NZ528844A - A container having pressure responsive panels - Google Patents

A container having pressure responsive panels

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Publication number
NZ528844A
NZ528844A NZ52884403A NZ52884403A NZ528844A NZ 528844 A NZ528844 A NZ 528844A NZ 52884403 A NZ52884403 A NZ 52884403A NZ 52884403 A NZ52884403 A NZ 52884403A NZ 528844 A NZ528844 A NZ 528844A
Authority
NZ
New Zealand
Prior art keywords
container
region
flexure
flex
panel
Prior art date
Application number
NZ52884403A
Inventor
David Murray Melrose
Original Assignee
David Murray Melrose
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority to NZ539366A priority Critical patent/NZ539366A/en
Application filed by David Murray Melrose filed Critical David Murray Melrose
Priority to NZ52884403A priority patent/NZ528844A/en
Publication of NZ528844A publication Critical patent/NZ528844A/en

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Abstract

A container suitable for containing liquid and having at least one controlled deflection flex panel for accommodating pressure change induced in the container, said flex panel having longitudinal and transverse extents defining a plane of said flex panel, said flex panel having a flexure initiator region and at least one flexure region positioned longitudinally away from said flexure initiator region, said flexure initiator region having a lesser amount of arc projecting away from said plane than said flexure region, said regions merging together within the panel so that said initiator region can flex inwardly relative to said plane and wherein in response to pressure changes the amount of arc changes and causes said flexure region to progressively flex in response to increasing pressure change in the container.

