Portable soft pot with energy gel
By designing a portable soft-serve energy gel bottle with a flexible body and spout, the problem of inconvenience in carrying and consuming energy gels has been solved, achieving the effect of convenient squeezing, storage, and control of intake.
Patent Information
- Application Number
- CN202520509181.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-03-21
AI Technical Summary
Existing energy gel containers are inconvenient to carry and consume; hard-sided containers make it difficult to pour out jelly-like energy gels, while soft-sided spouts make it difficult to control intake.
A portable soft energy gel bottle has been designed, featuring a soft bottle body and an elastic spout. The spout closes automatically when no external force is applied, and the squeezing part works with the bottle body to expel the gel-like contents. The bottle body is equipped with a capacity indicator scale.
It enables convenient squeezing and storage of gel-like contents, making it easy to control intake and avoid waste when consuming, and is suitable for use in sports scenarios.
Smart Images

Figure CN223865428U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of portable container technology, specifically relating to a portable soft energy gel jar. Background Technology
[0002] Energy gels, also known as energy jelly, are thick, jelly-like carbohydrate gels. Users can ingest energy gels before, during, or after high-intensity or prolonged exercise. Energy gels provide the body with easily absorbed energy and electrolytes, thus maintaining the user's athletic performance. Currently, energy gels are mostly packaged in small packets, each with a small capacity. Depending on exercise intensity and energy expenditure, users may need to consume multiple packets in several sessions. Carrying multiple packets for consumption is inconvenient, especially when consuming one and a half packets at a time. This makes it difficult to control intake, and the remaining half-packet or so is inconvenient to carry and store, often resulting in waste. Therefore, a more portable container that is easier for users to store and consume energy gels is needed.
[0003] While some existing water bottles are designed for sports, they mostly use rigid bodies. Energy gels, being jelly-like and highly viscous, tend to adhere to the inner wall of a rigid bottle, making it difficult to pour them out. Therefore, these bottles are unsuitable for storing and consuming energy gels. Although some water bottles use flexible bodies that can be squeezed to expel energy gels, these are primarily designed for water and liquid energy drinks. Their spouts are typically small and round, suitable for normal drinking, but jelly-like energy gels are difficult to pass through, making them inconvenient for consumption. Furthermore, storing multiple packets of energy gels in a current flexible bottle makes it difficult for users to track their intake, potentially leading to overconsumption or underconsumption, which can negatively impact their performance during exercise. Utility Model Content
[0004] This invention is designed to solve the aforementioned problems, and aims to provide a portable soft jug that can easily inject and extrude highly viscous gel-like contents. The technical solution adopted by this invention is as follows:
[0005] This utility model provides a portable soft energy gel flask, which has the following technical features: a soft flask body with an inner cavity for storing gel-like contents; a spout disposed at one end of the soft flask body and having a channel communicating with the inner cavity; and a squeezing part disposed on the soft flask body for squeezing the soft flask body to expel the gel-like contents from the inner cavity through the spout. The spout is made of an elastic material, and the cross-section of the end of the spout connected to the soft flask body is elliptical. When not subjected to external force, the outer end of the spout is strip-shaped, causing the outer end of the channel to close.
[0006] The portable soft energy gel bottle provided by this utility model may also have the following technical features, wherein the soft bottle body includes: an upper part of the bottle body with an elliptical cross-section; and a lower part of the bottle body extending from the lower end of the upper part of the bottle body in a flat shape, wherein the extrusion part has an extrusion hole with a rectangular cross-section, which is fitted onto the soft bottle body, and the width of the extrusion hole is greater than or equal to the thickness of the lower part of the bottle body when the gel contents are not filled.
[0007] The portable soft energy gel bottle provided by this utility model may also have the following technical features: the bottle body is disposed at one end of the length direction of the soft bottle body, the outer surface of the soft bottle body is provided with a capacity indicator scale, which includes multiple scale lines arranged sequentially along the length direction of the soft shell to indicate the remaining capacity of the gel contents in the inner cavity, and the extrusion part is in the shape of a long strip ring, the length direction of which is perpendicular to the length direction of the soft shell.
