DEVICES AND METHODS FOR DELIVERING A BENEFICIAL AGENT TO A USER
20230285667 · 2023-09-14
Assignee
Inventors
- Ted HANAGAN (Libertyville, IL, US)
- Wayne KLINGLER (Lindenhurst, IL, US)
- Thomas Paul GRAZIER (Spring Grove, IL, US)
- Gurjinder DHAMI (Neenah, WI, US)
- Scott Smieja (Oshkosh, WI, US)
- Jeff SCHACHERL (Neenah, WI, US)
- Sean MACKEY (Grayslake, IL, US)
- Megan FEILEN (Franklin, WI, US)
- Ji Zhou (Lake Villa, IL, US)
- Rajkumar Conjeevaram (Lake Bluff, IL, US)
- Martin GIBLER (West Chester, OH, US)
Cpc classification
A61M5/14228
HUMAN NECESSITIES
International classification
A61M5/168
HUMAN NECESSITIES
A61M5/162
HUMAN NECESSITIES
Abstract
Drug delivery reservoir for delivery of a beneficial agent to a user includes a drug delivery reservoir housing having a fluid reservoir defined therein. The drug delivery reservoir housing has a drug delivery reservoir base region. The drug delivery reservoir includes a dip tube extending inside the fluid reservoir. The dip tube includes a tubular wall defining a flow lumen. The tubular wall has at least one aperture defined therein and spaced proximally from a distal end of the tubular wall in fluid communication with the fluid reservoir. The drug delivery reservoir includes an adaptor disposed external to the drug delivery reservoir housing and coupled to a proximal end of the dip tube.
Claims
1. A drug delivery reservoir for delivery of a beneficial agent to a user, comprising: a drug delivery reservoir housing having a fluid reservoir defined therein, the drug delivery reservoir housing having a drug delivery reservoir base region; a dip tube extending inside the fluid reservoir, the dip tube including a tubular wall defining a flow lumen, the tubular wall having at least one aperture defined therein and spaced proximally from a distal end of the tubular wall in fluid communication with the fluid reservoir; and an adaptor disposed external to the drug delivery reservoir housing and coupled to a proximal end of the dip tube.
2. The drug delivery reservoir of claim 1, wherein the fluid reservoir is a flexible bag disposed within the housing.
3. The drug delivery reservoir of claim 1, wherein the dip tube is disposed diagonally across an interior region of the fluid reservoir.
4. The drug delivery reservoir of claim 1, wherein the dip tube is disposed along a perimeter of the fluid reservoir.
5. The drug delivery reservoir of claim 1, wherein the tubular wall has a plurality of apertures spaced apart along a length of the tubular wall.
6. The drug delivery reservoir of claim 5, wherein the apertures are spaced evenly from each other along a length of the tubular wall.
7. The drug delivery reservoir of claim 5, wherein one of the plurality of apertures nearest the outlet end is spaced from the outlet end a distance of at least 15% of the length of the tubular wall.
8. The drug delivery reservoir of claim 5, wherein one of the plurality of apertures nearest the outlet end is spaced from the outlet end a distance of about 20% of the length of the tubular wall.
9. The drug delivery reservoir of claim 5, wherein the plurality of apertures are configured to provide a generally uniform distribution of flow through the plurality of apertures along the length of the tubular member.
10. The drug delivery reservoir of claim 9, wherein the plurality of apertures vary in spacing between adjacent apertures along the length of the tubular wall.
11. The drug delivery reservoir of claim 10, wherein the plurality of apertures decrease in spacing toward the distal end of the tubular wall.
12. The drug delivery reservoir of claim 9, wherein the plurality of apertures vary in cross dimension along the length of the tubular wall.
13. The drug delivery reservoir of claim 12, wherein the plurality of apertures increase in cross dimension along the length of the tubular wall.
14. The drug delivery reservoir of claim 5, wherein a size of the plurality of apertures increases along the tubular wall from the outlet end toward the distal end.
15. The drug delivery reservoir of claim 5, wherein the plurality of apertures have a slotted shape.
16. The drug delivery reservoir of claim 5, wherein the plurality of apertures have a circular shape.
17. The drug delivery reservoir of claim 5, wherein at least two of the plurality of apertures are aligned axially along the length of the tubular wall and spaced circumferentially about the tubular wall.
18. The drug delivery reservoir of claim 5, wherein at least three of the plurality of apertures are aligned axially along the length of the tubular wall and spaced circumferentially about the tubular wall.
19. The drug delivery reservoir of claim 5, further comprising a fluid beneficial agent in the reservoir, the fluid beneficial agent having a volume and a concentration increasing from a region proximate the outlet end to a region proximate the distal end, wherein the dip tube is configured to deliver the volume of the fluid beneficial agent at a substantially uniform concentration.