Description

5288 4 U Patents Form No. 5 Our Ref: MH504600 NEW ZEALAND PATENTS ACT 1953 COMPLETE SPECIFICATION A CONTAINER HAVING PRESSURE RESPONSIVE PANELS I, DAVID MURRAY MELROSE, a citizen of New Zealand of 90 Balmoral Road, Mt Eden, Auckland, New Zealand, hereby declare the invention, for which I pray that a patent may be granted to me and the method by which it is to be performed, to be particularly described in and by the following statement: PT053820880 300159879J IPONZ OCT 2003 (Followed by 1a) la A CONTAINER HAVING PRESSURE RESPONSIVE PANELS TPruNir.A} pran This invention relates to a pressure adjustable container and more particularly to polyester containers capable of being filled with hot liquid, and an improved side wail construction for such containers.
BACKGROUND OF THE INVENTION 'Hot-Fill' applications impose significant and complex mechanical stress on a container structure due to thermal stress, hydraulic pressure upon filling and immediately after capping, and vacuum pressure as the 15 fluid cools.
Thermal stress is applied to the walls of the container upon introduction of hot fluid. The hot fluid will cause the container walls to soften and then shrink unevenly, causing distortion of the container. 20 The polyester must therefore be heat-treated to induce molecular changes resulting in a container that exhibits thermal stability.
Pressure and stress are acted upon the side wails of a heat resistant container during the filling process, and for a significant period 25 of time thereafter. When the container is filled with hot liquid and sealed, there is an initial hydraulic pressure and an increased internal pressure is placed upon containers. As the liquid, and the air headspace under the cap, subsequently cool, thermal contraction results in partial evacuation of the container. The vacuum created by this cooling tends 30 to mechanically deform the container walls. 2 Generally speaking, containers incorporating a plurality of longitudinal flat surfaces accommodate vacuum force more readily. Agrawal et al, U.S Pat No. 4,497,855 discloses a container with a plurality of recessed collapse panels, separated by land areas, which 5 allows uniformly inward deformation under vacuum force. The vacuum effects are controlled without adversely affecting the appearance of the container. The panels are drawn inwardly to vent the internal vacuum and so prevent excess force being applied to the container structure, which would otherwise deform the inflexible post or land area, 10 structures. The amount of 'flex' available in each panel is limited, however, and as the limit is approached there is an increased amount of force that is transferred to the side walls.
To minimise the effect of force being transferred to the side 15 walls, much prior art has focused on providing stiffened regions to the container, including the panels, to prevent the structure yielding to the vacuum force.
The provision of horizontal or vertical annular sections, or 'ribs', 20 throughout a container has become common practice in container construction, and is not only restricted to hot-fiil containers. Such annular sections will strengthen the part they are deployed upon. Cochran U.S. Pat No. 4,372,455 discloses annular rib strengthening in a longitudinal direction, placed in the areas between the flat surfaces that 25 are subjected to inwardly deforming hydrostatic forces under vacuum force. Akiho Ota et al U.S. Pat No. 4,805,788 discloses longitudinally extending ribs alongside the panels to add stiffening to the container. Akiho Ota also discloses the strengthening effect of providing a larger step in the sides of the land areas. This provides greater dimension and 30 strength to the rib areas between the panels. Akiho Ota et al, U.S. Pat No. 5,178,290 discloses indentations to strengthen the panel areas themselves.
Akiho Ota et al, U.S. Pat No. 5,238,129 discloses further annular rib strengthening, this time horizontally directed in strips above and below, and outside, the hot-fill panel section of the bottle.
In addition to the need for strengthening a container against both thermal and vacuum stress, there is a need to allow for an initial hydraulic pressure and increased internal pressure that is placed upon a container when hot liquid is introduced followed by capping. This causes stress to be placed on the container side wail. There is a forced outward movement of the heat panels, which can result in a barrelling of the container.
Thus, Hayashi et al, US Pat No. 4,877,141, discloses a panel configuration that accommodates an initial, and natural, outward flexing caused by internal hydraulic pressure and temperature, followed by inward flexing caused by the vacuum formation during cooling. Importantly, the panel is kept relatively flat in profile, but with a central portion displaced slightly to add strength to the panel but without preventing its radial movement in and out. With the panel being generally flat, however, the amount of movement is limited in both directions. By necessity, panel ribs are not included for extra resilience, as this would prohibit outward and inward return movement of the panel as a whole.
