensers designed to control cooking oil intake have emerged. However, a single spray dispenser is inconvenient for handling large volumes of oil, and existing integrated spray oil dispensers require at least a dust cover or stopper at the pouring spout, often using a hinged connection to the cap. This cumbersome structure requires users to prevent the dust cover from flipping back and forth during pouring, which can affect oil flow. Utility Model Content
[0003] To overcome the shortcomings of the prior art, this utility model provides an integrated spray-and-pour oil bottle, the specific technical solution of which is as follows:
[0004] An integrated spray and pour oil bottle includes a bottle body, a dust cover, a bottom cover, and a top cover disposed on top of the dust cover; the bottom cover is disposed on the top of the bottle body and threadedly connected to the bottle mouth of the bottle body; the top cover is snapped into the bottom cover; the bottom cover has a pouring port and a spray port symmetrically arranged on both sides along its central axis, the spray port is connected to the inner cavity of the bottle body through a spraying assembly; the pouring port is connected to the inner cavity of the bottle body through an oil outlet channel; the dust cover is sleeved around the top cover and rotatably connected to the bottom cover, and by rotating the dust cover clockwise or counterclockwise, its relative position with the bottom cover can be adjusted to open or close the pouring port and the spray port simultaneously.
[0005] Preferably, the bottom cover includes an oil port seat, which includes two first protrusions symmetrical about a central axis and two first recesses located between the two first protrusions; the pouring port and the spray port are respectively disposed on the sidewalls of the two first protrusions of the oil port seat; the oil outlet channel is disposed on the inner wall of the first protrusion near the pouring port, the top end of the oil outlet channel communicates with the pouring port, and the bottom end of the oil outlet channel communicates with the inner cavity of the bottle; the bottom cover has a first through hole for installing the spraying assembly along its central axis; the bottom cover has an air hole communicating with the inner cavity of the bottle at a position on the side of the first through hole; the inner walls of the two first recesses are symmetrically provided with arc-shaped grooves; the outer wall of the bottom cover is provided with an annular groove; and a plurality of limiting blocks are equally spaced in the annular groove.
[0006] Preferably, the fuel injection assembly includes a fuel injector, a connecting rod, a pressurizing component, and a suction tube; one end of the connecting rod is connected to the bottom of the fuel injector, and the other end extends into the inner cavity of the pressurizing component; a stopper is provided at the end of the connecting rod near the inner cavity of the pressurizing component, and a spring is also sleeved on the surface of the connecting rod located in the inner cavity of the pressurizing component; the suction tube is detachably disposed at the bottom of the pressurizing component; the pressurizing component is inserted into the first through hole of the bottom cover, the fuel injector is exposed at the top of the first through hole, and the suction tube extends into the inner cavity of the bottle; a pressure head is provided at the top of the fuel injector.
[0007] Preferably, the dust cover includes two second protrusions symmetrical about a central axis and two second recesses located between the two second protrusions; the inner wall of the dust cover is provided with sliders of the same number as the limiting blocks at the position corresponding to the arc-shaped sliding groove, and the dust cover is slidably connected to the annular sliding groove of the bottom cover through the sliders; the sliders are provided with limiting grooves adapted to the size of the limiting blocks.
[0008] Preferably, the top cover includes an integrally formed cover plate and a connecting seat; a second through hole for accommodating the pressure head is provided along the central axis of the cover plate and the connecting seat; the connecting seat is provided with a first structural clearance corresponding to the position of the oil pouring port and the oil spraying port; a locking block is provided on the outer wall of the connecting seat corresponding to the position of the arc-shaped groove, and the connecting seat is engaged with the arc-shaped groove of the bottom cover by the locking block.
[0009] Preferably, the fuel injector includes a nozzle portion and a rib, with the nozzle portion facing the side of the fuel injection port.
[0010] More preferably, the pressure head is connected to the top of the fuel injector via a connector; the connector has a slot corresponding to the position of the rib, and the rib of the fuel injector is inserted into the slot of the connector; the pressure head has a second structural clearance corresponding to the position of the first structural clearance.
[0011] More preferably, the shape of the cover plate is adapted to the shape formed by the inner edges of the second protrusion and the second recess of the dust cover; the shape of the oil port seat is the same as that of the dust cover and its size is smaller than that of the dust cover.
[0012] The beneficial effects of this utility model are:
[0013] This utility model provides a method that can simultaneously achieve both spraying and pouring, and can seal two oil ports at the same time with a single dust cover, making it convenient, clean and hygienic to operate;
[0014] In addition, compared with the hinged method of traditional dust covers, this utility model provides a rotating dust cover structure. By rotating the dust cover clockwise or counterclockwise, two oil outlets can be opened or blocked at the same time. While the appearance is neat, the dust cover will not flip back and forth during operation, thus affecting the oil output. Attached Figure Description
[0015] The accompanying drawings constituting this utility model are provided to further understand this application and do not constitute an undue limitation on this application.
