Glass reagent bottle

By arranging a bottle body sleeve on the glass reagent bottle and providing a flexible convex structure and a through hole, the problems of unstable grip and easy breakage of the glass reagent bottle are solved, and higher stability and safety are achieved.

CN223421221UActive Publication Date: 2025-10-10BEIJING SOLARBIO TECH CO LTD
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Patent Information

Application Number
CN202422872710.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-25
Publication Date
2025-10-10
Estimated Expiration
2034-11-25

AI Technical Summary

Technical Problem

Glass reagent bottles have low grip stability during use and are easily broken during transportation.

Method used

A bottle body cover is set on the side wall of the glass bottle body, and multiple flexible convex structures are set in the protection area to form a protective layer to increase the grip stability; multiple through holes are set in the visual area to facilitate observation of the internal situation, and anti-slip structures are added to the bottle cap and bottle bottom cover to prevent it from breaking.

Benefits of technology

The grip stability of glass reagent bottles is improved to prevent hands from slipping, and the protective layer cushions impact to avoid breakage, ensuring safety during transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of reagent bottles, and provides a glass reagent bottle which comprises a glass bottle body comprising a peripheral side wall and a bottom wall, and the peripheral side wall is connected with the bottom wall to form a containing space; the bottle body sleeve is arranged on the peripheral side wall in a sleeving mode, the bottle body sleeve is provided with a protection area and a visible area, and a plurality of flexible convex point structures are distributed in the protection area; one end of the visible area is close to the bottom of the bottle body sleeve, the other end of the visible area is close to the top of the bottle body sleeve, and a plurality of through holes are distributed in the visible area and form an identification pattern. The glass reagent bottle has good grabbing stability, and hand slipping during grabbing is prevented; when the reagent bottle is used, the collision of the reagent bottle can be buffered through the anti-collision protection layer, the glass reagent bottle is prevented from being broken in the transportation process, the condition in the bottle can be observed through the through holes, and the reagent bottle can be distinguished according to the identification pattern formed by the through holes.
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Description

Technical Field

[0001] The utility model relates to the technical field of reagent bottles, in particular to a glass reagent bottle. Background Art

[0002] With the continuous development of life sciences, biochemical reagents, as essential items for scientific research or medical research and development experiments, are not only diverse in variety but also have large performance differences. The storage and transportation of biochemical reagents require continuous progress and development in containers.

[0003] At present, reagent bottles are mostly made of glass or plastic. The suitable pH value of plastic reagent bottles is generally 5.5-9.0, and they are not suitable for strong reducing liquids. Glass reagent bottles have good chemical stability, storage properties and airtightness, and have certain mechanical strength. They can withstand the pressure inside the bottle and the external forces during transportation. The surface is smooth and easy to disinfect and sterilize, and the amount of liquid can be observed from the outside. The raw materials are widely distributed and inexpensive. In addition, with the thin-walled and lightweight design of glass bottles and the protection of the outer cover, coupled with the support of new physical and chemical tempering technologies, the shortcomings of glass reagent bottles, such as heavy weight and fragility, have been greatly improved. Therefore, under the fierce competition with plastics, iron cans, and iron cans, the demand for glass bottles has increased year by year. However, glass reagent bottles still have the problem of low grip stability during use and are easy to break during transportation. Utility Model Content

[0004] The utility model provides a glass reagent bottle, which is used to solve the problems in the prior art that the glass reagent bottle has low gripping stability during use and is easily broken during transportation.

[0005] The utility model provides a glass reagent bottle, comprising:

[0006] The glass bottle body comprises a peripheral side wall and a bottom wall, wherein the peripheral side wall and the bottom wall are connected to form a receiving space;

[0007] A bottle sleeve is arranged on the peripheral side wall, and is provided with a protective area and a visible area. The protective area is distributed with multiple flexible convex structures; one end of the visible area is close to the bottom of the bottle sleeve, and the other end is close to the top of the bottle sleeve. The visible area is distributed with multiple through holes, and the multiple through holes form a logo pattern.

[0008] According to a glass reagent bottle provided by the present invention, a plurality of the flexible convex structures are evenly spaced apart in the protection area, a plurality of the through holes are evenly spaced apart in the visible area, and the shape and size of the flexible convex structure are the same as those of the through holes.