Krishnakumar et al, U.S. Pat 5,908,128 discloses another flexible panel that is intended to be reactive to hydraulic pressure and temperature forces that occur after filling. Relatively standard 'hot-fill' style container geometry is disclosed for a 'pasteurizable' container, it 4 is claimed that the pasteurization process does not require the container to be heat-set prior to filling, because the liquid is introduced cold and is heated after capping. Concave panels are used to compensate for the pressure differentials. To provide for flexibility in both radial outward 5 movement followed by radial inward movement however, the panels are kept to a shallow inward-bow to accommodate a response to the changing internal pressure and temperatures of the pasteurization process. The increase in temperature after capping, which is sustained for some time, softens the plastic material and therefore allows the 10 inwardly curved panels to flex more easily under the induced force. It is disclosed that too much curvature would prevent this, however. Permanent deformation of the panels when forced into an opposite bow is avoided by the shallow setting of the bow, and also by the softening of the material under heat. The amount of force transmitted to the 15 walls of the container is therefore once again determined by the amount of flex available in the panels, just as it is in a standard hot-fill bottle. The amount of flex is limited, however, due to the need to keep a shallow curvature on the radial profile of the panels. Accordingly, the bottle is strengthened in many standard ways.
Krishnakumar et al, U.S. Pat 5,303,834 discloses still further 'flexible' panels that can be moved from a convex position to a concave position, in providing for a 'squeezable' container. Vacuum pressure alone cannot invert the panels, but they can be manually forced into 25 inversion. The panels automatically 'bounce' back to their original shape upon release of squeeze pressure, as a significant amount of force is required to keep them in an inverted position, and this must be maintained manually. Permanent deformation of the panel, caused by the initial convex presentation, is avoided through the use of multiple 30 longitudinal flex points.
Krishnakumar et al, U.S. Pat 5,971,184 discloses stiii further 'flexible' panels that claim to be movable from a convex first position to a concave second position in providing for a grip-bottle comprising two large, flattened sides. Each panel incorporates an indented 'invertible' central portion. Containers such as this, whereby there are two large and flat opposing sides, differ in vacuum pressure stability from hot-fill containers that are intended to maintain a generally cylindrical shape under vacuum draw. The enlarged panel side wails are subject to increased suction and are drawn into concavity more so than if each panel were smaller in size, as occurs in a 'standard' configuration comprising six panels on a substantially cylindrical container. Thus, such a container structure increases the amount of force supplied to each of the two panels, thereby increasing the amount of flex force available.
Even so, the convex portion of the panels must still be kept relatively flat, however, or the vacuum force cannot draw the panels into the required concavity. The need to keep a shallow bow to allow flex to occur was previously described by Krishnakumar et ai in both U.S. Pat 5,303,834 and U.S. Pat 5,908,128. This in turn limits the amount of vacuum force that is vented before strain is placed on the container walls. Further, it is generally considered impossible for a shape that is convex in both the longitudinal and horizontal planes to successfully invert, anyhow, unless it is of very shallow convexity.
Still further, the panels cannot then return back to their original convex position again upon release of vacuum pressure when the cap is removed if there is any meaningful amount of convexity in the panels. At best, a panel will be subject to being 'force-flipped' and will lock into a new inverted position. The panel is then unable to reverse in direction as there is no longer the influence of heat from the liquid to soften the material and there is insufficient force available from the ambient 6 pressure. Additionally, there is no longer assistance from the memory force that was available in the plastic prior to being flipped into a concave position. Krishnakumar et ai U.S. Pat 5,908,128 previously disclose the provision of longitudinal ribs to prevent such permanent deformation occurring when the panel arcs are flexed from a convex position to one of concavity. This same observation regarding permanent deformation was also disclosed in Krishnakumar et al U.S. Pat 5,303,834. Hayashi et al US Pat No. 4,877,141 also disclosed the necessity of keeping panels relatively flat if they were to be flexed against their natural curve.