[0008] The portable soft energy gel bottle provided by this utility model may also have the following technical feature: the lower part of the bottle body has limiting protrusions on both sides of the lower end, which are used to limit the movement of the squeezing part.
[0009] The portable soft energy gel bottle provided by this utility model may also have the following technical features: the portable soft bottle further includes a fixing part, which is plate-shaped and extends from the upper end of the upper part of the bottle body. It is located on the side of the soft bottle body that does not have the capacity indication scale, and has a gap with the outer surface of the soft bottle body on that side to form a back buckle.
[0010] The portable soft energy gel bottle provided by this utility model may also have the following technical features: the portable soft energy gel bottle further includes a fixing part, which includes a fixing strap and a fixing buckle, wherein the upper end of the upper part of the bottle body has an annular groove, the fixing strap is fitted in the annular groove, one end of the fixing buckle is connected to the fixing strap, and the other end has a movable buckle.
[0011] The portable soft energy gel bottle provided by this utility model may also have the following technical features, wherein the soft bottle body further includes a sealing edge portion formed at the lower edge of the lower part of the bottle body.
[0012] The portable soft energy gel bottle provided by this utility model may also have the following technical feature: the soft bottle body and the spout are integrally formed from silicone.
[0013] The portable soft energy gel bottle provided by this utility model may also have the following technical features: the soft bottle body and the spout are both made of silicone; the upper end of the soft bottle body has an installation opening; and the lower end of the spout has a fitting part that is sealed and fitted into the installation opening.
[0014] The portable soft energy gel bottle provided by this utility model may also have the following technical feature: the edge of the soft bottle body is formed with a plurality of sequentially arranged limiting teeth for limiting the squeezing part.
[0015] Functions and effects of utility models
[0016] The portable soft energy gel bottle of this invention includes a soft bottle body, a spout, and a squeezing part. Since the spout is also made of a flexible, soft material, the end of the spout connected to the soft bottle body is a wide oval shape, and the end of the spout is a flat strip. Therefore, squeezing the spout by hand creates a wide oval opening, allowing for easy insertion of gel-like contents (e.g., multiple energy gels) into the inner cavity of the portable soft bottle. After insertion, simply releasing the hand causes the spout to automatically return to a basically closed state, storing the gel-like contents inside. Therefore, the insertion and storage of gel-like contents are very convenient. When consumption is desired, the soft bottle body can be squeezed using the squeezing part. The squeezed gel-like contents push the flexible, soft spout open and flow out, making consumption very convenient. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the portable soft-sided flask in Embodiment 1 of this utility model;
[0018] Figure 2 This is a structural schematic diagram of the portable soft flask from another angle in Embodiment 1 of this utility model;
[0019] Figure 3 This is a structural schematic diagram of the spout in use according to Embodiment 1 of this utility model;
[0020] Figure 4 This is a structural schematic diagram of the portable soft-serve flask in use according to Embodiment 1 of this utility model;
[0021] Figure 5 This is a schematic diagram of the portable soft flask in Embodiment 2 of this utility model;
[0022] Figure 6 This is a schematic diagram of the portable soft flask in Embodiment 3 of this utility model.
[0023] Figure label:
[0024] Portable soft energy gel bottle 10; soft bottle body 11; upper part of bottle body 111; lower part of bottle body 112; sealing part 113; limiting protrusion 114; capacity indication scale 115; flange 116; annular groove 1161; mounting opening 117; limiting tooth 118; spout 12; spout opening 121; extrusion part 13; extrusion hole 131; fixing part 14. Detailed Implementation
[0025] To make the technical means, creative features, objectives and effects of this utility model easy to understand, the following describes in detail the portable soft bottle for energy gels of this utility model with reference to the embodiments and accompanying drawings.
[0026] <Example 1>
[0027] Figure 1 This is a schematic diagram of the portable soft-serve flask in this embodiment. Figure 2 This is a structural schematic diagram of the portable soft-serve flask from another angle in this embodiment.
[0028] like Figure 1 and Figure 2 As shown, the portable soft energy gel bottle 10 includes a soft bottle body 11, a spout 12, a squeezing part 13, and a fixing part 14. The gel-like contents are, for example, the aforementioned jelly-like energy gel.