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 A schematic diagram showing the structure after removing the dust cover;
[0018] Figure 3 This is a structural diagram of the bottom cover and pressure head section;
[0019] Figure 4 for Figure 3 A bottom view;
[0020] Figure 5 This is a schematic diagram of the bottom cover structure;
[0021] Figure 6 This is a schematic diagram of the dust cover structure;
[0022] Figure 7 This is a schematic diagram of the top cover structure;
[0023] Figure 8 This is a schematic diagram of the pressure head structure;
[0024] Figure 9 This is a schematic diagram of the fuel injection assembly.
[0025] Figure 10 (a) is a schematic diagram of the dual oil outlets in the closed state;
[0026] Figure 10 (b) is a schematic diagram of the dual oil outlets in the open state;
[0027] In the diagram, 1-bottle body; 2-bottom cap; 201-oil port seat; 202-annular groove; 2021-limiting block; 203-oil outlet; 204-oil nozzle; 205-oil outlet channel; 206-first through hole; 207-air hole; 208-arc groove; 3-dust cover; 301-slider; 3011-limiting groove; 4-top cap; 401-cover plate; 402-connecting seat; 4021-block; 403-first structural clearance; 404-second through hole; 5-pressure head; 501-connector; 5011-slot; 502-second structural clearance; 6-oil injection assembly; 601-oil injector head; 6011-nozzle part; 6012-rib plate; 602-connecting rod; 603-pressurizing component; 604-sucking tube. Detailed Implementation
[0028] The specific implementation of the spray-and-pour integrated oil bottle provided by this utility model will be further described in conjunction with the accompanying drawings and embodiments.
[0029] like Figure 1-4 As shown, a spray-and-pour integrated oil bottle includes a bottle body 1, a bottom cap 2, a dust cover 3, and a top cap 4 disposed on top of the dust cover 3. The bottom cap 2 is disposed on the top of the bottle body 1 and threadedly connected to the bottle opening of the bottle body 1; the top cap 4 is snap-fitted to the bottom cap 2; the bottom cap 2 has symmetrically arranged pouring ports 203 and spray ports 204 on both sides along its central axis; the pouring ports 203 communicate with the inner cavity of the bottle body 1 through an oil outlet channel 205; the spray ports 204 communicate with the inner cavity of the bottle body 1 through an oil spraying assembly 6.
[0030] Preferably, the dust cover 3 is sleeved around the top cover 4 and rotatably connected to the bottom cover 2. By rotating the dust cover 3 90° clockwise or counterclockwise, its relative position with the bottom cover 2 and the top cover 4 can be adjusted, thereby enabling the simultaneous opening or blocking of the oil inlet 203 and the oil injector 204.
[0031] like Figure 5 As shown, the bottom cover 2 includes an oil port seat 201, which includes two first protrusions symmetrical about a central axis and two first recesses located between the two first protrusions. The pouring port 203 and the spray port 204 are respectively disposed on the sidewalls of the two first protrusions of the oil port seat 201. The bottom cover 2 has a first through hole 206 along its central axis for installing the spray assembly 6; the bottom cover 2 has an air hole 207 next to the first through hole 206, communicating with the inner cavity of the bottle body 1; the oil outlet channel 205 is disposed on the inner wall of the first protrusion near the pouring port 203, with its top end communicating with the pouring port 203 and its bottom end communicating with the inner cavity of the bottle body 1, thereby realizing the pouring out of the oil in the bottle.
[0032] For the installation of the dust cover 3 and the top cover 4, the inner sidewalls of the two first recesses are symmetrically provided with arc-shaped grooves 208; the outer sidewall of the bottom cover 2 is provided with an annular groove 202 located below the oil port seat 201; a number of limiting blocks 2021 are provided at equal intervals in the annular groove 202 to limit the rotation angle of the dust cover 3.
[0033] like Figure 9As shown, the fuel injection assembly 6 includes a fuel injector 601, a connecting rod 602, a pressurizing component 603, and a suction tube 604. The top end of the connecting rod 602 is connected to the bottom of the fuel injector 601, and the bottom end of the connecting rod 602 extends into the inner cavity of the pressurizing component 603. A stopper is provided at the end of the connecting rod 602 near the inner cavity of the pressurizing component 603, and a spring is also sleeved on the surface of the connecting rod 602 located within the inner cavity of the pressurizing component 603. The suction tube 604 is detachably mounted at the bottom of the pressurizing component 603 and extends into the inner cavity of the bottle body 1, enabling communication between the fuel injection assembly and the inner cavity of the bottle body 1. It is worth noting that the fuel injection assembly 6 is existing technology, and its detailed structure and working principle will not be described further.