The principal mode of failure in prior art containers is believed by the applicant to be non-recoverable buckling of the structural geometry of the container, due to weakness, when there is a vacuum pressure inside the container, and especially when such a container has been subjected to a lowering of the material weight for commercial advantage.
The present invention in contrast, allows for increased flexing of the vacuum panel side walls so that the pressure on the containers may be more readily accommodated. Reinforcing ribs of various types and location may still be used, as described above, to still compensate for any excess stress that must inevitably be present from the flexing of the container walls into the new 'pressure-adjusted' condition by ambient forces.
OBJECT OF THE INVENTION Thus, it is an object of the invention to overcome or at least alleviate such problems in containers at present or at least to provide the public with a useful choice. 300389524_1:MH503631 Further objects of the present invention may become apparent from the following description.
SUMMARY OF THE INVENTION According to one aspect of the present invention, there is provided a container suitable for containing liquid and having at least one controlled deflection flex panel for accommodating pressure change induced in the container, said flex panel having longitudinal and transverse extents defining a plane of said flex panel, said flex panel 10 having a flexure initiator region and at least one flexure region positioned longitudinally away from said flexure initiator region, said flexure initiator region having a lesser amount of arc projecting away from said plane than said flexure region, said regions merging together within the panel so that said initiator region can flex inwardly relative to said plane and wherein in response to pressure changes the amount of arc changes and 15 causes said flexure region to progressively flex in response to increasing pressure change in the container.
According to another aspect of the present invention, there is provided A container having at least one controlled deflection flex panel, said flex panel having longitudinal and 20 transverse extents defining a plane of said flex panel, said flex panel having an initiator region having a predetermined amount of arc projecting away from said plane and a first and a second flexure region of a greater amount of arc projecting away from said plane extending longitudinally away from said initiator region, said first flexure region extending towards a first end of said flex panel and said second flexure region extending towards an 25 opposing end of said flex panel, said initiator region being positioned nearer the centre of the flex panel than either longitudinal end, whereby flex panel deflection occurs in a controlled and progressive manner in response to changing container pressure.
According to yet another aspect of the present invention, there is provided A 30 container having at least one controlled deflection flex panel, said flex panel having longitudinal and transverse extents defining a plane of said flex panel, said flex panel having an initiator region having an arc of a predetermined extent of outward projection and a first and a second flexure region each having an arc of a greater predetermined extent of outward projection extending longitudinally away from said initiator region, said 35 first flexure region extending towards a first end of said flex panel and said second flexure Intellectual Property Office of N.Z. 1 1 APR 2005 d c r*. c, i y iP n 8 region extending towards an opposing end of said flex panel, said initiator region being positioned nearer the centre of the flex panel than either longitudinal end, whereby flex panel deflection occurs in a controlled and progressive manner in response to changing container pressure.
According to yet another aspect of the present invention, there is provided a container adapted to contain liquid at a temperature elevated above room temperature and having a longitudinal axis, said container including a wall with at least one controlled deflection flex panel having a portion with an initiator region having an amount of arc of a 10 predetermined extent of outward projection and a longitudinally displaced flexure region having an amount of arc of a progressively increasing extent of outward projection longitudinally extending away from said initiator region, said wall being outwardly bowed between said regions, said outward bow varying in width progressing longitudinally from one end to another end of said flex panel, whereby flex panel deflection occurs 15 progressively between said regions in a controlled manner in response to changing container pressure.
Intellectual Propsrty Office of N.Z. (next specification page is page 10) 11 APR 2305 cOci V 9 the flexible pane! is in a first position and return to the "U"-shape when the flexible panel is inverted from the first position.
Preferably, the extent of projection of the initiator portion may be 5 adapted to allow deflection of the initiator portion upon cooling of a predetermined liquid introduced to the container at a predetermined temperature.
Preferably, the flexible panel may be adapted to invert in use 10 upon deflection of the initiator portion.