[0009] The utility model provides a glass reagent bottle, a plurality of flexible convex point structures and a plurality of through holes are evenly spaced distribution on the outer surface of bottle body cover.

[0010] The utility model provides a glass reagent bottle, bottle body cover is equipped with a plurality of horizontal scale marks, a plurality of horizontal scale marks are arranged in equal interval in vertical direction,

[0011] A plurality of flexible convex point structures are distributed in multiple rows, a plurality of flexible convex point structures of each row are arranged horizontally, a plurality of flexible convex point structures in multiple rows are arranged in equal interval in vertical direction, and a plurality of horizontal scale marks are set one by one with at least part of the flexible convex point structure of row number.

[0012] The utility model provides a glass reagent bottle, bottle body cover is still equipped with vertical scale mark, a plurality of horizontal scale marks are connected to vertical scale mark.

[0013] The utility model provides a glass reagent bottle, vertical scale mark and horizontal scale mark are hollowed out hole set in bottle body cover, or vertical scale mark and horizontal scale mark are the flexible structure of convex setting on the outer surface of bottle body cover.

[0014] The utility model provides a glass reagent bottle still includes:

[0015] Cap, including cover, the cover is used to with glass bottle body is connected to close the containing space,

[0016] The cap still includes first handle and / or second handle,

[0017] The first handle is connected to the cover, and it is outwardly extended to set from the edge of the cover, and the side of the first handle away from the cover is circular arc structure,

[0018] The second handle is rotationally connected to the top of the cover, and the second handle has the first position of being attached to the cover and the second position of being at an angle to the cover.

[0019] The utility model provides a glass reagent bottle, the top of the cover is equipped with annular convex, the second handle has first bent part and second bent part, the recess is formed in first bent part, in the first position of the second handle, the annular convex is located in the recess, and the second bent part is the end of the second handle and is raised to the upper surface of the cover.

[0020] According to a glass reagent bottle provided by the utility model, the bottle cap also includes: a sealing plug, the cover body is provided with an exhaust hole, the exhaust hole is connected to the accommodating space, one end of the sealing plug is fixedly connected to the cover body, and the other end is used to cooperate with the exhaust hole to seal or open the exhaust hole.

[0021] A glass reagent bottle provided by the utility model also includes:

[0022] The bottle bottom sleeve is arranged on the bottom of the glass bottle body, the bottom surface of the bottle bottom sleeve is provided with a non-slip surface, and the upper end of the bottle bottom sleeve is connected to the lower end of the bottle body sleeve.

[0023] The glass reagent bottle provided by the utility model is provided with a bottle body sleeve on the peripheral side wall of the glass bottle body, and a protection area and a visual area are provided on the outer surface of the bottle body sleeve, and a plurality of flexible convex point structures are provided in the protection area. On the one hand, the gripping stability of the bottle body is improved to prevent the hand from slipping when gripping; on the other hand, a flexible anti-collision protection layer with a certain thickness is formed in the protection area, and the impact received by the reagent bottle can be cushioned by the anti-collision protection layer, so as to avoid the problem of the glass reagent bottle being dropped or broken during transportation; a plurality of through holes are provided in the visual area, and the situation inside the bottle can be observed through the plurality of through holes, and the reagent bottles can be distinguished according to the identification patterns formed by the plurality of through holes, so as to avoid the bottle body sleeve affecting the identification of the internal reagents. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction will be given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0025] Figure 1 This is one of the structural schematic diagrams of the glass reagent bottle provided by the utility model.

[0026] Figure 2 This is the second structural schematic diagram of the glass reagent bottle provided by the utility model.

[0027] Figure 3 This is one of the three-dimensional views of the glass reagent bottle provided by the utility model.

[0028] Figure 4 This is the second three-dimensional view of the glass reagent bottle provided by the utility model.

[0029] Figure 5 This is one of the top views of the glass reagent bottle provided by the utility model.

[0030] Figure 6This is the second top view of the glass reagent bottle provided by the utility model.

[0031] Figure 7 It is a bottom view of the glass bottle body of the glass reagent bottle provided by the utility model.

[0032] Figure 8 It is a bottom view of the glass reagent bottle provided by the utility model.

