CONTAINER COMPRISING A MICROCELLULAR STRUCTURE
20220017255 · 2022-01-20
Assignee
Inventors
Cpc classification
B29C48/288
PERFORMING OPERATIONS; TRANSPORTING
B29C48/21
PERFORMING OPERATIONS; TRANSPORTING
B32B2255/10
PERFORMING OPERATIONS; TRANSPORTING
B29C49/0005
PERFORMING OPERATIONS; TRANSPORTING
B29C49/22
PERFORMING OPERATIONS; TRANSPORTING
B29C48/0017
PERFORMING OPERATIONS; TRANSPORTING
B29C2949/3046
PERFORMING OPERATIONS; TRANSPORTING
B32B7/12
PERFORMING OPERATIONS; TRANSPORTING
B32B27/306
PERFORMING OPERATIONS; TRANSPORTING
B29C48/0012
PERFORMING OPERATIONS; TRANSPORTING
B29K2077/00
PERFORMING OPERATIONS; TRANSPORTING
B29K2075/00
PERFORMING OPERATIONS; TRANSPORTING
B65D65/40
PERFORMING OPERATIONS; TRANSPORTING
B29K2023/086
PERFORMING OPERATIONS; TRANSPORTING
B32B2266/104
PERFORMING OPERATIONS; TRANSPORTING
B32B2274/00
PERFORMING OPERATIONS; TRANSPORTING
B32B2250/40
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D1/02
PERFORMING OPERATIONS; TRANSPORTING
B29C49/00
PERFORMING OPERATIONS; TRANSPORTING
B29C49/22
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a container (30), in particular a bottle (30), for storing and optionally applying a liquid, solvent-containing compositions, having a multi-layer wall (20) comprising at least one side wall of the bottle, the bottom of the bottle and optionally a discharge region at the opening of the bottle,
the multi-layer wall (20) comprising at least an inner layer (21), a barrier layer (22) and an outer layer (23), the barrier layer (22) being adapted to form a barrier for oxygen and/or water vapour, the inner layer (21) and/or the outer layer (23) having a microcellular structure (24), the microcellular structure (24) having fluid bubbles (25), and the fluid bubbles (25) being product of a physically and/or chemically introduced blowing agent. Moreover, the invention relates to a method for producing a container, in particular a bottle (30) for storing and optionally applying a liquid, solvent-containing composition, having a multi-layer wall (20), as well as use of a multi-layer wall (20) for producing the container (30).
Claims
1. A container (30), the container (30) having an elastic multi-layer wall (20) at least in part to completely, and the elastic multi-layer wall (20) comprising at least an inner layer (21), a barrier layer (22) and an outer layer (23), the barrier layer (22) being adapted to form a barrier for oxygen and water vapour, the inner layer (21) and/or the outer layer (23) having a microcellular structure (24), the microcellular structure (24) having fluid bubbles (25), and the fluid bubbles (25) being product of a physically and/or chemically introduced blowing agent, the thermal conductivity λ of the elastic multi-layer wall (20) being less than 0.25 W/(m.Math.K), wherein the inner layer (21) and/or the outer layer (23) comprises thermoplastic elastomers (TPE).
2. The container (30) according to claim 1, wherein the container (30) comprises a bottle, a tube, single-dose vial, bag, sachet, and/or syringe body.
3. The container (30) according to claim 1 for storing and optionally applying a composition, wherein the container is a bottle having an elastic multi-layer wall (20), and the elastic multi-layer wall (20) comprises at least an inner layer (21), a barrier layer (22) and an outer layer (23), the barrier layer (22) being adapted to from a barrier for oxygen and/or water vapour, the inner layer (21) and/or the outer layer (23) having a microcellular structure (24), the microcellular structure (24) having fluid bubbles (25), and the fluid bubbles (25) being product of a physically and/or chemically introduced blowing agent.
4. The container (30) according to claim 1, wherein the blowing agent in the microcellular structure (24) has inert gas.
5. The container (30) according to claim 1, wherein the microcellular structure (24) has a cavity volume less than 60% to greater than or equal to 10%.
6. The container (30) according to claim 1, wherein the diameter of the fluid bubbles (25) is less than or equal to 300 μm.
7. The container (30) according to claim 1, wherein the barrier layer (22) comprises an ethylene vinyl alcohol copolymer (EVOH) or cyclic olefin copolymers (COC) optionally laminated with polychloro trifluoro ethylene (PCTFE).
8. The container (30) according to claim 1, wherein the inner layer (21) and/or the outer layer (23) comprises thermoplastic olefins optionally as copolymer with polyamide, polyester, polystyrene or urethane, and/or polypropylene.
9. The container (30) according to claim 1, wherein the inner layer (21) has a layer thickness of 0.15 to 0.8 mm, the outer layer (23) has a layer thickness of 0.15 to 0.8 mm and the barrier layer (22) has a layer thickness of 0.05 to 0.25 mm.
10. The container (30) according to claim 1, wherein the multi-layer wall (20) comprises a first additional layer (26) between the inner layer (21) and the barrier layer (22) and/or a second additional layer (27) between the barrier layer (22) and the outer layer (23), the first additional layer (26) and/or the second additional layer (27) comprising coupling agents.