According to another aspect of the present invention, there is provided a controlled deflection flex panel, having an initiator region of a predetermined extent of projection and a flexure region of a greater 15 extent of projection extending away from said initiator region, whereby flex panel deflection occurs in a controlled manner in response to changing container pressure.
According to a further aspect of the present invention, there is 20 provided a controlled deflection flex panel for a hot-fiilabie container having a portion with an initiator region of predetermined extent of projection and a flexure region of progressively increasing extent of projection extending away from said initiator region, said wail being outwardly bowed between said regions, whereby flex panel deflection 25 occurs progressively between said regions in a controlled manner in response to changing container pressure.
Preferably, a flattened region may extend between said inflexible regions to provide an end portion of said initiator portion.
According to another aspect of the present invention, there is provided a controlled deflection flex panel, having an initiator region of predetermined extent of projection and a flexure region having a lesser extent of projection in an opposite direction to the initiator region, the flexure region extending away from said initiator region, whereby flex panel deflection occurs in a controlled manner in response to changing container pressure.
According to a further aspect of the present invention,.there is provided a controlled deflection flex panel for a hot-fillable container having a portion with an initiator region of predetermined extent of projection and a flexure region of progressively decreasing extent of projection extending away from said initiator region, said wail being inwardly bowed between said regions, whereby flex panel deflection occurs progressively between said regions in a controlled manner in response to changing container pressure.
In one preferred form, the initiator region and/or flexure region may be substantially arcuate.
In an alternate preferred form, the initiator region and/or flexure region may include two panel portions meeting at an apex.
Further aspects of the invention may become apparent from the following description given by way of example only and in which reference is made to the accompanying drawings. 11 BRIEF DESCRIPTION OF THE DRAWINGS FIGURE 1: shows an eievationai view of a container according to one possible embodiment of the present invention.
FIGURE 2a: shows an eievationai panei section of the container shown in Figure 1. figure Ph: shows a side view of the panei section shown in Figure 2a.
FIGURE 3: shows a side view of the panei section shown in Rgure 2 b inverted.
FIGURES 4a-c: show schematic representations of the cross-section of the container of Figure 1 aiong lines A-C respectively when the panel sections are not inverted.
FIGURES 5a-c: show schematic representations of the cross-section of the container of Rgure 1 aiong lines A-C respectively when the panei sections are inverted.
FIGURES 6a-c: show front and side views of an alternative embodiment of a panei section.
RGURE 7a: shows an eievationai front view of a further alternative embodiment of a panel section. 12 FIGURES 7b.c: show side views of the panel section of Figure 7a in the non-inverted and inverted positions respectively.
RGURE 8a: shows an eievationai front view of a further alternative embodiment of a panei section.
FIGURES 8b-d: show side views Of the panel section of Figure 8a in a non-inverted, partly inverted and fully 10 inverted position respectively.
FIGURES 9a-c & FIGURES d-f: show schematic representations of the cross section through lines corresponding to A-C 15 respectively of the container of Figure 1 having a further alternative panei section respectively in the non-inverted and inverted positions.
DETAILED DESCRIPTION OF THE DRAWINGS Referring to FIG 1, according to a preferred form of the present invention, a container is indicated generally at 1 as having a main side wall portion 2 of generally round cylindrical shape.
The container 1 is a pressure-adjustable container, in particular a ' hot-fill' container that is adapted to be filled with a liquid at a temperature above room temperature. The container 1 may be formed in a blow mould and may be produced from a polyester or other plastic material, such as a heat set polyethylene terepthalate (PET). The lower 30 part of side wall portion 2 includes a plurality of vertically oriented elongated vacuum panels 3 which are disposed about the circumference 13 of the container, spaced apart from one another by smooth vertically elongated land areas 4. Each panei may be generally rectangular in shape and is adapted to fiex inwardly upon filling the container with a hot-fill liquid, capping the container, and subsequent cooling of the liquid. During the process the vacuum panels 3 operate to compensate for the hot-fill vacuum.