20. The drug delivery reservoir of claim 1, further comprising a junction with a first dip tube section and a second dip tube section each extending from an outlet thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
DETAILED DESCRIPTION
[0043] Reference will now be made in detail to the exemplary embodiments of the disclosed subject matter, examples of which are illustrated in the accompanying drawings. The methods of the disclosed subject matter will be described in conjunction with the detailed description of the system. The devices and methods presented herein can be used for delivering a beneficial agent to a user.
[0044] The accompanying figures, where like reference numerals refer to identical or functionally similar elements throughout the separate views, serve to further illustrate various embodiments and to explain various principles and advantages all in accordance with the disclosed subject matter.
[0045] The apparatus and methods presented herein can be used for administering any of a variety of suitable therapeutic agents or substances, such as a drug or biologic agent, to a patient. For example, and as embodied herein, a drug delivery reservoir is provided for use with a pump or the like to deliver a beneficial agent to a user. The drug delivery reservoir includes a housing having a fluid reservoir defined therein. The housing can be in the form of a cassette or similar rigid body. The fluid reservoir containing a fluid substance can be joined to a delivery tube system. In operation, the pump can operate on the drug delivery reservoir to deliver the fluid substance through the tubing system. In this manner, the device is capable of administering a dosage of the fluid substance, such as a therapeutic agent, including a formulation in a liquid or gel form, through the delivery tube system and to a patient. In some embodiments, the fluid therapeutic agent can include one or more pharmaceutical or biologic agents.
[0046] In accordance with the disclosed subject matter, a drug delivery reservoir for delivery of a beneficial agent to a user is provided. The drug delivery reservoir generally includes a drug delivery reservoir housing having a fluid reservoir defined therein. The drug delivery reservoir housing includes a drug delivery reservoir base region. The drug delivery reservoir includes a dip tube extending inside the fluid reservoir. The dip tube includes a tubular wall defining a flow lumen. The tubular wall can include at least one aperture defined therein and spaced proximally from a distal end of the tubular wall in fluid communication with the fluid reservoir. The drug delivery reservoir further includes an adaptor coupled to a proximal end of the dip tube. The adaptor can be disposed external to the drug delivery reservoir housing.
[0047] For the purpose of explanation and illustration, and not limitation, an exemplary embodiment of the device in accordance with the disclosed subject matter is shown in
[0048] In accordance with the disclosed subject matter, the fluid reservoir 12 can be defined by the interior surface of the cassette housing 11. Alternatively, as depicted here, the fluid reservoir 12 can be defined by a separate member disposed inside the cassette housing 11. For example, the fluid reservoir 12, shown in the various embodiments of
[0049] The fluid reservoir 12 can be formed from a flexible material having low oxygen permeability. For purpose of illustration and not limitation, the fluid reservoir 12 can be made of EVA/EVOH/EVA, TOTM Plasticized PVC, combinations thereof, or other suitable materials, and as embodied herein, can be made of Renolit Solmed® Medipak UVO 9002. For purpose of illustration and not limitation, as embodied herein, the fluid reservoir 12 can have a thickness of about 12 mil. Additionally, for purpose of illustration and not limitation, the fluid reservoir 12 can be formed using an adhesive, by RF welding, or any other suitable technique.
[0050] As described herein, and in accordance with the disclosed subject matter, a dip tube 13 is disposed inside the fluid reservoir 12. The dip tube 13 includes a tubular wall 13a defining a flow lumen. The tubular wall 13a of the dip tube 13 disclosed herein can have at least one aperture 14 defined therein and be spaced proximally from a distal end of the tubular wall 13a. The aperture 14 is in fluid communication with the reservoir 12 to receive a beneficial agent contained within the reservoir 12. Furthermore, the inner surface of the fluid reservoir 12 can have a textured, ribbed or grooved configuration to further enhance fluid flow by preventing unintended occlusion of the apertures 14. For example, and as embodied herein, fluid reservoir 12 can include a plurality of horizontal grooves formed therein, as shown in
[0051] In accordance with an additional aspect of the disclosed subject matter, dip tube 13 can include a plurality of apertures 14, as shown for example in
[0052] Generally, the dip tube is configured to bridge or otherwise extend at least through the area expected to have the highest concentration of beneficial agent within the fluid reservoir. For purpose of illustration and not limitation, and as embodied herein, the dip tube 13 can be arranged in any of a number of suitable configurations within the fluid reservoir 12. For example, and as shown in