11. The container (30) according to claim 1, wherein the container (30) is product of an extrusion blow moulding.
12. (canceled)
13. The container (30) according to claim 1, wherein the container (30) is a bottle and the bottle (30) comprises a dropper (31), the dropper (31) being rotationally symmetric, the dropper (31) having a drip tray (32) at its distal end, the drip tray (32) being concentrically arranged on an outer periphery of the rotationally symmetric dropper (31).
14. (canceled)
15. A method for producing a container (30), a bottle (30) for storing and optionally applying a liquid composition, solvent-containing composition, comprising an elastic multi-layer wall (20) at least in part to completely, wherein the method comprises the method steps of: 1) a) Providing each a granulate or a mixture of granulates to form an inner layer (21) and/or outer layer (23) of an elastic multi-layer wall (20) having a microcellular structure (24); Forming an extrudate to form an inner layer (21) and/or outer layer (23) of an elastic multi-layer wall (20) having a microcellular structure (24); Mixing at least one extrudate to form an inner layer (21) and/or outer layer (23) of an elastic multi-layer wall (20) having a microcellular structure (24) with inert gas and/or carbon dioxide, and obtaining an extrudate comprising inert gas and/or carbon dioxide, and b) Providing a granulate of ethylene vinyl alcohol copolymer or cyclic olefin copolymers (COC), Forming an extrudate of ethylene vinyl alcohol copolymer or cyclic olefin copolymers (COC), and c) Providing a granulate of a thermoplastic polymer, Forming an extrudate from the thermoplastic polymer, and d) Coextrusion blow moulding of a hose having an elastic multi-layer wall (20) from the extrudates a) and b) and c) having the layer design from the inside out: inner layer, barrier layer, outer layer, in a blowing tool or inserting the hose into a blowing tool, followed by the steps of e) Disconnecting or detaching the hose having an elastic multi-layer wall, f) Blowing up the hose provided in the blowing tool having an elastic multi-layer wall to be a container having an elastic multi-layer wall, a bottle, the elastic multi-layer wall of the container having (i) an outer layer (23) a) made of the extrudate comprising inert gas and/or carbon dioxide to form an outer layer (23) of an elastic multi-layer wall (20) having a microcellular structure (24) or b) made of an extrudate of a thermoplastic elastomer, (ii) a barrier layer (22) made of the extrudate of ethylene vinyl alcohol copolymer or cyclic olefin copolymers (COC), and (iii) an inner layer (21) a) made of the extrudate comprising inert gas and/or carbon dioxide to form an outer layer (23) of an elastic multi-layer wall (20) having a microcellular structure (24), or b) made of an extrudate of a thermoplastic polymer, of a thermoplastic elastomer, the elastic multi-layer wall of the container (30) comprising from the inside out an inner layer, barrier layer and an outer layer, at least one inner or outer layer or inner and outer layer have a microcellular structure (24), and f) Obtaining a container (30), a bottle (30), having an elastic multi-layer wall (20), or 2) a) (i) Extrusion blow moulding of an outer layer (23) of the container (30), of the bottle (30), a) from the extrudate to form an outer layer (23) of an elastic multi-layer wall (20) having a microcellular structure (24), or b) from an extrudate of a thermoplastic polymer, from a thermoplastic elastomer to form an inner layer (21) of an elastic multi-layer wall (20), (ii.1) Providing an extrudate of ethylene vinyl alcohol copolymer or cyclic olefin copolymers (COC), (ii.2) Extrusion blow moulding of a barrier layer (22) from the extrudate of ethylene vinyl alcohol copolymer or cyclic olefin copolymers (COC), and (iii) Extrusion blow moulding of an inner layer (21) of the container, the bottle (30), from a) the extrudate comprising inert gas and/or carbon dioxide to form an inner layer (21) of an elastic multi-layer wall (20) having a microcellular structure (24), or b) from an extrudate of a thermoplastic polymer, from a thermoplastic elastomer to form an inner layer (21) of an elastic multi-layer wall (20), and obtaining a container (30), a bottle (30) having an elastic multi-layer wall (20).
16. A method of using a container (30), a bottle, a tube, single-dose vial, bag, sachet and/or syringe body having an elastic multi-layer wall (20) according to claim 1 or obtainable according to claim 15, for storing and applying a liquid or pasty composition, a solvent-containing composition, a dental liquid or a dental gel, a dental adhesive, dental bonding agent, dentin coupling agent, dental primer or dental etching agent.
17. A method of using an elastic a multi-layer wall (20) for producing a container (30), a bottle (30), a tube, single-dose vial, bag, sachet and/or syringe body, according to claim 1 or obtainable according to claim 15, a bottle, tube or syringe body for storing and applying a liquid, solvent-containing composition, a dental liquid or a dental gel, a dental adhesive, dental boding agent, dentin coupling agent, dental primer or dental etching agent.