[0029] The flexible pot body 11 is used to hold gelatinous contents. It is made of a soft, waterproof material with a certain degree of elasticity, and can be deformed as needed by squeezing, folding, or rolling. After the external force that caused the deformation is removed, the flexible pot body 11 can automatically return to its initial shape due to its material properties. The flexible pot body 11 includes an integrally formed upper part 111 and a lower part 112. In its initial state, without external force or contents, the cross-section of the upper part 111 is elliptical, and its cross-sectional shape gradually changes from the upper end to the lower end (the ellipse gradually flattens). The lower part 112 extends further downward from the lower end of the upper part 111, and in the aforementioned initial state, the lower part 112 is generally flat.
[0030] A flange 116 is formed at the upper end of the upper part 111 of the pot body. The flange 116 rolls outward from the upper edge of the upper part 111, forming an annular groove 1161 between the flange 116 and the outer wall of the upper part 111. The upper part 111 has an elliptical upper opening 1111 at the middle of its upper end.
[0031] The outer end of the lower part 112 of the pot body (the end away from the upper part 111 of the pot body) forms a semi-enclosed sealing edge 113. Limiting protrusions 114 are formed on both sides of the sealing edge 113. The width of the soft pot body 11 at the pair of limiting protrusions 114 is greater than the width of other parts of the soft pot body 11. Furthermore, a capacity indicator scale 115 is formed on one outer surface of the soft pot body 11, which includes multiple scale lines and corresponding capacity values. The multiple scale lines are arranged sequentially along the length of the soft pot body 11 and are used to cooperate with the extrusion part 13 to indicate the approximate volume of the remaining gelatinous contents inside the soft pot body 11.
[0032] The spout 12 is also made of a soft, waterproof material with a certain degree of elasticity. The spout 12 extends further upward from the upper opening 1111 of the upper part 111 of the body. It is a flat spout, and the wall thickness of the spout 12 is greater than the wall thickness of the soft body 11. The spout 12 forms a channel that communicates with the inner cavity of the soft body 11. In the initial state without external force, the end of the spout 12 connected to the upper part 111 of the body is elliptical, that is, one end of the channel is elliptical. The outer end of the spout 12 is long and straight. The channel inside the spout 12 has a gradually changing cross section. The outer end of the spout 12 is basically closed, that is, the outer end of the channel is closed, so that the gel-like contents are stored inside the portable soft flask 10.
[0033] It should be noted that, since the gel-like contents have a certain viscosity and are significantly less fluid than liquids, even if the portable soft pitcher 10 shakes or vibrates during movement, the gel-like contents inside the portable soft pitcher 10 generally will not leak from the spout 12. Therefore, the spout 12 does not need to have the same high sealing performance as a water bottle used for holding liquids; it only needs to be able to maintain a basically closed state when not subjected to external force.
[0034] Figure 3 This is a structural diagram of the spout in use in this embodiment.
[0035] like Figure 3 As shown, when the user squeezes the outer end of the spout 12 in the direction indicated by the arrow, the outer end of the spout 12 deforms accordingly, forming an elliptical spout opening 121. This opening allows the user to squeeze gel-like contents into the portable soft-serve jar 10 or pour out gel-like contents stored within the jar 10. Similarly, after the external force is removed, the spout 12 can return to its initial closed state due to its material properties.
[0036] In this embodiment, the flexible pot body 11 and the spout 12 are integrally formed of silicone, and the silicone used is opaque with good light-blocking properties, which also prevents the energy gel stored in the flexible pot body 11 from deteriorating due to light exposure. The capacity indication scale 115 on the outer surface of the silicone flexible pot body 11 is formed by UV printing. In an alternative embodiment, the flexible pot body 11 can also be made of other materials. For example, if the energy gel does not need to be stored in the dark, the flexible pot body 11 can also be made of transparent silicone, so that the user can clearly see the liquid level of the energy gel inside the pot.