[0053] In accordance with yet another embodiment, as shown in
[0054] In operation, the perforated dip tube 13 of each embodiment according to the disclosed subject matter allows fluid to be drawn from the fluid reservoir 12 regardless of the orientation of the reservoir 12. For example, and with reference to
[0055] Referring now to
TABLE-US-00001 FIG. 5A Exemplary Dimensions (mm) w.sub.1, 1 58 w.sub.1, 2 7.165 w.sub.1, 3 1.6 w.sub.1, 4 80.2 h.sub.1, 1 74.2 h.sub.1, 2 1.5 h.sub.1, 3 4.78 h.sub.1, 4 9.9 h.sub.1, 5 12 FIG. 5B & 5E Exemplary Dimensions (mm) w.sub.2, 1 63.34 ± 1.60 w.sub.2, 2 5.6 ± 0.4 w.sub.2, 3 0.8 ± 0.4 w.sub.2, 4 74.6 h.sub.2, 1 70.6 h.sub.2, 2 1.5 h.sub.2, 3 4.8 h.sub.2, 4 11.9 h.sub.2, 5 14 FIG. 5C Exemplary Dimensions (mm) w.sub.3, 1 4.6 w.sub.3, 2 5.6 w.sub.3, 3 0.8 w.sub.3, 4 74.6 h.sub.3, 1 70.6 h.sub.3, 2 4.8 h.sub.3, 3 11.9
[0056] Furthermore, and as embodied herein, the dip tube 13 can have an inside diameter of 3 mm and an outside diameter of 4.6 mm. In some embodiments, the dip tube 13 can have a thickness of at least about 1.5 mm; in some embodiments, the dip tube 13 can have a thickness of at least about 1.6 mm. As shown for example in
[0057] The dip tube 13 can extend from the fluid reservoir 12 to serve as a delivery tube if desired or appropriate. Alternatively, and as embodied herein, an adaptor disposed external to the cassette housing 11 can be provided and coupled to a proximal end of the dip tube 13. In this manner, a separate delivery tube can be coupled to the adaptor for delivery of the beneficial agent from the fluid reservoir 12 to the user due to operation of the pump 30. Additionally, a peristaltic tube can be provided between or as a part of the dip tube 13 and/or the delivery tube for interaction with the pump 30.
[0058] For the purpose of illustration and not limitation, exemplary embodiments of such an adaptor are depicted in
[0059] A device having a fluid reservoir 12 and dip tube 13 as disclosed in
[0060] However, it has been determined that certain formulations of beneficial agent may result in non-uniform flow distribution through the apertures, such as when more viscous fluids are used (e.g., oils, gels or the like). As such, and in accordance with another aspect of the disclosed subject matter, dosing accuracy can be further enhanced by modifying the dip tube to increase uniformity of the amount of fluid uptake along the length of the dip tube. That is, in vacuum pump systems or the like, pressure can be lost between the vacuum supply point (e.g., in a peristaltic pump system, the interface between the pump fingers and the tube) and the fluid supply point, causing a change in pressure along the tubing of a vacuum pump system. Such a pressure loss is exacerbated with more viscous fluids, such as oils and gels, due to frictional and shear forces of the fluid through the relatively small tube. The change in pressure along the length of dip tube 13 can cause different amounts of fluid uptake along the length of dip tube 13 due to the plurality of apertures 14 along the length of dip tube 13. As such, and as disclosed herein, the plurality of apertures can be configured to provide a generally uniform distribution of flow through the plurality of apertures along the length of the tubular member. For example, apertures 14 disposed closer to the reservoir 12 outlet, where vacuum pressure is greatest, can be reduced in size, can be removed, and/or can be spaced further away from the outlet. In some embodiments, a number of apertures 14 spaced closer to the reservoir 12 outlet can be reduced. Additionally or alternatively, apertures 14 spaced further away from the reservoir 12 outlet can be increased in size. As a further alternative, the shape of some or all of the apertures 14 along the length of the tube can be modified, for example to have a slotted shape.
[0061] Additionally, the spacing between adjacent apertures can be varied along the length of the tubular wall. For purpose of illustration and not limitation, as embodied herein, the plurality of apertures decrease in spacing toward the distal end of the tubular wall. Alternatively, the plurality of apertures can increase in spacing toward the distal end of the tubular wall.
[0062] Furthermore, and as embodied herein, the plurality of apertures can vary in cross dimension along the length of the tubular wall. For purpose of illustration and not limitation, the size of apertures 14 can increase along the length of the dip tube 13 from the reservoir 12 outlet toward the end of the dip tube. As shown for example in
[0063] Table 1 illustrates an exemplary dip tube aperture configuration. For purpose of illustration, and not limitation, hole number or hole location refers to an axial distance from the outlet end 33 of the dip tube 13, with the distance increasing as the hole number or location number increases. As embodied herein and illustrated in the following Tables, unless otherwise specified, hole number or location number 1 corresponds to an axial distance 18.18 mm from the outlet end 33 of the dip tube 13, and each successive hole number represents a distance of about an additional 8 mm from the outlet end 33 of the dip tube 13. As such, a fractional hole number or location number represents a fraction of the 8 mm spacing.