[0033] Reference numerals:

[0034] 1. Glass bottle body; 11. Side wall; 12. Bottom wall; 2. Bottle body sleeve; 21. Protective area; 211. Flexible convex structure; 22. Visible area; 221. Through hole; 231. Horizontal scale mark; 232. Vertical scale mark; 3. Bottle cap; 31. Cover body; 311. Annular protrusion; 312. Vent hole; 32. First handle; 33. Second handle; 331. First bend; 3311. Groove; 332. Second bend; 34. Sealing plug; 4. Bottle bottom sleeve; 41. Anti-slip surface. DETAILED DESCRIPTION

[0035] To make the purpose, technical solutions, and advantages of the present invention more clear, the following will be combined with the accompanying drawings to clearly and completely describe the technical solutions of the present invention. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0036] In the description of the embodiments of the present invention, it should be noted that, unless otherwise expressly specified and limited, the terms "first" and "second" are numbered for the purpose of clearly describing the product components and do not represent any substantial difference. The terms "installed", "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a direct connection, or an indirect connection through an intermediate medium, or it can be a connection between the two components. For ordinary technicians in this field, the specific meanings of the above terms in the embodiments of the present invention can be understood according to the specific circumstances. In addition, the meaning of "multiple" is two or more. In the specification and claims, "and / or" means at least one of the connected objects, and the character " / " generally indicates that the related objects before and after are in an "or" relationship.

[0037] The following combination Figures 1-8 The present invention describes a glass reagent bottle.

[0038] like Figure 1 and Figure 2As shown, the glass reagent bottle provided by the embodiment of the present invention includes a glass bottle body 1 and a bottle body sleeve 2. The glass bottle body 1 includes a peripheral side wall 11 and a bottom wall 12, and the peripheral side wall 11 and the bottom wall 12 are connected to form a receiving space. The bottle body sleeve 2 is sleeved on the peripheral side wall 11, and the bottle body sleeve 2 is provided with a protective area 21 and a visible area 22. The protective area 21 is distributed with a plurality of flexible convex structures 211. One end of the visible area 22 is close to the bottom of the bottle body sleeve 2, and the other end is close to the top of the bottle body sleeve 2. The visible area 22 is distributed with a plurality of through holes 221. Figure 1 The black dots are through holes 221. A plurality of through holes 221 form a marking pattern.

[0039] Optionally, the outer sidewall 11 is formed with a cylindrical wall, and the bottle sleeve 2 is cylindrical and fits over the cylindrical wall. The glass bottle 1 may be made of expanded glass to enhance its strength. The glass bottle 1 may be used to hold liquid or solid reagents, etc.

[0040] The protection area 21 may cover the entire peripheral side wall 11 or the middle area of ​​the peripheral side wall 11 , or may cover a portion of the middle area of ​​the peripheral side wall 11 .

[0041] The bottle sleeve 2 comprises a main body and a flexible protrusion structure 211. The inner and outer surfaces of the main body are concentric cylindrical surfaces, and the flexible protrusion structure 211 is protruded from the outer surface of the main body. The flexible protrusion structure 211 can be a circular, rectangular, diamond-shaped, or other raised structure, without limitation. The flexible protrusion structure 211 enhances the grip of the bottle and forms a thick, flexible, impact-resistant protective layer on the guard area 21.

[0042] Optionally, the thickness of the bottle sleeve 2 is 2 mm, and the height of the flexible protrusion structure 211 is 1 mm, which can be set according to actual needs and is not specifically limited. In order to have a better grip, the height of the flexible protrusion structure 211 can be appropriately increased.

[0043] The body and flexible bump structure 211 in this embodiment can be an integrally formed structure, for example, by integrally forming the body and flexible bump structure 211 from polypropylene. Polypropylene has excellent physical and chemical properties, such as high heat resistance, weather resistance, and chemical stability. The body and flexible bump structure 211 can also be integrally formed from silicone or other flexible materials. Of course, the body can also be a hard plastic structure, with the flexible bump structure 211 provided on the body by hot pressing or bonding.

[0044] The bottom of the bottle sleeve 2 is close to the bottom of the glass bottle 1, and the top of the bottle sleeve 2 is close to the top of the glass bottle 1. That is, one end of the viewing area 22 is close to the bottom of the glass bottle 1, and the other end is close to the top of the glass bottle 1. In this way, the height of the reagent contained in the bottle can be observed through the multiple through holes 221 of the viewing area 22.