[0037] The extrusion part 13 is made of a relatively hard material and is disposed on the flexible pot body 11. It is used to extrude the flexible pot body 11 so that the gel-like contents are squeezed out of the flexible pot body 11 toward the spout 12. In this embodiment, the extrusion part 13 is generally elongated and annular with rounded edges. It is fitted onto the flexible pot body 11, and its length direction is perpendicular to the length direction of the flexible pot body 11. The extrusion part 13 has an elongated extrusion hole 131 in the middle. The cross-section of the extrusion hole 131 is approximately flat and rectangular. The length of the extrusion hole 131 is slightly greater than the width of the lower part of the flexible pot body 11, and the width of the extrusion hole 131 is equal to or slightly greater than the thickness of the lower part of the flattened flexible shell 11.
[0038] Therefore, the soft container 11 at the squeezing part 13 is flattened by it. By pushing the squeezing part 13 towards the spout 12, the gelatinous contents stored inside the soft container 11 can be easily squeezed out. The squeezed gelatinous contents push the elastic soft spout 12 slightly open, allowing the user to consume the contents. Furthermore, the portion of the soft container 11 through which the squeezing part 13 passes contains very little gelatinous contents, and the residue is relatively uniform, unlike when squeezing directly by hand, where clumps of gelatinous contents may remain in some part of the inner cavity. After squeezing out a certain amount of gelatinous contents, observing the scale line at the squeezing part 13 allows for easy determination of the approximate amount of gelatinous contents remaining inside the portable soft container 10.
[0039] A pair of limiting protrusions 114 at the lower end of the soft pot body 11 are used to limit the movement of the extrusion part 13 and prevent it from falling off during use.
[0040] In this embodiment, the extrusion part 13 is made of hard plastic, and the corners of the extrusion part 13 are rounded to avoid sharp edges from piercing the user or tearing the backpack during use.
[0041] The fixing part 14 is used to secure the portable soft-serve pitcher 10 to the user, for example, to the user's belt or backpack. In this embodiment, the fixing part 14 is plate-shaped, extending downward from the flange 116 at the upper end of the soft-serve pitcher body 11, and located on the side of the soft-serve pitcher body 11 that does not have the capacity indication scale 115. From the end of the fixing part 14 connected to the flange 116 to its outer end, the width of the fixing part 14 gradually narrows, and the fixing part 14 is approximately parallel to the outer surface of the side of the soft-serve pitcher body 11 that does not have the capacity indication scale 115, with a certain gap between them. That is, the fixing part 14 forms a back buckle that can be fastened to the user's belt.
[0042] In this embodiment, the fixing part 14 (back buckle) is also made of silicone and is integrally formed with the soft pot body 11. A rigid plate is embedded inside the fixing part 14 to strengthen its strength.
[0043] In this embodiment, the portable soft-serve flask 10 has a capacity of 170ml to 500ml. Taking the commonly used 40ml energy gel as an example, it can be used to store up to 4 to 10 energy gels. Corresponding markings are also formed on the outer surface of the soft-serve body 11 of the portable soft-serve flask 10, or there are corresponding instructions in the product manual.
[0044] Figure 4 This is a structural diagram of the portable soft-serve flask in use in this embodiment.
[0045] like Figure 4 As shown, during use, first move the squeezing part 13 to abut against the pair of limiting protrusions 114, that is, place the squeezing part 13 at the bottom of the soft bottle body 11, at which point the squeezing part 13 is roughly aligned with the scale line of the maximum capacity value. Then, squeeze the spout 12 to open it, squeezing out the corresponding amount of energy gel into the portable soft bottle 10. Then release the spout 12, and the spout 12 will automatically return to a basically closed state. At this time, a larger amount of energy gel is stored in the portable soft bottle 10. The user can carry the portable soft bottle 10 for exercise without having to carry multiple energy gel sticks.
[0046] When the user needs to consume energy gel, they simply push the squeeze unit 13 towards the spout 12 to squeeze out the energy gel stored in the portable soft-serve jar 10. After squeezing out a certain amount of energy gel, the user can easily determine the approximate amount of energy gel remaining in the portable soft-serve jar 10 by observing which mark on the capacity indicator 115 the squeeze unit 13 is currently positioned at, thus allowing for convenient control of each intake.
[0047] When not in use, or after all the stored energy gels have been consumed, the soft-serve bottle 11 can be rolled up or folded for storage, such as placing it in a bag or pocket in a rolled-up or folded state. As described above, when the portable soft-serve bottle 10 needs to be used again, simply remove the corresponding external force (e.g., remove it from a bag or pocket), and the portable soft-serve bottle 10 will automatically return to its original shape. Figure 1 The initial state is shown.