TABLE-US-00002 TABLE 1 Exemplary Dip Tube Aperture Configuration New Concen- Sampled Hole Diameter tration % Concen- Number (mm) % flow remaining tration 1 0.55 11.9% 90% 10.7% 2 0.6 11.8% 90% 10.6% 3 0.65 10.9% 95% 10.3% 4 0.75 11.9% 99% 11.8% 5 0.85 10.3% 100% 10.3% 6 1 10.2% 100% 10.2% 7 1.2 11.0% 100% 11.0% 8 1.5 10.2% 100% 10.2% 9 1.9 5.1% 100% 5.1% 10 2 3.9% 100% 3.8% 11 2.25 2.0% 100% 2.0% .sup. 96% Total Concentration
[0064] Table 2 illustrates another exemplary dip tube aperture configuration. As shown, no apertures were formed in the first two hole locations (e.g., spaced about 18.18 mm and 26.18 mm from the outlet end 33). As such, the first aperture was formed in hole location 3, spaced about 34.18 mm from the outlet end 33, which is about 20% of the length of the dip tube 13. Apertures were formed at 9 axial locations along the dip tube 13 and have a uniform diameter. For purpose of comparison and confirmation of the disclosed subject matter, as illustrated in Table 3, flow uniformity is improved over dip tube configurations having constant diameter apertures, uniform spacing, and apertures formed closer to the outlet end 33 of the dip tube 13. In this configuration, the initial aperture can be located in a region of relatively low concentration gradient, which can provide more uniform concentration of beneficial agent delivered during the delivery process.
[0065] For purpose of comparison with and confirmation of the disclosed subject matter, a representative formulation having a high viscosity and varied concentration was produced for purpose of illustration. For example and without limitation, the representative formulation was formed with Boron Nitride (BN) and a highly viscous gel, as embodied herein at a ratio of 6.77% (w/w) of Boron Nitride to the gel. The composition of the representative formulation is shown in Table A.
TABLE-US-00003 TABLE A Representative Formulation Composition Percent Theoretical Actual Ingredient Lot # (Vendor) Weight Weight (g) Weight (g) Boron Nitride 3-5048-00-21 (ZYP 6.77 241.4 241.6 Powder Coatings) NaCMC 2000 2C1550NEFC 1.58 56.21 56.5 (Biogrund) NaCMC 700 212250NEFA 1.29 45.99 46.1 (Biogrund) DI Water N/A 90.37 3222.8 3221.4 Total 100 3566.4 3565.6
[0066] Sample fluid reservoirs, for example as illustrated in
TABLE-US-00004 TABLE B Centrifuge Operating Conditions Accel- Relative Radius Radius Frequency Speed Speed eration centrifugal (in) (m) (Hz) (RPM) (rad/s) (m/s{circumflex over ( )}2) force (G's) 36.5 0.93 2.04 122.4 12.82 152.32 15.53
[0067] The drug delivery reservoirs were mounted at a 3 foot radius to reduce or minimize differences in acceleration within the drug delivery reservoir. As a result, a varied concentration of the representative formulation throughout the reservoir was produced, as shown for example in
[0068] For purpose of comparison with and confirmation of the disclosed subject matter,
[0069] For purpose of comparison and confirmation of the disclosed subject matter,
TABLE-US-00005 TABLE 2 Exemplary Dip Tube Aperture Configuration and Flow Hole Hole % Hole Diam- Diam- Flow Re- Num- eter eter Rate % main- Concen- ber (mm) (in) (m{circumflex over ( )}3/s) Flow ing tration 1 0 0.0000 0.00E+00 0% 90% 0.0% 2 0 0.0000 0.00E+00 0% 90% 0.0% 3 2.15 0.0846 8.32E−09 75% 95% 71.2% 4 2.15 0.0846 2.09E−09 19% 95% 17.9% 5 2.15 0.0846 5.24E−10 5% 99% 4.7% 6 2.15 0.0846 1.31E−10 1% 100% 1.2% 7 2.15 0.0846 3.32E−11 0% 100% 0.3% 8 2.15 0.0846 8.22E−12 0% 100% 0.1% 9 2.15 0.0846 2.17E−12 0% 100% 0.0% 10 2.15 0.0846 5.61E−13 0% 100% 0.0% 11 2.15 0.0846 5.61E−13 0% 100% 0.0% Total Concen- tration
[0070] Table 3 illustrates another exemplary dip tube aperture configuration. Compared to the configuration of Table 1, an additional aperture is added toward the distal end of the dip tube 13, opposite the outlet end 33. For purpose of comparison and confirmation of the disclosed subject matter, using a known dip tube with constant aperture sizes and uniform spacing, about 95% of fluid flowed into the dip tube 13 from the first two hole locations during a flow period. The % flow indicates a percentage of fluid taken into the dip tube 13 through the aperture or apertures 14 formed at the corresponding hole location during the flow period. For purpose of comparison and confirmation of the disclosed subject matter, as illustrated in Table 2, flow uniformity is improved over dip tube configurations having constant diameter apertures and uniform spacing. As such, when used with a product having variable concentration, the increased flow uniformity can reduce variations in concentration by drawing fluid at different rates from different locations.