[0045] The plurality of through holes 221 can be arranged in a specific manner on the bottle sleeve 2 to form a logo pattern, which can be the initials of the product brand or a trademark, etc., to enhance the recognition of the glass reagent bottle. Alternatively, the logo pattern can be a code name of the reagent, so that the user can use it to distinguish the type of reagent in the reagent bottle.

[0046] The glass reagent bottle provided by the embodiment of the present invention is equipped with a bottle body sleeve 2 on the peripheral side wall 11 of the glass bottle body, and a protection area 21 and a visual area 22 are provided on the outer surface of the bottle body sleeve 2. A plurality of flexible convex structures 211 are provided in the protection area 21. On the one hand, the gripping stability of the bottle body is improved to prevent the hand from slipping when gripping; on the other hand, the protection area 21 is formed with a certain thickness and a flexible anti-collision protection layer, which can buffer the impact on the reagent bottle and avoid the problem of the glass reagent bottle being dropped and broken during transportation; at the same time, a plurality of through holes 221 are provided in the visual area, and the situation inside the bottle can be observed through the plurality of through holes 221, and the reagent bottles can be distinguished according to the identification pattern formed by the plurality of through holes 221, so as to avoid the bottle body sleeve 2 affecting the identification of the internal reagents.

[0047] Optionally, the plurality of flexible bump structures 211 are evenly spaced apart in the protection area 21, and the plurality of through holes 221 are evenly spaced apart in the viewing area 22. The shape and size of the flexible bump structures 211 are the same as those of the through holes 221.

[0048] The distribution of the plurality of flexible bump structures 211 in the protective area 21 may be the same as or different from the distribution of the plurality of through holes 221 in the visible area 22. The distribution density of the plurality of flexible bump structures 211 in the protective area 21 may be the same as or different from the distribution density of the plurality of through holes 221 in the visible area 22.

[0049] For example, multiple flexible protrusion structures 211 and multiple through holes 221 are evenly spaced on the outer surface of the bottle body sleeve 2, that is, the distribution mode and distribution density of the multiple flexible protrusion structures 211 in the protection area 21 are the same as the distribution mode and distribution density of the multiple through holes 221 in the visible area 22.

[0050] See also Figure 1 When viewed from the perspective of the reagent bottle in use, i.e., with the bottle bottom placed on a horizontal surface, the multiple flexible bump structures 211 are distributed in multiple horizontal rows on the protective area 21, and the multiple through-holes 221 are distributed in multiple horizontal rows on the visible area 22. Each horizontal row of the multiple through-holes 221 corresponds one-to-one with each horizontal row of the flexible bump structures 211, and each vertical row of the multiple through-holes 221 corresponds one-to-one with each vertical row of the flexible bump structures 211. This ensures a consistent and aesthetically pleasing distribution of the flexible bump structures 211 and through-holes 221 on the bottle sleeve 2.

[0051] Alternatively, multiple flexible bump structures 211 are arranged in a honeycomb pattern on the protective area 21, and multiple through holes 221 are distributed in multiple horizontal rows on the visible area 22, that is, the distribution mode and distribution density of the multiple flexible bump structures 211 in the protective area 21 are different from the distribution mode and distribution density of the multiple through holes 221 in the visible area 22.

[0052] In some embodiments of the present invention, the bottle sleeve 2 is provided with a plurality of horizontal scale marks 231 , and the plurality of horizontal scale marks 231 are arranged at equal intervals in the vertical direction.

[0053] The flexible bump structures 211 are arranged in multiple rows, with each row of flexible bump structures 211 arranged horizontally. The rows of flexible bump structures 211 are arranged at equal intervals in the vertical direction, and the horizontal scale marks 231 are arranged in a one-to-one correspondence with at least some rows of flexible bump structures 211.

[0054] It is understood that, when viewed from the perspective of the reagent bottle in use, i.e., with the bottom of the bottle placed on a horizontal surface, the vertical direction is the same as the height direction of the glass bottle body 1. The horizontal scale marks 231 extend horizontally, and the lengths of the multiple horizontal scale marks 231 decrease or increase sequentially from the bottom to the top of the bottle body sleeve 2, so as to facilitate visual distinction of the scales.