Referring now to Rgure 2a, a vacuum panel 3 of container 1 is shown. The vacuum panel 3 includes at least one connecting portion 7 that connects a projecting portion 5 to the land areas 4. The projecting portion 5 includes an initiator portion 8, which controls a junction of the projecting portion 5 and the connecting portion 7. Preferably, the connecting portion 7 is capable of flexing inwardly under vacuum force with relative ease and the initiator portion 8 causes the projecting portion 5 to deflect by both inverting and then flexing further inwardly. This causes far greater evacuation of volume from the vacuum panels 3 than existing flex-panels. Vacuum pressure is subsequently reduced to a greater degree than in existing containers causing less stress to be applied to the container side walls.
Preferably, the connecting portion 7 allows for the radius from the centre of the container 1 at the edge of the flex panei 3 (inside of the connecting portion 7) to be set independently of the radius at the edge of the land areas 4 (outside border surrounding the connecting portion 7). Thus, the connecting portion 7 allows for the land area 4 to be independently complete on one side, and for the flex panei 3 to be complete, and optimised for deflection on the other side. The connecting portion 7 bridges any circumferential radial difference between the two structures. 14 The boundary 8A between the initiator portion 8 and the rest of the projecting portion 5 is shown as being itself substantially arcuate in the circumferential direction of the panel 3.
The amount of arc or projection of the initiator portion 8 relative to a plane defined by the central longitudinal axis of the container is significantly less than the arc or projection of the projecting portion 5, making it more susceptible to vacuum pressure. The initiator portion 8 further includes an initiator end 9 that is predominantly flattened, and is 10 most susceptible to vacuum pressure. Thus when the container 1 is subjected to vacuum pressure, the vacuum panel 3 may flex at initiator end portion 9 followed by deflection and then inversion of the whole initiator portion 8 and subsequent continuation of inversion of the projecting portion 5. In an alternative embodiment, the initiator end 9 15 may be concave. In this embodiment however, the extent of projection of the concave portion relative to a plane defined by the central longitudinal axis of the container is still less than the magnitude of the projection of the rest of the projecting portion 5.
It will be appreciated that the inversion of the projecting portion may progress steadily in response to the gradual contraction of the volume of the contents of the container 1 during cooling. This is in contrast to a panei which 'flips' between two states. The gradual deflection of the projecting portion 5 to and from inversion in response 25 to a relatively small pressure differential in comparison to panels which "flip", means that less force is transmitted to the side wails of the container 1. This allows for less material to be necessarily utilised in the container construction, making production cheaper.
Consequentially, less failures under load may occur for the same amount 30 of container material.
Furthermore, the reduced pressure differential required to invert the projecting portion 5 allows for a greater number of panels 3 to be included on a single container 1. The panei 3 also does not need to be large in size, as it provides for a low vacuum force to initiate panei fiex. Thus, the panels 3 do not need to be large in size, nor reduced in number on a container structure, providing more flexibility in container design.
Figure 2b shows a cross-section along line DD in Figure 2a. The panel 3 is shown with projecting portion 5 in its non-inverted position, the dotted line indicating the boundary of the projecting portion 5 with the connecting portion 7. In the preferred form of the invention, the projecting portion 5 is substantially arcuate in an outwardly radial or transverse direction, as indicated by direction arrow 6. The connector portion 7 is substantially "LT-shaped, with the relative heights of the sides of the "U" determining the relative radius at which the land areas 4 and projecting portion 5 are positioned. The initiator end 9 is most susceptible to vacuum pressure due to projecting to the least extent i.e. having the smallest arc of the projecting portion 5.
Figure 3 shows a panel 3 with the projecting portion 5 inverted due to applied vacuum pressure. The initiator end 9 and initiator portion 8 deflect and invert first, effectively pulling the adjacent area of the projection portion 5 inwards. This continues along the projecting portion until the projecting portion is fully inverted as shown at 5b. The dotted line in Figure 3 shows the edge of the projection portion 5 and the dashed line 5a shows the position of the projecting portion 5 when not inverted. 16 Importantly, when the vacuum pressure is released following removal of the cap from the container, the panei 3 is able to recover from its vacuum-set position and return to its original configuration.