TABLE-US-00006 TABLE 3 Exemplary Dip Tube Aperture Configuration and Flow Concen- New New tration Sampled Hole Diameter Diameter % % Re- Concen- Number (mm) (in) flow maining tration 1 0.55 0.0217 11.9% 90% 10.7% 2 0.6 0.0236 11.8% 90% 10.6% 3 0.65 0.0256 10.9% 95% 10.3% 4 0.75 0.0295 11.9% 99% 11.8% 5 0.85 0.0335 10.3% 100% 10.3% 6 1 0.0394 10.2% 100% 10.2% 7 1.2 0.0472 11.0% 100% 11.0% 8 1.5 0.0591 10.2% 100% 10.2% 9 1.9 0.0748 5.1% 100% 5.1% 10 2 0.0787 3.8% 100% 3.8% 11 2.25 0.0886 2.0% 100% 2.0% 12 2.25 0.0886 0.9% 100% 0.9% 97.0% Total Concen- tration
[0071] Table 4 illustrates another exemplary dip tube aperture configuration. As shown, relatively smaller apertures were formed in the first 3 hole locations, and larger apertures were formed in 9 subsequent hole locations. For purpose of comparison and confirmation of the disclosed subject matter, as illustrated in Table 4, flow uniformity is improved for the representative formulation over dip tube configurations having constant diameter apertures and uniform spacing.
TABLE-US-00007 TABLE 4 Exemplary Dip Tube Aperture Configuration and Flow New New Flow Hole Diameter Diameter Rate Concentration Sampled Number (mm) (in) (m{circumflex over ( )}3/s) % Flow % Remaining Concentration 1 1 0.0394 4.26E−09 38% 90% 34.5% 2 1 0.0394 2.11E−09 19% 90% 17.1% 3 1 0.0394 9.67E−10 9% 95% 8.3% 4 2.15 0.0846 2.83E−09 25% 99% 25.2% 5 2.15 0.0846 7.09E−10 6% 100% 6.4% 6 2.15 0.0846 1.78E−10 2% 100% 1.6% 7 2.15 0.0846 4.45E−11 0% 100% 0.4% 8 2.15 0.0846 1.14E−111 0% 100% 10.1% 9 2.15 0.0846 2.87E−12 0% 100% 0.0% 10 2.15 0.0846 7.80E−13 0% 100% 0.0% 11 2.15 0.0846 9.89E−14 0% 100% 0.0% 12 2.15 0.0846 1.25E−14 0% 100% 0.0% 93.6% Total Concen- tration
[0072] Table 5-1 illustrates another exemplary dip tube aperture configuration. As shown, no aperture was formed in hole location 1, and a non-uniform aperture spacing is used. In hole positions 2.0, 2.9, 3.8 and 4.8, a single hole is formed in the dip tube at the corresponding axial distance. In the subsequent hole positions, two holes were formed in the dip tube at the corresponding axial distance, for example, by forming a through-hole. Table 5-2 and
TABLE-US-00008 TABLE 5-1 Exemplary Dip Tube Aperture Configuration and Flow Hole Axial Location Axial Hole Diameter Concentration Sampled Position Dimension (mm) mm inch % flow % Remaining Concentration 1.0 18.18 None 90% 0.0% 2.0 26.2 0.84 0.033 single hole 19% 90% 17.1% 2.9 33.6 0.84 0.033 single hole 12% 95% 11.8% 3.8 40.5 0.84 0.033 single hole 8% 99% 8.0% 4.8 48.8 1.25 0.049 single hole 20% 100% 20.1% 5.7 55.5 0.84 0.033 two holes 6% 100% 5.8% 6.7 63.9 1.25 0.049 two holes 13% 100% 12.9% 7.5 70.5 1.25 0.049 two holes 7% 100% 7.1% 8.5 79.1 2.03 0.080 two holes 11% 100% 10.5% 9.6 87.2 2.03 0.080 two holes 3% 100% 2.9% 10.5 94.4 2.03 0.080 two holes 0.9% 100% 0.9% 11.4 101.6 2.03 0.080 two holes 0.3% 100% 0.3% 97.4 Total Concen- tration
TABLE-US-00009 TABLE 5-2 Exemplary Dip Tube Aperture Configuration and Flow Hole Axial Location Axial Hole Diameter Flown Rate Position Dimension (mm) mm inch m{circumflex over ( )}3/s ml/hr % flow 1 18.18 None 2 26.2 (x.sub.2, 1) 0.84 (Ø.sub.2, 1) 0.033 single hole 2.22E−09 8.00E+00 20% 2.9 33.6 (x.sub.2, 2) 0.84 (Ø.sub.2, .sub.2) 0.033 single hole 1.48E−09 5.33E+00 13% 3.8 40.5 (x.sub.2, 3) 0.84 (Ø.sub.2, 3) 0.033 single hole 9.99E−10 3.60E+00 9% 4.8 48.4 (x.sub.2, 4) 0.84 (Ø.sub.2, .sub.4) 0.033 two holes 1.23E−09 4.42E+00 11% 5.6 55.1 (x.sub.2, 5) 0.84 (Ø.sub.2, .sub.5) 0.033 two holes 7.58E−10 2.73E+00 7% 6.7 63.5 (x.sub.2, 6) 1.25 (Ø.sub.2, 6) 0.049 two holes 1.64E−09 5.92E+00 15% 7.5 70.1 (x.sub.2, 7) 1.25 (Ø.sub.2, 7) 0.049 two holes 9.07E−10 3.26E+00 8% 8.6 78.7 (x.sub.2, 8) 2.03 (Ø.sub.2, 8) 0.08 two holes 1.34E−09 4.84E+00 12% 9.6 86.8 (x.sub.2, 9) 2.03 (Ø.sub.2, 9) 0.08 two holes 3.72E−10 1.34E+00 3% 10.5 94 (x.sub.2, 10) .sup. 2.03 (Ø.sub.2, 10) 0.08 two holes 1.14E−10 4.09E−01 1% 11.4 101.2 (x.sub.2, 11) .sup. 2.03 (Ø.sub.2, 11) 0.08 two holes 4.30E−11 1.55E−01 0% Total 168.69 (x.sub.2, 12) 4.00E+01 length