[0055] There are no flexible bump structures 211 between any two adjacent horizontal scale marks 231. That is, one horizontal scale mark 231 corresponds to one row of flexible bump structures 211. Alternatively, at least one row of flexible bump structures 211 is provided between any two adjacent horizontal scale marks 231. In this way, the scale corresponding to one or more adjacent rows of flexible bump structures 211 can be determined based on the horizontal scale mark 231.

[0056] See also Figure 1 A row of flexible convex structures 211 is provided between each two adjacent horizontal scale marks 231. Of course, multiple rows of flexible convex structures 211 can also be provided between each two adjacent horizontal scale marks 231.

[0057] When the plurality of flexible protrusion structures 211 and the plurality of through holes 221 are evenly spaced and distributed on the outer surface of the bottle sleeve 2, the liquid level can be read from the visible area 22 by following the corresponding row of flexible protrusion structures 211 along the through holes 221 corresponding to the liquid level to the horizontal scale mark 231 adjacent thereto to obtain the liquid level value.

[0058] Among them, multiple horizontal scale marks 231 are arranged in a one-to-one correspondence with at least part of the rows of flexible protrusion structures 211. The one-to-one correspondence here can be a one-to-one staggered correspondence in the vertical direction or a one-to-one relative arrangement in the horizontal direction.

[0059] For example, multiple horizontal scale marks 231 and multiple rows of flexible bump structures 211 are arranged one by one in a vertical staggered manner, that is, a row of flexible bump structures 211 is provided between two adjacent horizontal scale marks 231. This makes it easy to quickly determine the scale corresponding to the adjacent flexible bump structure 211 based on the horizontal scale mark 231.

[0060] For example, multiple horizontal scale marks 231 are connected to multiple rows of flexible bump structures 211 in a one-to-one correspondence in the horizontal direction, that is, each horizontal scale mark 231 is opposite to a row of flexible bump structures 211 at the same height. This makes it easy to quickly determine the scale corresponding to the corresponding flexible bump structure 211 based on the horizontal scale mark 231.

[0061] For example, see Figure 1 Multiple horizontal scale marks 231 are arranged alternately with multiple rows of flexible protrusion structures 211, and multiple horizontal scale marks 231 are connected to multiple rows of flexible protrusion structures 211 in a one-to-one correspondence. This not only facilitates quick identification of the scale corresponding to the adjacent or opposite flexible protrusion structure 211 based on the horizontal scale mark 231, but also increases the distribution density of the flexible protrusion structures 211, thereby improving the protective performance of the bottle cover 2.

[0062] For example, Figure 1 The six horizontal scale marks 231 correspond to the positions of 100 mL, 200 mL, 300 mL, 400 mL, 500 mL, and 600 mL from bottom to top. Correspondingly, the row of flexible protrusion structures 211 above each horizontal scale mark 231 corresponds to the positions of 150 mL, 250 mL, 350 mL, 450 mL, 550 mL, and 650 mL, respectively.

[0063] Furthermore, the bottle sleeve 2 is further provided with a vertical scale mark 232 , which is extended in the vertical direction, and a plurality of horizontal scale marks 231 are connected to the vertical scale mark 232 .

[0064] The lower end of the vertical scale mark 232 is close to the bottom of the bottle sleeve 2, and the upper end is close to the top of the bottle sleeve 2; or the vertical scale mark 232 extends from the bottom to the top of the bottle sleeve 2. Optionally, scale lines are set on the vertical scale mark 232 to facilitate more accurate reading of the liquid volume.

[0065] In some embodiments, the vertical scale markings 232 and the horizontal scale markings 231 are flexible structures protruding from the outer surface of the bottle sleeve 2. Thus, the vertical scale markings 232 and the horizontal scale markings 231 protruding from the outer surface of the bottle sleeve 2 can also form a thick and flexible anti-collision protective layer. The vertical scale markings 232 and the horizontal scale markings 231 can be made of the same flexible material as the flexible raised dot structure 211. For example, the body of the bottle sleeve 2, the flexible raised dot structure 211, the vertical scale markings 232, and the horizontal scale markings 231 can be integrally formed from polypropylene.

[0066] In other embodiments, the vertical scale mark 232 and the horizontal scale mark 231 are hollow holes provided on the bottle body sleeve 2 to facilitate observation of the situation inside the bottle.