Description
DESCRIPTION OF THE FIGURES
[0113]
[0114]
[0115]
[0116]
[0117]
[0118]
EMBODIMENTS OF THE INVENTION
[0119]
[0120] The inner layer 21 and/or the outer layer 23 comprises thermoplastics, in particular polyolefins, thermoplastic elastomers (TPE), in particular thermoplastic olefins optionally as copolymer with polyamide, polyester, polystyrene or urethane and/or polypropylene.
[0121] The barrier layer 22 comprises an ethylene vinyl alcohol copolymer or cyclic olefin copolymers (COC) optionally laminated with polychloro trifluoro ethylene (PCTFE). The barrier layer 22 is adapted to form a barrier for oxygen and/or water vapour. In an embodiment, the bottle 30 is product of a multi-layer coextrusion blow moulding with extrudates modified each for the respective layer.
[0122]
[0123] The multi-layer wall 20 may comprise still additional layers in an embodiment. Thus, for example in one embodiment, at least one additional layer each may be arranged between the inner layer 21 and the barrier layer 22 and/or between the barrier layer 22 and the outer layer 23. Depending on the material of which the said additional layer is made of, additional properties may be given to the bottle.
[0124]
[0125]
[0126] In a preferred embodiment, a microcellular material according to the invention is produced having an average cell size of less than approximately 60 μm or 50 μm. In some embodiments, a particularly small cell size is desired and, in these embodiments, the material according to the invention has an average cell size of less than approximately 30 μm, particularly preferably less than approximately 20 μm, and in particular preferably less than approximately 10 μm, and most particularly preferably less than approximately 5 μm. The microcellular material preferably has a maximum cell size of approximately 100 μm or preferably less than approximately 75 μm. In embodiments where a particular small cell size is desired, the material may have a maximum cell size of approximately 50 μm, particularly preferably approximately 35 μm and most particularly preferably approximately 25 μm. A series of embodiments contain all combinations of these characterised average cell sizes and maximum cell sizes. For example, one embodiment in this series of embodiments contains a microcellular material, having an average cell size of less than approximately 30 μm with a maximum cell size of approximately 40 μm, und as another example an average cell size of less than approximately 30 μm with a maximum cell size of approximately 35 μm. This means that a microcellular material being adapted for a variety of purposes may preferably be generated for this purpose having a particular combination of average cell size and maximum cell size.
[0127]
[0128]
[0129] The dropper insert shown has a body 1 formed substantially rotationally symmetric. The body 1 forms a socket 14 at its lower end for connecting to the bottle. The socket 14 is dimensioned such that it is insertable or pressable in, respectively, into the neck of the bottle. In order to facilitate insertion, the socket 14 has an introduction cone 15 at the end. The introduction cone 15 turns into an outer circumferential section of the socket 14, having a radial oversize in relation to the inner diameter of the bottle neck for producing a compressing connection. In a certain axial distance thereto, a circled collar 16 is formed on the outer circumferential side at the socket 14, providing the maximum pressing-in depth of the dropper insert. At the same time, the dropper insert may be supported by the circled collar 16 at the bottle neck.
[0130] A tubular section 18 of the body 1 joins to the socket 14, having a necking 17 at its end averting the socket 14, so that a funnel-shaped end section is formed. The tubular section 18 of the body 1 has a distinctly lower outer diameter than the socket 14. The tubular section 18 is distinctly longer than the socket 14 in axial direction. In doing so, the tubular section 18 forms a type of trunk.
[0131] The body 1 over its whole length is penetrated by a conduit 2, defining an inlet 3 and an outlet 4.
[0132] The conduit 2 is restricted by an inner circumferential surface 5 of the body 1.
[0133] The dropper insert has circular platforms 8 and 9.
[0134] In order to ensure exact drop forming and clean dripping, the outlet 4 is restricted by a front surface 11 of the body 1, enclosing an angle β with an outer circumferential surface 12 of the body 1, which is 45° in the present case. In doing so, the front surface 11 and the outer circumferential surface 12 form a drop tear-off edge 13, preventing the dental liquid to attain behind the drop tear-off edge 13 and to drain on the outside at the dropper insert. For this purpose, the outer circumferential surface 12 is funnel-shaped also, the funnel-shape resulting from the necking 17.
[0135] Moreover, the geometry of the body 1 in the region of the outlet 4 shown in
[0136]
LIST OF REFERENCE NUMERALS
[0137] 1 body [0138] 2 conduit [0139] 3 inlet [0140] 4 outlet [0141] 5 inner circumferential surface of the body 1 [0142] 8 platform [0143] 9 platform [0144] 10 fin [0145] 11 front surface of the body 1 [0146] 12 outer circumferential surface of the body 1 [0147] 13 drop tear-off edge [0148] 14 socket [0149] 15 introduction cone [0150] 16 circled collar [0151] 17 necking [0152] 18 tubular section of the body 1 [0153] 20 multi-layer wall [0154] 21 inner layer [0155] 22 barrier layer [0156] 22 outer layer [0157] 24 microcellular structure [0158] 25 fluid bubbles [0159] 30 container, bottle [0160] 31 dropper [0161] 32 drip tray [0162] 33 dropper insert