[0073] Table 6 illustrates the exemplary dip tube aperture configuration of
TABLE-US-00010 TABLE 6 Exemplary Dip Tube Aperture Configuration and Flow Hole Axial Location Axial Hole Diameter Concentration Sampled Position Dimension (mm) mm inch % flow % Remaining Concentration 1 18.18 None 90% 0.00% 2 26.2 (x.sub.1, 1) 0.51 (Ø.sub.1, 1) 0.02 four holes 13% 90% 11.30% 2.9 33.6 (x.sub.1, 2) 0.51 (Ø.sub.1, 2) 0.02 four holes 8% 95% 7.80% 3.8 40.5 (x.sub.1, 3) 0.84 (Ø.sub.1, 3) 0.033 two holes 19% 99% 18.40% 4.8 48.4 (x.sub.1, 4) 0.84 (Ø.sub.1, 4) 0.033 two holes 11% 100% 11.20% 5.6 55.1 (x.sub.1, 5) 0.84 (Ø.sub.1, 5) 0.033 three holes 10% 100% 10.10% 6.7 63.5 (x.sub.1, 6) 1.24 (Ø.sub.1, 6) 0.049 two holes 15% 100% 14.60% 7.5 70.1 (x.sub.1, 7) 1.24 (Ø.sub.1, 7) 0.049 two holes 8% 100% 8.10% 8.6 78.7 (x.sub.1, 8) 2.03 (Ø.sub.1, 8) 0.08 two holes 12% 100% 12.00% 9.6 86.8 (x.sub.1, 9) 2.03 (Ø.sub.1, 9) 0.08 two holes 3% 100% 3.30% 10.5 94 (x.sub.1, 10) .sup. 1.65 (Ø.sub.1, 10) 0.065 four holes 1% 100% 1.00% 11.4 101.2 (x.sub.1, 11) .sup. 1.65 (Ø.sub.1, 11) 0.065 four holes 0% 100% 0.40% Total 168.69 (x.sub.1, 12) 98.10% length
[0074] Table 7 and
TABLE-US-00011 TABLE 7 Exemplary Dip Tube Aperture Configuration and Flow (Slotted) Total Length - Length Flow Axial Area Area/0.01″ # of per slot Rate Concentration Sampled Location Dimension (mm) inch{circumflex over ( )}2 inch slots inch m{circumflex over ( )}3/s ml/hr % flow % Remaining Concentration 1 None 90% 0.00% 2 26.2 (x.sub.4, 1) 0.001 0.126 2 0.0628 (l.sub.4, 1) 1.39E−09 5.01E+00 13% 90% 11.30% 3 33.6 (x.sub.4, 2) 0.001 0.126 2 0.0628 (l.sub.4, 2) 1.10E−09 3.98E+00 10% 95% 9.50% 4 40.5 (x.sub.4, 3) 0.002 0.171 2 0.0855 (l.sub.4, 3) 1.26E−09 4.55E+00 11% 99% 11.30% 5 48.4 (x.sub.4, 4) 0.002 0.171 2 0.0855 (l.sub.4, 4) 9.09E−10 3.27E+00 8% 100% 8.20% 6 55.1 (x.sub.4, 5) 0.003 0.257 4 0.0641 (l.sub.4, 4) 9.09E−10 3.27E+00 8% 100% 8.20% 7 63.5 (x.sub.4, 6) 0.004 0.377a 4 0.0943 (l.sub.4, 5) 9.75E−10 3.51E+00 9% 100% 8.80% 8 70.1 (x.sub.4, 7) 0.004 0.377 4 0.0943 (l.sub.4, 6) 7.11E−10 2.56E+00 6% 100% 6.40% 9 78.7 (x.sub.4, 8) 0.01 1.005 6 0.1676 (l.sub.4, 7) 1.31E−09 4.72E+00 12% 100% 11.80% 10 86.8 (x.sub.4, 9) 0.01 1.005 6 0.1676 (l.sub.4, 8) 9.13E−10 3.29E+00 8% 100% 8.20% 11 94 (x.sub.4, 10) 0.013 1.327 8 0.1659 (l.sub.4, 4) 8.77E−10 3.16E+00 8% 100% 7.90% 12 101.2 (x.sub.4, 11) 0.013 1.327 8 .sup. 0.1659 (l.sub.4, 11) 7.29E−10 2.63E+00 7% 100% 6.60% 3.99E+01 98.10%
[0075] Table 8 and
TABLE-US-00012 TABLE 8 Exemplary Dip Tube Aperture Configuration and Flow Hole Axial Hole Diameter Flow Rate Concentration Sampled Dimension mm inch No: of holes m{circumflex over ( )}3/2 ml/hr % Remaining Concentration 26.2 (x.sub.3, 1) 0.86 0.0339 1 (θ.sub.3, 1) 2.04E−09 7.33E+00 90% 16.50% 31.2 (x.sub.3, 2) 0.86 0.0339 1 (θ.sub.3, 4) 1.53E−09 5.51E+00 95% 13.10% 40.5 (x.sub.3, 3) 0.86 0.0339 2 (θ.sub.3, 2, θ.sub.3, 6) 1.75E−09 6.29E+00 99% 15.60% 48.4 (x.sub.3, 4) 0.86 0.0339 2 (θ.sub.3, 1, θ.sub.3, 4) 1.05E−09 3.79E+00 100% 9.50% 55 (x.sub.3, 5) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 9.83E−10 3.54E+00 100% 8.80% 59 (x.sub.3, 6) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 7.34E−10 2.64E+00 100% 6.60% 62 (x.sub.3, 7) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 5.84E−10 2.10E+00 100% 5.30% 65 (x.sub.3, 8) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 4.61E−10 1.66E+00 100% 4.10% 68 (x.sub.3, 9) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 3.62E−10 1.30E+00 100% 3.30% 