Flattened container having an arched bottom with a variable-width base
10266300 ยท 2019-04-23
Assignee
Inventors
Cpc classification
B65D2501/0081
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A container (1) made of plastic material, provided with an oblate body (2) and with a bottom (3) in the extension of the body (2) at a lower end thereof, the bottom (3) including: a peripheral base (7) defining an annular standing plane (8) whose contour exhibits, along a long axis, a large dimension A, and, along a short axis perpendicular to the long axis, a small dimension A that is strictly smaller than the large dimension, a concave arch (13) that extends from the base (7) to a central area (14); wherein the base has: along the long axis, a width C such that:
Claims
1. A container (1) made of plastic material, provided with a flattened body (2) and with a bottom (3) in the lengthening of the body (2) at its lower end, the bottom (3) comprising: a peripheral base (7) defining an annular standing plane (8) whose contour exhibits, along a long axis, a large dimension A, and, along a short axis that is perpendicular to the long axis, a small dimension A that is strictly smaller than the large dimension, a concave arch (13) that extends from the peripheral base (7) to a central area (14); wherein: the peripheral base (7) has: along the long axis, a width C such that:
2. The container (1) according to claim 1, wherein the base (7) has, between the standing plane (8) and the arch (13), an inner annular ledge (10) that is approximately perpendicular to the standing plane (8), this ledge (10) extending, along the long axis, over a height D such that:
3. The container (1) according to claim 1, wherein the width C of the base along the long axis is such that:
4. The container (1) according to claim 1, wherein the width C of the base along the short axis is such that:
5. The container (1) according to claim 1, wherein the width C of the base along the long axis is such that:
C>C.
6. The container (1) according to claim 2, wherein the height D of the ledge (10) is such that:
7. The container (1) according to claim 6, wherein the ledge (10) extends, along the short axis, over a height D such that:
8. The container (1) according to claim 7, wherein the height D of the ledge (10) is such that:
9. The container (1) according to claim 7, wherein the height D of the ledge (10) is such that:
10. The container (1) according to claim 2, wherein the height D of the ledge (10) is such that:
11. The container (1) according to claim 10, wherein the ledge (10) extends, along the short axis, over a height D such that:
12. The container (1) according to claim 11, wherein the height D of the ledge (10) is such that:
13. The container (1) according to claim 2, wherein the ledge (10) extends, along the short axis, over a height D such that:
14. The container (1) according to claim 13, wherein the height D of the ledge (10) is such that:
15. The container (1) according to claim 13, wherein the height D of the ledge (10) is such that:
16. The container (1) according to claim 2, wherein a height D of the ledge (10) is such that:
17. The container (1) according to claim 2, wherein the width C of the base along the long axis is such that:
18. The container (1) according to claim 2, wherein the width C of the base along the short axis is such that:
19. The container (1) according to claim 2, wherein the width C of the base along the long axis is such that:
C>C.
Description
(1) Other objects and advantages of the invention will be brought out in the description of a preferred embodiment, given below with reference to the accompanying drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) Container 1 comprises a body 2 that extends along a main axis X and is lengthened, on a lower side, by a bottom 3, and, on an upper side, opposite the bottom 3, by a shoulder 4 itself lengthened by a neck 5 defining a rim.
(10) At the junction between the body 2, at its lower end, and the bottom 3, the container 1 has an outer connecting fillet 6 having a small-radius (less than or equal to 2 mm) arc shape.
(11) The bottom 3 comprises a peripheral base 7 that defines a continuous standing plane 8, approximately perpendicular to the main axis X of the container 1, and by which the bottom can set flat on a flat surface (in particular the upper surface of a table or of a conveyor belt, within a handling machine on a container production line).
(12) The standing plane 8 is delimited transversely toward the outside (i.e., opposite the axis X of the container) by an outer perimeter 9 that is defined on the inside by the fillet 6.
