FLANGE MEMBERS AND RESERVOIRS INCORPORATING THE SAME
20220250016 · 2022-08-11
Inventors
- Andrew Govea (Ventura, CA, US)
- Katherine Conlin (San Luis Obispo, CA, US)
- Max Blomberg (Templeton, CA, US)
Cpc classification
B01F23/565
PERFORMING OPERATIONS; TRANSPORTING
B01F25/316
PERFORMING OPERATIONS; TRANSPORTING
B01F25/43141
PERFORMING OPERATIONS; TRANSPORTING
B65D75/70
PERFORMING OPERATIONS; TRANSPORTING
B01F25/31243
PERFORMING OPERATIONS; TRANSPORTING
B01F25/3121
PERFORMING OPERATIONS; TRANSPORTING
B01F25/312
PERFORMING OPERATIONS; TRANSPORTING
B01F25/53
PERFORMING OPERATIONS; TRANSPORTING
B01F35/7137
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01F25/316
PERFORMING OPERATIONS; TRANSPORTING
B01F25/312
PERFORMING OPERATIONS; TRANSPORTING
B01F25/421
PERFORMING OPERATIONS; TRANSPORTING
B01F25/53
PERFORMING OPERATIONS; TRANSPORTING
B01F35/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A flange member for sealing a mouth extending from a reservoir, includes an annular body for receiving and connecting with the mouth of the reservoir, and a membrane coupled to a flange surface defined at a distal end of the annular body.
Claims
1. A reservoir and flange member combination comprising: a reservoir; a mouth extending from the reservoir, said mouth comprising an annular wall; a flange member connected to the mouth comprising an annular body having an inner surface, and an annular flange surface defined at a distal end of the annular body, wherein the annular body is connected to the annular wall and extends coaxially with the annular wall; and a membrane coupled to the annular flange surface.
2. The combination of claim 1, wherein said annular flange surface extends radially outward from the annular body.
3. The combination as recited in claim 1, further comprising a projection extending radially outward from the annular wall and a groove extending radially inward from the inner surface of the annular body into the annular body, wherein the annular body surrounds at least an axial portion of the annular wall and wherein the projection extending from the annular wall is received in the groove extending in the annular body for connecting the flange member to the mouth.
4. The combination as recited in claim 3, wherein the groove comprises a first section, a second section, and a third section, wherein the first section defines a first step, wherein the second section tapers from the first section to the third section reducing in diameter in a direction toward the third section, and wherein the third section extends from the second section and in a direction axially away from the first and second sections and defines a second step.
5. The combination as recited in claim 4, wherein the projection comprise a radially extending surface and a tapered outer surface decreasing from the radially extending surface in a direction toward a distal end of the mouth, wherein the radially extending surface is adjacent the first step, the tapered outer surface is adjacent the second section, and wherein the distal end of the mouth is adjacent the second step, wherein the first step defines a first stop for blocking withdrawal of the mouth from the flange member, and wherein the second step defines a second stop for blocking further axial travel of the mouth past the second stop in a direction toward the annular flange surface.
6. The combination as recited in claim 4, wherein the projection is an annular projection, wherein the radially extending surface is an annular radially extending surface, wherein the tapered outer surface is an annular tapered outer surface, wherein the groove is an annular groove, wherein the first step is an annular first step, wherein the first section is an annular first section, wherein the second section is an annular second section, wherein the third section is an annular third section, and wherein the second step is an annular second step.
7. The combination as recited in claim 6, wherein the projection is a compressible annular locking ring.
8. The combination as recited in claim 1, wherein an annular depression extends axially in the annular flange surface, and wherein the membrane is connected to the annular flange surface at a location radially outward from said annular depression.
9. The combination as recited in claim 1, wherein the membrane extends over the annular flange surface, wherein a first radially extending depression is formed above the annular flange surface on the annular body, and wherein the membrane comprises a first radially extending projection and a second radially extending projection spaced apart from the first radially extending projection defining a second radially extending depression there-between, wherein the first radially extending projection is received in the first radially extending depression and wherein the second radially extending projection extends over said annular flange surface.
10. The combination as recited in claim 1, wherein the membrane comprises a plurality of axially extending projections and wherein the flange comprises a plurality of axially extending depressions receiving said plurality of axially extending projections for coupling the membrane to the annular flange surface.
11. The combination as recited in claim 10, wherein each of the plurality of axially extending projections comprises a tab, and wherein each of the plurality of axially extending depressions comprises a secondary depression for receiving a corresponding tab of said plurality of axial extending projections for locking the membrane relative to said annular flange surface.
12. The combination as recited in claim 1, wherein the membrane comprises an annular section for interfacing with the flange, said annular section surrounding an inner section of the membrane, wherein the annular section is stiffer than the inner section.
13. The combination as recited in claim 12, wherein the annular section is thicker than the inner section.
14. The combination as recited in claim 1, wherein the membrane is welded to the annular flange surface.
15. The combination as recited in claim 1, wherein the membrane comprises a peripheral radial projection received in a peripheral radial depression formed on the annular body.