This may be assisted by an even gradation of arc curvature from one end of the projecting portion 5 to the other, the arc of curvature progressively increasing away from the initiator portion 8. Alternatively, the projection portion 5 may have a substantially constant gradation. When the pressure is released, the initiator portion 8 causes the inwardly arcuate panel 3 to successfully reverse direction transversely, beginning with reversal of the initiator portion 8 and followed by the raised projecting portion 5 without being subject to non-recoverable buckling. The vacuum panei 3 may repeatedly invert without significant permanent deformation.
Figures 4a-c show cross-sectional representations of the container 1 shown in Rgure 1 aiong lines AA, BB, and CC respectively wrth the projecting portions 5 in the non-inverted position. In this preferred embodiment, the projecting portion 5 progressively projects further outward away from the initiator portion 8.
Figures 5a-c show cross-sectional representations of the container 1 along lines AAr BB, and CC respectively with the projecting portion 5 in the fully inverted position, 5b, due to applied vacuum pressure. The area of the projecting portion 5 around line AA deflects to a relatively large extent in comparison to areas closer to the initiator portion 8. The dotted lines 5a in Figures 5a-c indicate the position of the projection portions 5 without vacuum pressure.
Rgure 6a shows an elevation of an alternative embodiment of a vacuum panel 30 with initiator portion 80 and flattened region 90. The connector portion 70 of vacuum panei 30 is a planar member 17 surrounding the projecting portion 50. Figure 6b shows the vacuum panel 30 without vacuum pressure applied. The projecting portion 50 has a substantially constant arc curvature away from the initiator region 80 in the direction of arrow 6. Figure 6c shows vacuum panei 30 with 5 its projecting portion 50 in a fully inverted position due to the application of vacuum pressure.
Figure 7a shows an elevation of a further alternative embodiment of a vacuum panel 300. The vacuum panel 300 includes two projecting 10 portions 500 located vertically adjacent to each other. The initiator portion 800 extends in two directions from a central initiator end 900. In this embodiment, the centre of the vacuum panei 300 is most susceptible to deflection under vacuum pressure and hence deflects first. Figures 7b and 7c show the vacuum panei 300 without vacuum 15 pressure applied and in the fully inverted position respectively.
Dotted line 800a illustrates the arcuate boundary between the initiator portions 800 and the rest of the projecting portions 500.
Figure 8a shows an elevation of a further alternative embodiment of a vacuum panei referred generally by arrow 300\ The vacuum panei 3001 includes two projecting portions 5001 and 500" located vertically adjacent to each other with respective initiator portions 8001 including a central flattened region 9001, between them. However, unlike vacuum 25 panel 300, the nominal position of one of the projecting portions 50011 is concave rather than convex (see Rgure 8b). Upon application of hydraulic pressure, the concave projecting portion 50011 is inverted in the direction shown by arrow 6a (see Rgure 8c), reducing pressure on land areas (4) between adjacent panels 3001. Once the fluid cools, 30 vacuum pressure causes both projecting portions 5001 and 50011 to invert in the direction of arrow 6B. (See Rgure 8d). 18 It will be appreciated that the profile and/or configuration of the vacuum panels may be varied. For example, as shown in Figure 9, the container (1) may have vacuum panels with projecting portions 51 including two planar portions 10 meeting at an apex 11 so as to form an angular, as opposed to an arcuate, panei. Figures 9a-c show cross-sections along lines AA, BB and CC respectively of the container 1 of Figure 1 but with such projecting portions 5'. Figures 9d-f show the inverted positions of projecting portions 51 of Figures 9a-c respectively, with the full lines 51b showing the inverted position and the dotted lines 51a the positions before inversion. Additionally, or alternatively, the panels 3 of any of the embodiments may be disposed transversely of the longitudinal axis of the container 1 rather than vertically as shown in Figure 1 for example.
Thus, there is provided a pressure adjustable container including flexible panels that allow for a large change in volume in the contents of the container and therefore reduced pressure being applied to the side walls. Consequently, reduced material content is required to support the integrity of the container and the container may thus be cheaper to manufacture.
Where in the foregoing description, reference has been made to specific components or integers of the invention having known equivalents then such equivalents are herein incorporated as if individually set forth.
Although this invention has been described by way of example and with reference to possible embodiments thereof, it is to be understood that modifications or improvements may be made thereto without departing from the scope of the invention as defined in the appended claims.
CC: File Ref: 502500-142 19

