Double-layer glass feeding bottle with integrally-formed bottom
12409104 ยท 2025-09-09
Assignee
Inventors
Cpc classification
B65D41/08
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A double-layer glass feeding bottle includes a bottle body, a first cap, a second cap, and a nipple. The first cap is threaded to an upper portion of a side wall of the bottle body. The nipple is fixedly connected to an inner side wall of the first cap. The second cap is provided at a top of the first cap. The bottle body includes an inner liner and an outer shell. The inner liner is provided inside the outer shell. A bottom of the outer shell is integrally formed with a bottom of the bottle body. A through hole is provided at the bottom of the outer shell. A one-way valve is provided inside the through hole.
Claims
1. A double-layer glass feeding bottle, comprising: a bottle body; a first cap; a second cap; and a nipple; wherein the first cap is threadedly connected to an upper portion of a side wall of the bottle body; the nipple is fixedly connected to an inner side wall of the first cap; the second cap is provided at a top of the first cap; the bottle body comprises an inner liner and an outer shell; the inner liner is provided inside the outer shell; a bottom of the inner liner is integrally formed with a bottom of the outer shell; a through hole is provided at the bottom of the outer shell; and a one-way valve is provided inside the through hole.
2. The double-layer glass feeding bottle of claim 1, wherein a top end of the inner liner is integrally fused with an inner side wall of the outer shell; and the bottom of the inner liner in its entirety is fused with the bottom of the outer shell.
3. The double-layer glass feeding bottle of claim 1, wherein a top end of the inner liner is integrally fused with an inner side wall of the outer shell; and a middle of the bottom of the inner liner is integrally fused with a middle of the bottom of the outer shell.
4. The double-layer glass feeding bottle of claim 1, wherein a vacuum closed chamber is formed between an inner side wall of the outer shell and the inner liner.
5. The double-layer glass feeding bottle of claim 1, wherein an anti-skid pattern is provided on a bottom end of the bottom of the outer shell.
6. The double-layer glass feeding bottle of claim 1, wherein a limit ring is provided on a side wall of the one-way valve; and the one-way valve is fixed in the through hole through the limit ring.
7. The double-layer glass feeding bottle of claim 1, wherein the one-way valve is made of silicone; and the through hole has a shape of round, square, or an irregular shape.
8. The double-layer glass feeding bottle of claim 1, wherein the outer shell and the inner liner are both made of a glass material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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(8) In the figures:
(9) 1bottle body; 2first cap; 3second cap; 4nipple; 5vacuum closed chamber; 6inner liner; 7one-way valve; 8outer shell; 9through hole; 10inner liner bottom; and 11limit ring.
DETAILED DESCRIPTION OF EMBODIMENTS
(10) The technical solutions of the disclosure will be described in detail below in combination with the drawings in the embodiments to make the technical solutions, objects and advantages of the disclosure clearer. Obviously, described below are merely some embodiments of the disclosure, which are not intended to limit the disclosure. For those skilled in the art, other embodiments obtained based on these embodiments without paying creative efforts should fall within the scope of the disclosure defined by the appended claims.
Embodiment 1
(11) Referring to
(12) A top end of the inner liner 6 is integrally fused with an inner side wall of the outer shell 8. The bottom of the inner liner 6 is fused with the bottom of the outer shell 8. A vacuum closed chamber 5 is formed between the inner side wall of the outer shell 8 and the inner liner 6. An anti-skid pattern is provided on a bottom end of the bottom of the outer shell 8. The one-way valve 7 is made of silicone material. The through hole 9 has a shape of round, square, or an irregular shape, which is easy to process. The outer shell 8 and the inner liner 6 are both made of the glass material. The one-way valve 7 is provided inside the bottom end of the inner liner 6. The one-way valve 7 can directly perform air exchange while the baby drinking, thereby avoiding negative pressure inside the feeding bottle while sucking resulting in difficulties for drinking milk, and effectively improving feeding convenience. The one-way valve 7 is disposed at the bottom end of the inner side wall of the inner liner 6. When feeding the baby, the baby lies flat. As the baby sucks, the one-way valve 7 is located above to directly exchange the air with the outside, thereby avoiding the baby from inhaling to prevent the flatulence. Moreover, the replaced gas is not in direct contact with the milk, effectively preventing the milk from being contaminated.
Embodiment 2
(13) Referring to
(14) The feeding bottle is designed into a double layer structure, and the vacuum closed chamber 5 is formed between the outer shell 8 and the inner liner 6, thereby allowing the feeding bottle to obtain good heat preservation effect and preventing the baby from being scalded by the bottle body 1 while feeding, which effectively improves the safety of the feeding bottle. The bottom of the outer shell 8 and the bottom of the inner liner 6 are fixedly connected by firing, and the one-way valve 7 is provided in the bottom of the outer shell 8. The one-way valve 7 can make the baby directly exchange air while drinking, thereby avoiding the formation of negative pressure inside the feeding bottle while sucking, and effectively improving feeding convenience. The one-way valve 7 is disposed at the bottom of the outer shell 8. When feeding the baby, the baby lies flat. As the baby sucks, the one-way valve 7 is located above to directly exchange the air, thereby avoiding the baby inhaling air to prevent the baby flatulence. Moreover, the exchanged gas is not in direct contact with the milk, thereby effectively avoiding that the milk is contaminated.
(15) In some embodiments, the inner liner bottom 10 is designed to be flat, and the bottom of the outer shell 8 is designed to be concave.
(16) Described above are merely preferred embodiments of the disclosure, which are not intended to limit the disclosure. It should be understood that any modifications and replacements made by those skilled in the art without departing from the spirit of the disclosure should fall within the scope of the disclosure defined by the appended claims.