16. The combination as recited in claim 15, wherein the membrane peripheral radial projection interfaces with the peripheral radial depression along a slanted interface that tapers from a smaller diameter to a larger diameter in a direction toward the annular flange surface.
17. A flange member for sealing a mouth extending from a reservoir, the flange member comprising: an annular body for receiving and connecting with the mouth of the reservoir, wherein the annular body comprise an inner surface, and an annular flange surface defined at a distal end of the annular body; a membrane coupled to the annular flange surface.
18. The flange member as recited in claim 17, wherein said annular flange surface extends radially outward from the annular body.
19. The flange member as recited in claim 17, a groove extending radially inward from the inner surface of the annular body into the annular body for receiving a projection extending radially outward from the annular wall for connecting the flange member to the mouth.
20. The flange member as recited in claim 19, wherein the groove comprises a first section, a second section, and a third section, wherein the first section defines a first step, wherein the second section tapers from the first section to the third section reducing in diameter in a direction toward the third section, and wherein the third section extends from the second section and in a direction axially away from the first and second sections and defines a second step.
21. The flange member recited in claim 20, wherein the first step defines a first stop for blocking withdrawal of the mouth from the flange member, and wherein the second step defines a second stop for blocking further axial travel of the mouth past the second stop in a direction toward the flange surface.
22. The flange member as recited in claim 21, wherein the groove is an annular groove, wherein the first step is an annular first step, wherein the first section is an annular first section, wherein the second section is an annular second section, wherein the third section is an annular third section, and wherein the second step is an annular second step.
23. The flange member as recited in claim 17, wherein an annular depression extends axially in the annular flange surface, and wherein the membrane is connected to the annular flange at a location radially outward from said annular depression.
24. The flange member as recited in claim 17, wherein the membrane extends over the annular flange surface comprises a flange surface, wherein a first radially extending depression is formed above the annular flange surface on the annular body, and wherein the membrane comprises a first radially extending projection and a second radially extending projection spaced apart from the first radially extending projection defining a second radially extending depression there-between, wherein the first radially extending projection is received in the first radially extending depression and wherein the second radially extending projection extends over said annular flange surface.
25. The flange member as recited in claim 17, wherein the membrane comprises a plurality of axially extending projections and wherein the flange comprises a plurality of axially extending depressions receiving said plurality of axially extending projections for coupling the membrane to the annular flange surface.
26. The flange member as recited in claim 25, wherein each of the plurality of axially extending projections comprises a tab, and wherein each of the plurality of axially extending depressions comprises a secondary depression for receiving a corresponding tab of said plurality of axially extending projections for locking the membrane relative to said annular flange surface.
27. The flange member as recited in claim 17, wherein the membrane comprises an annular section for interfacing with the flange, said annular section surrounding an inner section of the membrane, wherein the annular section is stiffer than the inner section.
28. The flange member as recited in claim 27, wherein the annular section is thicker than the inner section.
29. The flange member as recited in claim 17, wherein the membrane is welded to the annular flange surface.
30. The flange member as recited in claim 17, wherein the membrane comprises a peripheral radial projection received in a peripheral radial depression formed on the annular body.
31. The flange member as recited in claim 30, wherein the membrane peripheral radial projection interfaces with the flange peripheral radial depression along a slanted interface that tapers from a smaller diameter to a larger diameter in a direction toward the annular flange surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION
[0039] Powder transfer bags and their components, rehydration systems incorporating powder transfer bags, and methods of using the same, are disclosed herein. In an example embodiment, a powder transfer bag 10 for holding a powder material to be hydrated is disclosed in
[0040] In another example embodiment, the mouth 12 of the powder bag 10 includes an annular flange 30, as shown in
[0041] In yet another example embodiment as shown in
[0042] In an example embodiment as shown in
[0043] With this example embodiment, the membrane member 32 is welded onto the flange 30 of the flange member 40. The flange member 40 is then slid over the mouth 12. As the flange member 40 slid over the mouth 42, the inner wall surface 56 of the flange member slides over the outer wall surface 59 of the mouth 42 and compresses or flexes the locking ring until it moves along the locking ring axially and the locking ring moves into the annular groove 50 and expands therein. The annular step 54 would prevent the flange member 40 from sliding back away from the powder bag mouth 12 past the locking ring as the locking ring would engage the should 54 preventing the flange member from sliding further away from the mouth. In this regard, after the bag is filled, the flange member with the attached membrane is slid and locked into place over the mouth 42. In another example embodiment, the locking ring is formed extending from the flange member and the annular groove in the mouth 12.
[0044] In yet another example embodiment, the membrane member 32 is formed with axial projections 60, as for example shown in
[0045] In the example embodiment as shown in
[0046] In yet another example embodiment as shown in
[0047] A depression 96 is formed radially in the flange to receive the projection 88 of the membrane as the projection 84 of the flange is received within the peripheral radial depression 82 of the membrane. In this regard, the membrane is placed within the flange such that the projection 84 of the flange is received within the peripheral radial depression 82 for retaining the membrane in place. In an example embodiment as shown in
[0048] To move the membrane 32 to the flange 30, the membrane is flexed and the membrane depression 82 is aligned with the flange projection 84. When the membrane is allowed to unflex, the flange projection 84 is received in the membrane peripheral radical depression 82 mounting the membrane 32 to the flange 30. Once the membrane is in place, the bag which is sealed by membrane containing the powder, may be mounted on a rehydration system.