[0034] Preferably, the booster 603 is inserted and fixed to the first through hole 206 of the bottom cover 2, and the fuel injector 601 is exposed at the top of the first through hole 206 and fixed to the connector 501 of the pressure head 5.
[0035] Preferably, the fuel injector 601 includes a nozzle portion 6011 and a rib plate 6012, with the nozzle portion 6011 mounted on the side facing the fuel injection port 204.
[0036] like Figure 6 As shown, the dust cover 3 includes two second protrusions symmetrical about a central axis and two second recesses located between the two second protrusions. The inner wall of the dust cover 3 has sliders 301, the same number as the limiting blocks 2021, corresponding to the positions of the arc-shaped sliding groove 201. The dust cover 3 is slidably connected to the annular sliding groove 202 of the bottom cover 2 via the sliders 301, enabling the dust cover 3 to rotate. Preferably, each slider 301 has a limiting groove 3011 that matches the size of the limiting block 2021. When the limiting block 2021 rotates into the limiting groove 3011, the dust cover 3 is prevented from rotating further, thus limiting the rotation angle of the dust cover 3.
[0037] like Figure 7 As shown, the top cover 4 includes an integrally formed cover plate 401 and a connecting seat 402. A second through hole 404 for accommodating the pressure head 5 is provided along the central axis of the cover plate 401 and the connecting seat 402. The connecting seat 402 has a first structural clearance 403 corresponding to the positions of the oil outlet 203 and the oil injection port 204. A locking block 4021 is provided on the outer wall of the connecting seat 402 corresponding to the position of the arc-shaped groove 208 of the oil outlet seat 201. The connecting seat 402 is engaged and fixed to the arc-shaped groove 208 of the bottom cover 2 via the locking block 4021.
[0038] like Figure 8As shown, the connector 501 of the pressure head 5 has a slot 5011 corresponding to the position of the rib 6012, and the rib 6012 of the injector head 601 is inserted into the slot 5011 of the connector 501. Preferably, the pressure head 5 has a second structural clearance 502 corresponding to the position of the first structural clearance 403, and the first structural clearance 403 and the second structural clearance 502 are reserved spaces for the installation of the oil outlet channel 205 and the oil injection assembly 6.
[0039] It is worth noting that the shape of the cover plate 401 of the top cover 4 is adapted to the shape formed by the inner edge of the second protrusion and the second recess of the dust cover 3; the shape of the oil port seat 201 is the same as that of the dust cover 3 and its size is smaller than that of the dust cover 3. This design can both block the dual oil outlets of the dust cover 3 and prevent the top cover 4 from affecting the rotation of the dust cover 3.
[0040] In use, rotate the dust cover 3 90° until the limiting groove 3011 of the slider 301 on the inner side wall of the dust cover 3 is exactly rotated to the limiting stop 2021 in the annular slide groove 202. At this time, the first recess of the oil port seat 201 and the second recess of the dust cover 3 coincide, and the oil pouring port 203 and the oil spray port 204 are directly opposite the first and second recesses, that is, the oil pouring port 203 and the oil spray port 204 are open. The user can choose to spray or pour oil according to the usage requirements. Figure 10 As shown in (b);
[0041] After use, rotate the dust cover 3 in the opposite direction. The limiting block 2021 in the annular groove 202 rotates out of the limiting groove 3011 of the slider 301 on the inner side wall of the dust cover 3 until the cover plate 401 of the top cover 4 covers the inner edge of the top of the dust cover 3. At this time, the two second protrusions of the dust cover 3 cover the oil drain port 203 and the oil injector port 204 again, thus completing the sealing of the oil drain port 203 and the oil injector port 204. Figure 10 As shown in (a).
[0042] This utility model provides a method that can simultaneously achieve both spraying and pouring, and can seal two oil ports at the same time with a single dust cover. It is convenient, clean and hygienic to operate. In addition, compared with the hinged method of traditional dust covers, the rotating dust cover structure of this utility model has a neat appearance, and the dust cover will not flip back and forth during operation, thus not affecting the oil flow.
[0043] In this utility model, terms such as "upper," "lower," "bottom," and "top" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are merely used to facilitate the description of the structural relationships of the various components or elements of this utility model and do not specifically refer to any part or element of this utility model; they should not be construed as limiting this utility model. Terms such as "connected" and "linked" should be interpreted broadly, indicating a fixed connection, an integral connection, or a detachable connection; a direct connection or an indirect connection through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in this utility model can be determined according to the specific circumstances, and they should not be construed as limiting this utility model.