[0067] The glass reagent bottle provided by the embodiment of the present invention further comprises a bottle cap 3, the bottle cap 3 comprises a cover 31, and the cover 31 is used to connect with the glass bottle body 1 to close the containing space. Figure 3 and Figure 5 As shown, the bottle cap 3 is further provided with a first handle 32 and / or a second handle 33 .

[0068] The first handle 32 is connected to the cover 31 and extends outward from the edge of the cover 31. The side of the first handle 32 away from the cover 31 is an arc structure. The second handle 33 is rotatably connected to the top of the cover 31. Figure 3 and Figure 4 The second handle 33 has a first position in contact with the cover body 31 and a second position at an angle to the cover body 31 .

[0069] Optionally, the lid 31 and first handle 32 are integrally formed. The lid 31 can be threadedly connected to the glass bottle body 1 or rotatably connected thereto. The lid 31 can be made of conventional polyethylene terephthalate (PET). Providing the first handle 32 on the bottle cap 3 facilitates rotation of the bottle cap 3, facilitating the opening and closing of the reagent bottle during daily use. The arc-shaped design of the first handle 32 prevents injuries to the hands from sharp corners.

[0070] The second handle 33 can be flipped from the first position to the second position under the action of an external force, and in special circumstances, the reagent bottle can be taken by pulling the second handle 33. Optionally, the second handle 33 is in a vertical position when in the second position, and in a horizontal position when in the first position.

[0071] Furthermore, if Figure 3 and Figure 4As shown, the top of the cover 31 is provided with an annular protrusion 311. The second handle 33 has a first bent portion 331 and a second bent portion 332. The first bent portion 331 is formed with a groove 3311. When the second handle 33 is in the first position, the annular protrusion 311 is located in the groove 3311, and the second bent portion 332 is the end of the second handle 33 and is tilted relative to the upper surface of the cover 31.

[0072] Specifically, the first bent portion 331 is rotatably connected to the cover body 31. When the second handle 33 is in the first position, the first bent portion 331 is in contact with the upper surface of the cover body 31, and the annular protrusion 311 is located in the groove 3311. Optionally, the groove 3311 and the annular protrusion 311 have the same cross-sectional shape in the vertical direction.

[0073] An angled gap is formed between the second bent portion 332 and the upper surface of the cover 31. When the second handle 33 is needed, the second handle 33 can be rotated to the second position by moving the second bent portion 332 upward with a finger, and then the finger can be placed in the groove 3311 of the first bent portion 331 to pull the second handle 33.

[0074] In this embodiment, the second handle 33 is provided with a second bent portion 332, which facilitates the flipping operation of the second handle 33. The first bent portion 331 is provided with a groove 3311, which allows the second handle 33 to adapt to the curved surface of the finger, making it easier to pull the second handle 33.

[0075] like Figure 4 and Figure 6 As shown, in the embodiment of the present invention, the bottle cap 3 also includes a sealing plug 34. The cover 31 is provided with an exhaust hole 312, and the exhaust hole 312 is connected to the accommodating space. One end of the sealing plug 34 is fixedly connected to the cover 31, and the other end is used to cooperate with the exhaust hole 312 to block or open the exhaust hole 312. When the reagent bottle is storing some products, the internal and external air pressure of the reagent bottle can be balanced by opening the exhaust hole 312. During transportation, the exhaust hole 312 can be blocked by the sealing plug 34.

[0076] Optionally, the sealing plug 34 is fixedly connected to the cover body 31 via a flexible connector, and the sealing plug 34 can be integrally formed with the flexible connector.

[0077] like Figure 1 、 Figure 2 and Figure 8As shown, the glass reagent bottle provided in the embodiment of the present invention also includes a bottle bottom sleeve 4, which is mounted on the bottom of the glass bottle body 1. The bottom surface of the bottle bottom sleeve 4 is provided with an anti-slip surface 41. The upper end of the bottle bottom sleeve 4 is connected to the lower end of the bottle body sleeve 2. The anti-slip surface 41 is provided with an anti-slip protrusion or groove structure. For example, the anti-slip surface 41 is provided with a plurality of concentric circular protrusions.