[0049] For the embodiments incorporating the membrane, a connector 100 may be used to connect the bag to a rehydration system. The connector 100 includes a cutting member for cutting the membrane once the powder bag is coupled to the rehydration system and it is ready for use so that the powder can enter the rehydration system from the powder bag. The connector is typically a tubular member, as for example shown in
[0050] In an example embodiment, a cutting member 110 such as a cylindrical cutting member is slideably fitted within a cylindrical body 111 of connector 100. In the example embodiment, the cutting member includes a circumferential wall 112 from which extends a blade 114 (
[0051] As can be seen in the example embodiment shown in
[0052] In another example embodiment, the highest portion of the blade may be at 118 and at 120, and the lowest portion may be at a different location, as for example at a location 130, opposite ends 118 and 120, or the highest points may be at 118 and 120, and the lowest points at 130. In other example embodiments, two or more spaced apart arcuate blades are formed which would cut spaced apart portions of the member.
[0053] To facilitate the sliding of the cutting member relative to the connector body 111, tabs 132 extend from the cutting member through the connector 100 and can be slid upwards for sliding the cutting member upwards. The tabs are connected to the cutting member 110, and in the example embodiment shown in
[0054] A single member or multiple members 132 may be connected to the cutting member. In the shown example embodiment, two opposite members 132 are connected to the cutting member.
[0055] In an example embodiment, as shown in
[0056] To facilitate mixing in a rehydration system, a mixer is provided, as shown in
[0057] A powder bag containing the powder, such as a bag containing the powder sealed as discussed with any of the aforementioned embodiments is mounted onto to the connector flange 102 and is in-line with a funnel portion 154 of the mixer. As the powder from the fluid bag flows into the tubular body, a hydrating liquid flows along the flow path 156 carries the powder through the static mixer 152 within the tubular body portion 155 to mix the powder with the liquid, such as water, to hydrate the powder. With this example embodiment, a pump is placed downstream of the powder so as to draw the liquid and the powder through the mixing element 152 within the tubular body portion 155. However, in another example embodiment, the pump may be placed upstream of the powder so as to push the liquid through the tubular body portion along flow path 156.
[0058] In yet another example embodiment, as shown in
[0059] A powder bag containing the powder, such as a bag containing the powder sealed as discussed with any of the aforementioned embodiments is mounted onto to the connector flange 102. The first tubular body portion receives fluid flow from an inlet 165 along a fluid flow path 161. A restrictor 168 is defined within the fluid flow path of the tubular body. The restrictor may be integrally formed within the first tubular member or may be a separate member within the first tubular member. In the shown example embodiment, the restrictor is a venturi. The restrictor causes an acceleration of the fluid flow and an increase in the flow pressure. In another example embodiment, the restrictor is variable, e.g., the cross-sectional area of the restrictor may be varied, such that the flow rate through the restrictor may be changed. The restrictor also controls the powder flow rate. Less restriction leads to greater fluid flow and decreases powder flow rates, while more restriction leads to less fluid flow and increases powder flow rates. The port 170 extends from the tubular portion downstream of the restrictor 168. With this example embodiment, a pump is placed downstream of the powder so as to draw the liquid and the powder through the mixing element 164 within the tubular body portion 162. However, in another example embodiment, the pump may be placed upstream of the powder so as to push the liquid through the tubular body portion along flow path 167 along a longitudinal axis 169 of the tubular body.
[0060] As the powder from the powder bag is released, it flows through the port 170 as liquid such as hydration liquid is drawn through the inlet 165 and is accelerated and through the restrictor and mixed with the powder which then gets mixed by the static mixer 164. The accelerated fluid flow and the increase in pressure caused by the restrictor further aid in the mixing and the hydration of the powder with the liquid. To aid in the flow of powder, the port is angled. In one example embodiment, the port longitudinal axis 171 is at an angle at an angle 172 of about 45 degrees relative to the tubular body longitudinal axis 169. By the port longitudinal axis being at an angle, the port provides for enhanced powder flow while mitigating the possibility of fluid getting into the powder delivery channel.
[0061] Any of the mixers, as for example the mixer shown in
[0062] In another example embodiment, the pump may be upstream of the powder introduction point. The hydrated powder flows into biocontainer 184. In another example embodiment, as for example shown in
[0063] It should be understood that the bags in other example embodiments may store other materials besides powder materials.
[0064] It should be noted that the terms “upper”, “lower”, “above”, and “below” are used herein for illustrative purposes to illustrate relative portions. For example, a lower surface of an object may be higher from an upper surface of the object when the object is turned upside down.
[0065] While the invention has been described with respect to a limited number of embodiments, those skilled in the art, having benefit of this disclosure, will appreciate that other embodiments can be devised which do not depart form the scope of the invention as disclosed herein. The invention is also defined in the following claims.