[0044] Of course, the above description is not intended to limit the present utility model, and the present utility model is not limited to the examples given above. Any changes, modifications, additions or substitutions made by those skilled in the art within the scope of the present utility model should also fall within the protection scope of the present utility model.
Claims
1. A spray-on integrated oil bottle, characterized in that, It includes a bottle body, a dust cover, a bottom cover, and a top cover disposed on top of the dust cover; the bottom cover is disposed on the top of the bottle body and is threadedly connected to the bottle mouth of the bottle body; the top cover is snapped into the bottom cover; The bottom cover has an oil pouring port and an oil spraying port symmetrically arranged on both sides along its central axis. The oil spraying port is connected to the inner cavity of the bottle through an oil spraying assembly. The oil pouring port is connected to the inner cavity of the bottle through an oil outlet channel. The dust cover is fitted around the top cover and rotatably connected to the bottom cover. By rotating the dust cover clockwise or counterclockwise, its relative position with the bottom cover can be adjusted to open or close the oil drain port and the oil injector port simultaneously.
2. The spray-on integrated oil bottle according to claim 1, characterized in that, The bottom cover includes an oil port seat, which includes two first protrusions symmetrical about a central axis and two first recesses located between the two first protrusions; the oil pouring port and the oil spraying port are respectively disposed on the sidewalls of the two first protrusions of the oil port seat. The oil outlet channel is located on the inner wall of the first protrusion near the oil pouring port. The top end of the oil outlet channel is connected to the oil pouring port, and the bottom end of the oil outlet channel is connected to the inner cavity of the bottle. The bottom cover has a first through hole for installing the oil spraying assembly along its central axis; the bottom cover has an air hole communicating with the inner cavity of the bottle at a position on one side of the first through hole. The inner sidewalls of the two first recesses are symmetrically provided with arc-shaped grooves; The outer wall of the bottom cover is provided with an annular groove; a number of limiting blocks are provided at equal intervals in the annular groove.
3. The spray-on integrated oil bottle according to claim 2, characterized in that, The fuel injection assembly includes a fuel injector, a connecting rod, a booster component, and a suction pipe; One end of the connecting rod is connected to the bottom of the fuel injector, and the other end extends into the inner cavity of the booster; a plug is provided at the end of the connecting rod near the inner cavity of the booster, and a spring is also sleeved on the surface of the connecting rod located in the inner cavity of the booster; the suction tube is detachably provided at the bottom of the booster; The pressurizing component is inserted into the first through hole of the bottom cover, the fuel injector is exposed at the top of the first through hole, and the suction tube extends into the inner cavity of the bottle. The top of the fuel injector is equipped with a pressure head.
4. The spray-on integrated oil bottle according to claim 2, characterized in that, The dust cover includes two second protrusions symmetrical about a central axis and two second recesses located between the two second protrusions; The inner wall of the dust cover is provided with sliders of the same number as the limiting blocks at the position corresponding to the arc-shaped sliding groove. The dust cover is slidably connected to the bottom cover through the annular sliding groove of the sliders. The sliders are provided with limiting grooves that are adapted to the size of the limiting blocks.
5. The spray-on integrated oil bottle according to claim 3, characterized in that, The top cover includes an integrally formed cover plate and a connecting seat; a second through hole for accommodating the pressure head is provided along the central axis of the cover plate and the connecting seat; the connecting seat is provided with a first structural clearance corresponding to the position of the oil pouring port and the oil spraying port; a locking block is provided on the outer wall of the connecting seat corresponding to the position of the arc-shaped groove, and the connecting seat is engaged with the arc-shaped groove of the bottom cover through the locking block.
6. The spray-on integrated oil bottle according to claim 5, characterized in that, The fuel injector includes a nozzle portion and a rib, with the nozzle portion facing the side of the fuel injection port.
7. The spray-on integrated oil bottle according to claim 6, characterized in that, The pressure head is connected to the top of the fuel injector via a connector; the connector has a slot corresponding to the position of the rib, and the rib of the fuel injector is inserted into the slot of the connector; the pressure head has a second structural clearance corresponding to the position of the first structural clearance.
8. The spray-on integrated oil bottle according to claim 5, characterized in that, The shape of the cover plate is adapted to the shape formed by the inner edges of the second protrusion and the second recess of the dust cover; The shape of the oil port seat is the same as that of the dust cover, but its size is smaller than that of the dust cover.