70 (x.sub.3, 10) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 3.07E−10 1.11E+00 100% 2.80% 73 (x.sub.3, 11) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 2.40E−10 8.64E−01 100% 2.20% 76 (x.sub.3, 12) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 1.86E−10 6.68E−01 100% 1.70% 78 (x.sub.3, 13) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 1.55E−10 5.56E−01 100% 1.40% 80 (x.sub.3, 14) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 1.29E−10 4.64E−01 100% 1.20% 82 (x.sub.3, 15) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 1.08E−10 3.88E−01 100% 1.00% 84 (x.sub.3, 16) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 9.01E−11 3.24E−01 100% 0.80% 86 (x.sub.3, 17) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 7.57E−11 2.72E−01 100% 0.70% 88 (x.sub.3, 18) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 6.37E−11 2.29E−01 100% 0.60% 90 (x.sub.3, 19) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 5.40E−11 1.94E−01 100% 0.50% 92 (x.sub.3, 20) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 4.64E−11 1.67E−01 100% 0.40% 94 (x.sub.3, 21) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 4.02E−11 1.45E−01 100% 0.40% 96 (x.sub.3, 22) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 3.56E−11 1.28E−01 100% 0.30% 98 (x.sub.3, 23) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 3.23E−11 1.16E−01 100% 0.30% 100 (x.sub.3, 24) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 3.01E−11 1.08E−01 100% 0.30% 102 (x.sub.3, 25) 0.86 0.0339 3 (θ.sub.3, 1, θ.sub.3, 3, θ.sub.3, 5) 2.90E−11 1.04E−01 100% 0.30% 4.00E+01 97.30%
[0076] As such, and as demonstrated above, the plurality of apertures can be configured to provide a generally uniform distribution of flow through the plurality of apertures along the length of the tubular member. For purpose of illustration and not limitation, and as embodied herein, the plurality of apertures can vary in spacing between adjacent apertures along the length of the tubular wall. For example, and as embodied herein, the plurality of apertures can decrease in spacing toward the distal end of the tubular wall. Additionally, in combination with any or all of the above configurations, or alternatively, the plurality of apertures can vary in cross dimension along the length of the tubular wall. For example, and as embodied herein, the plurality of apertures can increase in cross dimension along the length of the tubular wall. Furthermore, in combination with any or all of the above configurations, or as a further alternative, the plurality of apertures can have one or more shapes, for example and without limitation, a slotted shape, a circular shape, and/or any other suitable shape. In addition, in combination with any or all of the above configurations, or as another alternative, one of the plurality of apertures nearest the outlet end can be spaced from the outlet end a distance of at least 15% of the length of the tubular wall, and as embodied herein, the one of the plurality of apertures nearest the outlet end can be spaced from the outlet a distance of about 20% of the length of the tubular wall. Moreover, in combination with any or all of the above configurations, or as another alternative, at least two of the plurality of apertures can be aligned axially along the length of the tubular wall and spaced circumferentially about the tubular wall. As described herein, in accordance with the disclosed subject matter, a fluid beneficial agent in the reservoir can have a volume and a concentration increasing from a region proximate the outlet end to a region proximate the distal end, and as embodied herein, the dip tube can be configured to deliver the volume of the fluid beneficial agent at a substantially uniform concentration.