Claims (1)

  1. CLAIMS: 2 3 4 5 6 A container suitable for containing liquid and having at least one controlled deflection flex panel for accommodating pressure change induced in the container, said flex panel having longitudinal and transverse extents defining a plane of said flex panel, said flex panel having a flexure initiator region and at least one flexure region positioned longitudinally away from said flexure initiator region, said flexure initiator region having a lesser amount of arc projecting away from said plane than said flexure region, said regions merging together within the panel so that said initiator region can flex inwardly relative to said plane and wherein in response to pressure changes the amount of arc changes and causes said flexure region to progressively flex in response to increasing pressure change in the container. A container as claimed in claim 1 wherein said flex panel includes at least one substantially central flexure initiator region and a pair of flexure regions extending longitudinally away from said initiator region towards opposite longitudinal ends of said flex panel. A container as claimed in claim 1 in which at least one said flexure initiator region is positioned towards a first longitudinal end of said flex panel and at least one said flexure region extends longitudinally away from said first longitudinal end. A container as claimed in any one of the preceding claims which has a longitudinal axis and said flexure region projects outwardly in a transverse direction relative to said longitudinal axis. A container as claimed in claim 4 in which said flexing of said flexure region results in an outward curvature of said outward projection of said flexure region lessening. A container as claimed in any one of the preceding claims wherein said initiator region has an outward curvature which merges smoothly with said flexure region and progressively increases from said initiator region to said flexure region. A container as claimed in any one of the preceding claims wherein said initiator region has an outward curvature which merges smoothly with said flexure region and progressively decreases from said initiator region to said flexure region. Intellectual Prooerty Office of W.z. 1 1 APR 2005 300389502 1 20 8 A container as claimed in any one of the preceding claims wherein an extent of said arc relative to said plane varies along an axis of said container. 9 A container as claimed in any one of the preceding claims wherein said initiator region varies in transversely radiating extent along a longitudinal axis of said container. 10 A container as claimed in any one of the preceding claims wherein said flexure region varies in transversely radiating extent along said longitudinal axis of said container. 11 A container as claimed in claim 1 wherein said flex panel includes two panel portions meeting at an apex. 12 A container as claimed in claim 11 wherein the panel portions are substantially planar. 13 A container as claimed in claim 11 or claim 12 wherein the amount of arc is determined by the disposition of the panel portions about the apex. 14 A container having at least one controlled deflection flex panel, said flex panel having longitudinal and transverse extents defining a plane of said flex panel, said flex panel having an initiator region having a predetermined simount of arc projecting away from said plane and a first and a second flexure region of a greater amount of arc projecting away from said plane extending longitudinally away from said initiator region, said first flexure region extending towards a first end of said flex panel and said second flexure region extending towards an opposing end of said flex panel, said initiator region being positioned nearer the centre of the flex panel than either longitudinal end, whereby flex panel deflection occurs in a controlled and progressive manner in response to changing container pressure. 15 A container having at least one controlled deflection flex panel, said flex panel having longitudinal and transverse extents defining a plane of said flex panel, said flex panel having an initiator region having an arc of a predetermined extent of outward projection and a first and a second flexure region each having an arc of a greater predetermined extent of outward projection extending longitudinally away from said initiator region, said first flexure region extending towards a first end of said flex panel and said second flexure region extending towards an opposing end of said flex panel, said initiator region Intellectual Property Office of N.Z. 1 t APR 2005 receive 21 17 18 19 21 22 23 24 being positioned nearer the centre of the flex panel than either longitudinal end, whereby flex panel deflection occurs in a controlled and progressive manner in response to changing container pressure. A container adapted to contain liquid at a temperature elevated above room temperature and having a longitudinal axis, said container including a wall with at least one controlled deflection flex panel having a portion with an initiator region having an amount of arc of a predetermined extent of outward projection and a longitudinally displaced flexure region having an amount of arc of a progressively increasing extent of outward projection longitudinally extending away from said initiator region, said wall being outwardly bowed between said regions, said outward bow varying in width progressing longitudinally from one end to another end of said flex panel, whereby flex panel deflection occurs progressively between said regions in a controlled manner in response to changing container pressure. A container as claimed in claim 15 or claim 16, including a pair of substantially inflexible regions between which said initiator region and said flexure regions extend,. A container as claimed in any one of claims 15 to 17, wherein the initiator region and/or flexure region includes two panel portions meeting at an apex. A container as claimed in any one of the preceding claims wherein the initiator region inverts so as to reverse in curvature in response to vacuum pressure change within said container. A container as claimed in any one of the preceding claims wherein said flexure region inverts so as to reverse in curvature in response to vacuum pressure change within said container. A container as claimed in any one of the preceding claims having at least 2 flex panels. A container as claimed in any one of the preceding claims having at least 3 flex panels. A container as claimed in any one of the preceding claims having at least 4 flex panels. A container as claimed in any one of the preceding claims having at least 5 flex panels. Intellectual Propgrty Office of NX 1 1 APR 2005 25 22 A container as claimed in any one of the preceding claims having at least 6 flex panels. ASPEC4331260 Intellectual Property Office of MZ. 1 1 APR 2905 REG&I VfcED
NZ52884403A 1999-02-25 2003-10-10 A container having pressure responsive panels NZ528844A (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
NZ539366A NZ539366A (en) 1999-02-25 2000-02-24 A container having pressure responsive panels, with initiator region near central zone of panel
NZ52884403A NZ528844A (en) 1999-02-25 2003-10-10 A container having pressure responsive panels

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NZ33437299 1999-02-25
NZ52884403A NZ528844A (en) 1999-02-25 2003-10-10 A container having pressure responsive panels

Publications (1)

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NZ528844A true NZ528844A (en) 2005-10-28

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Family Applications (2)

Application Number Title Priority Date Filing Date
NZ539366A NZ539366A (en) 1999-02-25 2000-02-24 A container having pressure responsive panels, with initiator region near central zone of panel
NZ52884403A NZ528844A (en) 1999-02-25 2003-10-10 A container having pressure responsive panels

Family Applications Before (1)

Application Number Title Priority Date Filing Date
NZ539366A NZ539366A (en) 1999-02-25 2000-02-24 A container having pressure responsive panels, with initiator region near central zone of panel

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NZ (2) NZ539366A (en)

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Publication number Publication date
NZ539366A (en) 2007-03-30

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