[0048] Functions and effects of Example 1
[0049] The portable soft energy gel bottle provided in this embodiment includes a soft bottle body, a spout, and a squeezing part. Since the spout is also made of a flexible, soft material, the end of the spout connected to the soft bottle body is a wide oval shape, and the end of the spout is a flat strip. Therefore, squeezing the spout by hand forms a wide oval opening, allowing for easy insertion of gel-like contents (e.g., multiple energy gels) into the inner cavity of the portable soft bottle. After insertion, simply releasing the hand will automatically return the spout to a basically closed state, storing the gel-like contents inside. Therefore, the insertion and storage of gel-like contents are very convenient. When consumption is desired, the soft bottle body can be squeezed using the squeezing part. The squeezed gel-like contents push the flexible, soft spout open and flow out, making consumption very convenient.
[0050] In this embodiment, the extrusion section has elongated extrusion holes, the width of which is approximately equal to or slightly larger than the thickness of the lower part of the flexible pot body. Therefore, by pushing the extrusion section along the length of the flexible pot body, the energy gel stored within its inner cavity can be extruded sequentially, and virtually no energy gel remains on the area traversed by the extrusion strip, maximizing the utilization of the energy gel and avoiding waste. Furthermore, corresponding capacity indication scales are provided on the outer surface of the flexible pot body. After extruding a certain amount of energy gel, the remaining capacity can be easily determined by observing the scale at the extrusion section, allowing users to conveniently and intuitively control their intake each time.
[0051] Furthermore, since the length of the extrusion hole is basically the same as the width of the flattened soft pot body, it is also guided by the soft pot body during the movement of the extrusion part. This ensures that the extrusion part remains perpendicular to the length direction of the soft pot body during the pushing process, thereby making the remaining capacity indicated by the extrusion part in conjunction with the capacity indicator scale more accurate.
[0052] Furthermore, the upper section of the soft shell is elliptical, the lower section is flat, and it has a gradually changing cross-sectional shape, thus enabling it to better fit with the extrusion section.
[0053] Furthermore, the lower sides of the soft shell also have limiting protrusions, which can limit the movement of the extrusion part and prevent it from being moved excessively and falling off, making it more convenient to use.
[0054] In this embodiment, the soft-sided bottle body and spout are made of a single piece of silicone material with good light-blocking properties. It is chemically stable, safe and non-toxic, and suitable for storing food. It is resistant to high and low temperatures and can be used normally during winter and summer outdoor sports without hardening or melting. In addition, it can also provide good light-blocking effect, which can prevent the energy gel from being degraded by light and maintain its effective nutritional components.
[0055] Furthermore, a flange is formed at the top of the soft-sided bottle body, and a matching fixing part is provided, including a fixing strap and a fixing buckle, so the portable soft-sided bottle can be easily attached to the user's belt or bag, etc., making it more portable.
[0056] <Example 2>
[0057] This embodiment provides a portable soft energy gel bottle. In this embodiment, the same symbols are used for the same constituent elements as in Embodiment 1, and the corresponding descriptions are omitted.
[0058] Figure 5 This is a schematic diagram of the portable soft-serve flask in this embodiment.
[0059] like Figure 5 As shown, compared with Embodiment 1, the difference lies in that, in this embodiment, the portable soft-serve pitcher 10' has two independent components: the soft-serve body 11' and the spout 12'. The spout 12' is detachably installed at the upper opening of the soft-serve body 11'. For example, the upper end of the soft-serve body 11' has an elliptical cross-section mounting opening 117. The lower part of the spout 12' further has a downwardly extending fitting portion 122. The fitting portion 122 is generally elliptical in shape, and its cross-section is also elliptical, with its outer circumference slightly larger than the size of the mounting opening 117. This allows it to be fixed in the mounting opening 117 with an interference fit, and the two are sealed together.
[0060] Optionally, the soft pot body 11 and the spout 12 can be made of different materials. For example, the spout 12 can be made of a relatively harder elastic soft material to improve the sealing of the spout 12; or, the spout 12 can be made of an elastic soft material with a certain degree of transparency to make it easier for the user to observe whether the gel-like contents have been squeezed out.