[0077] Furthermore, and as embodied herein, flow accuracy of the peristaltic pump can be improved by controlling the tension of the peristaltic tube 23. As embodied herein, the tube tension fit can be achieved by controlling the length and diameter of the peristaltic tube 23 to achieve a desired tension. That is, reducing the length of the peristaltic tube 23 increases tension and reduces the overall flow rate. Increasing the length of the peristaltic tube 23 reduces tension and can cause buckling in the peristaltic tube 23 and create issues with installation and repeatability.
[0078]
[0079] For example, and as embodied herein, peristaltic tube 23 can be stretched at least about 0.782 mm (0.031 in). The specific length can be held in place by the cassette housing 11, along with elbow fitting 16 and junction fitting 24. Controlling the tension of the peristaltic tube 23 can allow for increased pump flow accuracy and repeatability.
[0080]
TABLE-US-00013 FIG. 18 Exemplary Dimensions (mm) w.sub.4, 1 2.378 w.sub.4, 2 4.051 w.sub.4, 3 5.692 w.sub.4, 4 4.241 w.sub.4, 5 1.944 w.sub.4, 6 3.556 ± 0.051 w.sub.4, 7 5.56 w.sub.4, 8 3.378 ± 0.051 w.sub.4, 9 8.94 w.sub.4, 10 7.2 w.sub.4, 11 6.85 w.sub.4, 12 4.775 ± 0.051 w.sub.4, 13 3.378 h.sub.4, 1 5.082 h.sub.4, 2 2.542 h.sub.4, 3 3.75 h.sub.4, 4 4.2 h.sub.4, 5 9.855 h.sub.4, 6 7.950 ± 0.051 h.sub.4, 7 3 h.sub.4, 8 0.787 ± 0.051 h.sub.4, 9 0.508 h.sub.4, 10 4.5 FIG. 18 Exemplary Dimensions (deg) θ.sub.4, 1 13.1° θ.sub.4, 2 74° θ.sub.4, 3 1.0° θ.sub.4, 4 9.6° θ.sub.4, 5 45.000°
[0081] If formed separately, the fluid reservoir 12 can be installed into the cassette housing 11. For example, and as embodied herein, the cassette housing 11 can be configured with two enclosure clamshell portions 17 and 18 (as shown for example in
[0082] As previously noted, the cassette 10 disclosed herein can be used with a variety of pumps or similar fluid delivery devices. For purpose of illustration and not limitation, reference is made to the pump 30 of
[0083] The pump housing 31 can have a receiving region 32 (for example as shown in
[0084] As shown in
[0085] Each of the components described herein can be made of any suitable material (e.g., plastic, composites, metal, etc.) and technique for its intended purpose. In addition to the specific embodiments claimed below, the disclosed subject matter is also directed to other embodiments having any other possible combination of the dependent features claimed below and those disclosed above. As such, the particular features disclosed herein can be combined with each other in other manners within the scope of the disclosed subject matter such that the disclosed subject matter should be recognized as also specifically directed to other embodiments having any other possible combinations. Thus, the foregoing description of specific embodiments of the disclosed subject matter has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosed subject matter to those embodiments disclosed.
[0086] It will be apparent to those skilled in the art that various modifications and variations can be made in the method and system of the disclosed subject matter without departing from the spirit or scope of the disclosed subject matter. Thus, it is intended that the disclosed subject matter include modifications and variations that are within the scope of the appended claims and their equivalents.