[0078] Specifically, the bottle bottom sleeve 4 includes a first part and a second part. The first part is a cylindrical structure that is sleeved on the bottom of the glass bottle body 1. The second part is connected to the bottom of the first part and fits with the bottom wall 12 of the glass bottle body 1. Figure 7 and Figure 8 The first part plays a certain protective role on the bottom of the glass bottle body 1, and the anti-slip surface 41 is provided on the bottom surface of the second part, which can increase the friction of the bottom wall 12 and reduce or prevent the reagent bottle from tipping over.

[0079] The upper end of the bottle bottom cover 4 is connected to the lower end of the bottle body cover 2 to form a protective cover for the entire glass reagent bottle, thereby fully protecting the side and bottom of the glass bottle body 1. The separate design of the bottle body cover 2 and the bottle bottom cover 4 facilitates the installation and removal of the protective cover.

[0080] Optionally, the bottle bottom cover 4 is a flexible member, which plays a certain shock-absorbing and buffering protective role on the bottom of the glass bottle body 1. For example, the bottle bottom cover 4 and the bottle body cover 2 are made of the same material, such as polypropylene.

[0081] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A glass reagent bottle, characterized in that: include: The glass bottle body comprises a peripheral side wall and a bottom wall, wherein the peripheral side wall and the bottom wall are connected to form a receiving space; A bottle sleeve is arranged on the peripheral side wall, and is provided with a protective area and a visible area. The protective area is distributed with multiple flexible convex structures; one end of the visible area is close to the bottom of the bottle sleeve, and the other end is close to the top of the bottle sleeve. The visible area is distributed with multiple through holes, and the multiple through holes form a logo pattern.

2. The glass reagent bottle according to claim 1, characterized in that The plurality of flexible convex structures are evenly distributed in the protection area, the plurality of through holes are evenly distributed in the visible area, and the shape and size of the flexible convex structure are the same as those of the through holes.

3. The glass reagent bottle according to claim 2, characterized in that: The plurality of flexible protrusion structures and the plurality of through holes are evenly spaced and distributed on the outer surface of the bottle sleeve.

4. The glass reagent bottle according to claim 1, characterized in that The bottle body is provided with a plurality of horizontal scale marks, and the plurality of horizontal scale marks are arranged at equal intervals in the vertical direction; The multiple flexible bump structures are distributed in multiple rows, the multiple flexible bump structures in each row are arranged horizontally, the multiple rows of flexible bump structures are arranged at equal intervals in the vertical direction, and the multiple horizontal scale marks are set in a one-to-one correspondence with at least some rows of the flexible bump structures.

5. The glass reagent bottle according to claim 4, characterized in that: The bottle body is provided with a vertical scale mark, and a plurality of horizontal scale marks are connected to the vertical scale mark.

6. The glass reagent bottle according to claim 5, characterized in that: The vertical scale mark and the horizontal scale mark are hollow holes provided on the bottle body sleeve; or, the vertical scale mark and the horizontal scale mark are flexible structures protruding from the outer surface of the bottle body sleeve.

7. The glass reagent bottle according to claim 1, characterized in that: Also includes: A bottle cap, comprising a cap body, the cap body being used to be connected to the glass bottle body to close the containing space; The bottle cap further includes a first handle and / or a second handle; The first handle is connected to the cover body and extends outward from the edge of the cover body, and the side of the first handle away from the cover body is an arc structure; The second handle is rotatably connected to the top of the cover body. The second handle has a first position in contact with the cover body and a second position at an angle to the cover body.

8. The glass reagent bottle according to claim 7, characterized in that: An annular protrusion is provided on the top of the cover body, and the second handle has a first bending portion and a second bending portion, and the first bending portion is formed with a groove. When the second handle is in the first position, the annular protrusion is located in the groove, and the second bending portion is the end portion of the second handle and is tilted relative to the upper surface of the cover body.

9. The glass reagent bottle according to claim 7, characterized in that: The bottle cap further includes: a sealing plug, the cover body is provided with an exhaust hole, the exhaust hole is connected to the accommodating space, one end of the sealing plug is fixedly connected to the cover body, and the other end is used to cooperate with the exhaust hole to block or open the exhaust hole.

10. The glass reagent bottle according to claim 1, characterized in that: Also includes: The bottle bottom sleeve is arranged on the bottom of the glass bottle body, the bottom surface of the bottle bottom sleeve is provided with a non-slip surface, and the upper end of the bottle bottom sleeve is connected to the lower end of the bottle body sleeve.