[0061] In this embodiment, the other structures are the same as in Embodiment 1, so they will not be described again.
[0062] Functions and effects of Example 2
[0063] Based on the function and effect of the portable soft energy gel bottle provided in this embodiment, since the spout is detachably fitted onto the installation opening of the soft bottle body, when it is necessary to clean the internal cavity of the portable soft bottle, the spout can be removed and cleaned through a larger installation opening, which is more convenient and can also ensure a better cleaning effect.
[0064] <Example 3>
[0065] This embodiment provides a portable soft energy gel bottle. In this embodiment, the same symbols are used for the same constituent elements as in Embodiment 1, and the corresponding descriptions are omitted.
[0066] Figure 6 This is a schematic diagram of the portable soft-serve flask in this embodiment.
[0067] like Figure 6 As shown, compared with Embodiment 1, the difference lies in that the soft body 11” of the portable soft pot 10” in this embodiment has a plurality of limiting teeth 118 arranged sequentially on its edge. Each limiting tooth 118 is triangular in shape and its corners are rounded. The limiting tooth 118 has a first side portion 1181 that is relatively closer to the mouth of the soft body 11” and a second side portion 1182 that is relatively closer to the bottom of the soft body 11”. The angle between the second side portion 1182 and the length direction of the soft body 11” is smaller than the angle between the first side portion 1181 and the length direction of the soft body 11”.
[0068] Because the flexible kettle body 11” is elastic, the first side 1181 is relatively flat, and above the squeezing part 13, the part of the kettle body containing energy gel is supported by the energy gel, reducing the width of the part of the kettle body. Therefore, when the user pushes the squeezing part 13 towards the kettle opening, the resistance from the limiting teeth 118 is very small or almost non-existent, and it does not affect the user's ability to push the squeezing part 13 upwards. Since the angle between the second side 1182 and the length direction of the flexible kettle body 11” is large, and the part of the kettle body after the energy gel is squeezed out by the squeezing part 13 is flattened, its width increases accordingly. Therefore, when the portable soft kettle 10” is placed upright as shown in the figure, the squeezing part 13, under its own weight, abuts against the second side 1182 of the limiting teeth 118, thus preventing the squeezing part 13 from sliding downwards. Because the flexible kettle body 11” is elastic, if the user pushes the squeezing part 13 downwards with greater force, the limiting teeth 118 can still deform, allowing the squeezing part 13 to return to a position near the bottom of the kettle.
[0069] In this embodiment, the other structures are the same as in Embodiment 1, and therefore will not be described again. Furthermore, the solution in this embodiment can also be combined with the solution in Embodiment 2.
[0070] Functions and effects of Example 3
[0071] Based on the function and effect of the portable soft energy gel provided in this embodiment, since the edge of the bottle body also has multiple limiting teeth, the squeezing part can be limited after it is pushed up, so that it stops in the middle of the bottle body, preventing the squeezing part from sliding down due to its own weight. In this way, when the user needs to consume it next time, he can continue to push it down from the position where the squeezing part stopped last time, which is more convenient and faster.
[0072] The above embodiments are merely illustrative of specific implementations of this utility model, and the utility model is not limited to the scope of the above embodiments. Those skilled in the art should understand that the utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are only for illustrating the principles of the utility model. Various changes and modifications can be made to the utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the utility model as claimed. The scope of protection of this utility model is defined by the appended claims and their equivalents.
[0073] For example, in the above embodiments, the portable soft flask 10 is used to hold energy gels. In fact, it can be understood that the portable soft flask 10 can also be used to hold other similar gel-like contents or granular solid contents.
[0074] In the above embodiments, the body 11 and spout 12 of the portable soft pot 10 are made of silicone. In alternatives, other soft, waterproof materials, such as food-grade TPU, can also be used.
[0075] In the above embodiment, limiting protrusions 114 are formed on both sides of the lower end of the soft pot body 11 to limit the movement of the extrusion part 13. In an alternative, the extrusion part 13 can also be limited in other ways, such as making the lowermost end of the soft pot body 11 relatively wider.