(13) The container 1 has, in cross-section (i.e., perpendicular to its axis X), a flattened shape, in this case approximately oval. This shape extends to the bottom 3, in particular in the area of the standing plane 8, whose contour is approximately the same as the body 2 in cross-section and which, like an ellipse, has: along a long axis (in the cutting plane III-III in
(14)
(15) The base 7 comprises an inner annular ledge 10 that extends axially toward the interior of the container 1 in the lengthening of the standing plane 8, approximately perpendicular in relation to it. According to a first embodiment illustrated in
(16) According to a second embodiment illustrated in
(17) The standing plane 8 is delimited transversely toward the interior (i.e., in the direction of the axis X of the container) by an inner perimeter 12, defined on the outside by the inner fillet 11 (in the case of the first embodiment) or, respectively, by an inner edge of the step 11, at its junction with the ledge 10 (in the case of the second embodiment).
(18) The bottom 3 further comprises a concave arch 13, with concavity turned toward the exterior of the container 1. This arch 13 extends from the base 7, in the lengthening of the ledge 10, to a central area 14 of the bottom that defines a piece that extends axially projecting toward the interior of the container 1.
(19) Noted: C is a width of the standing plane 8 (merged with a width of the base 7), measured radially along the long axis between the inner perimeter 12 and the outer perimeter 9, respectively between an inner edge of the step 11, at its junction with the ledge 10, and the outer perimeter 9; C is the width of the standing plane 8 measured radially along the short axis; D is a height of the ledge 10 (merged with an inner height of the base 7), measured along the long axis (i.e., in the cutting plane III in
(20) The bottom 3 is designed to maximize the stability of the base 7 while facilitating its blowability.
(21) For this purpose, the base 7 is dimensioned such that its width C can be varied as a function of its transverse extension. More specifically, the width C of the base 7 is dimensioned in the following manner: firstly, the width C of the base 7 along the long axis is such that:
(22)
with, preferably:
(23)
(24)
with, preferably:
(25)
(26) Furthermore, the width C of the base 7 along the long axis is preferably strictly greater than its width C along the short axis:
C>C
(27) The ledge 10 is also dimensioned as a function of the transverse dimension of the base 7: firstly, the height D of the base measured along the long axis is such that:
(28)
with, preferably:
(29)
and, according to a particular embodiment:
(30)
(31)
with, preferably:
(32)
and, according to a particular embodiment:
(33)
(34) This dimensioning makes it possible to maintain a good stability of the container 1 in particular in the plane of the short axis (i.e., the small dimension), while maintaining a good blowability of the container in the plane of the long axis, where the stretching is more difficult but where the stability of the container 1 is, of course, better.
(35) The larger width of the standing plane 8 along the long axis contributes to a good blowability of the base 7 in this direction, minimizing the risk of the appearance of distortions (or defects of surface evenness) on the standing plane 8.
(36) In addition, the narrowness of the standing base 7 along the short axis imparts an almost linear character to it, which reduces the risks of hyperstatism of the base 7 and consequently increases the stability of the container 1.
(37) The dimensioning of the ledge 10 contributes in particular: to a better blowability of the bottom 3 in the plane of the long axis, by minimizing the amount of material that an axial stretching requires; to a better rigidity of the arch 13, thanks to the variation of height of its outer perimeter (at its junction with the ledge 10); to a greater rigidity of the base 7 along the short axis, benefiting its stability in this direction.
(38) To form such a container 1, it is preferable to resort to the boxing technique, in which the container 1 is blow molded in a mold provided with a lateral wall defining a cavity having the impression of the body 2 and a mold bottom that is mounted to move in relation to the wall between a low position in which the bottom is separated from the cavity, and a high position in which the bottom closes the cavity by completing the impression of the container 1. The mold bottom, initially in low position, rises during the blow molding, which leads to an over-stretching of the material in the area of the bottom 3, which can facilitate its impression-taking in particular in the area of the base 7.