[0076] In the above embodiment, a fastening part 14 in the form of a back buckle is formed on one side of the soft-sided bottle body 11. In an alternative, other carrying or fastening methods can be used. For example, if the user's backpack or belt has a water bottle pocket for holding the bottle, the portable soft-sided bottle 10 can be placed directly in the water bottle pocket, and the portable soft-sided bottle 10 may not have the aforementioned fastening part 14. Alternatively, the fastening part 14 can also take other forms, such as including a fastening strap and a fastening buckle. The fastening strap is fitted into the aforementioned annular groove 1161, and one end of the fastening buckle is connected to the fastening strap, while the other end has a movable buckle portion, which can be used to fasten the portable soft-sided bottle 10 to the user's belt or backpack, etc.
[0077] In the above embodiment, the edge of the soft pot body 11” is formed with a plurality of limiting teeth 118, which can limit the movement of the extrusion part 13 (extrusion strip) and prevent it from sliding down due to its own weight. In an alternative, other methods can also be used to prevent the extrusion part 13 from sliding down. For example, a relatively rough contact surface is formed on the inner ring of the extrusion part 13, so that there is a relatively large friction between the extrusion part 13 and the outer surface of the soft pot body 11”. In this way, in most cases, the extrusion part 13 will not slide down after being pushed up.
Claims
1. A portable soft energy gel flask, characterized in that, include: The container has a soft body and an inner cavity for storing gelatinous contents; The spout is located at one end of the soft pot body and has a channel communicating with the inner cavity; A squeezing section, disposed on the flexible kettle body, is used to squeeze the flexible kettle body so that the gelatinous contents in the inner cavity are squeezed out from the spout. The spout is made of an elastic material. The cross-section of the end where the spout connects to the soft pot body is elliptical. When not subjected to external force, the outer end of the spout is strip-shaped, causing the outer end of the channel to close.
2. The portable soft energy gel flask according to claim 1, Its features are: The soft pot body includes: The upper part of the pot has an elliptical cross-section; and The lower part of the pot body extends from the lower end of the upper part of the pot body and is flat. The extrusion part has an extrusion hole with a rectangular cross-section, which is fitted onto the soft pot body. The width of the extrusion hole is greater than or equal to the thickness of the lower part of the pot body when the gel-like contents are not contained.
3. The portable soft energy gel flask according to claim 2, characterized in that: in, The kettle body is located at one end along the length of the soft kettle body. The outer surface of the flexible container is provided with a capacity indicator scale, which includes multiple scale lines arranged sequentially along the length of the flexible shell, used to indicate the remaining volume of the gelatinous contents in the inner cavity. The extrusion section is in the shape of a long strip ring, and its length direction is perpendicular to the length direction of the soft shell.
4. The portable soft energy gel flask according to claim 3, characterized in that: in, The lower part of the pot body has limiting protrusions on both sides of the lower end, which are used to limit the movement of the extrusion part.
5. The portable soft energy gel flask according to claim 3, characterized in that, Also includes: The fixing part is plate-shaped and extends from the upper end of the upper part of the pot body. It is located on the side of the soft pot body that does not have the capacity indicator scale, and has a gap with the outer surface of the soft pot body on that side to form a back buckle.
6. The portable soft energy gel flask according to claim 2, characterized in that, Also includes: The fixing part includes a fixing strap and a fixing buckle. The upper part of the upper part of the pot body has an annular groove. The fixing strap is fitted into the annular groove, and one end of the fixing buckle is connected to the fixing strap, while the other end has a movable buckle.
7. The portable soft energy gel flask according to claim 2, characterized in that: in, The soft-walled pot body also includes a sealing edge, which is formed at the lower edge of the lower part of the pot body.
8. The portable soft energy gel flask according to claim 1, characterized in that: in, The soft kettle body and the spout are integrally formed from silicone.
9. The portable soft energy gel flask according to claim 1, characterized in that: in, Both the soft kettle body and the spout are made of silicone. The upper end of the flexible pot body has an installation opening. The lower end of the spout has a fitting portion that fits tightly into the mounting opening.
10. The portable soft energy gel flask according to claim 1, characterized in that: in, The edge of the soft pot body has a plurality of sequentially arranged limiting teeth for limiting the extrusion part.