Spray inserts
09999895 ยท 2018-06-19
Assignee
Inventors
Cpc classification
B65D83/28
PERFORMING OPERATIONS; TRANSPORTING
B65D83/206
PERFORMING OPERATIONS; TRANSPORTING
B05B1/3436
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B1/34
PERFORMING OPERATIONS; TRANSPORTING
Abstract
According to a first aspect, a spray insert includes a sidewall and a first vane extending from the sidewall. The spray insert also includes an endwall including a discharge outlet. The spray insert further includes a first boss including a tip and a side to direct a fluid product toward a swirl chamber. The boss is disposed on the endwall and extends from the vane. The side has a point of inflection.
Claims
1. A spray insert for use with an aerosol container, the spray insert comprising: a sidewall; an endwall including a discharge outlet extending through a planar interior surface thereof; a first baffle disposed on the sidewall; a second baffle disposed on the sidewall, the second baffle spaced apart from the first baffle to define a first longitudinal channel to direct a fluid product into a lateral channel; and a first boss disposed on the planar interior surface of the endwall and extending from the first baffle to define a portion of the lateral channel, the first boss having a tip spaced apart from the discharge outlet, wherein the first boss includes an airfoil-shaped portion to direct the fluid product in the lateral channel into a swirl chamber.
2. The spray insert of claim 1, wherein the first boss includes a base portion extending from the first baffle to the airfoil-shaped portion, wherein the base portion and the airfoil-shaped portion form a point of inflection.
3. The spray insert of claim 1, wherein the tip of the first boss is rounded.
4. The spray insert of claim 1, wherein a span of the lateral channel decreases from the sidewall toward the swirl chamber.
5. The spray insert of claim 1, wherein the airfoil-shaped portion is to direct the fluid product to rotate about a longitudinal axis of the spray insert when the fluid product is upstream of the swirl chamber.
6. The spray insert of claim 1, wherein the airfoil-shaped portion has a first side portion and a second side portion, the first side portion curved about a first axis of curvature, the second side portion curved about a second axis of curvature offset from the first axis of curvature in two perpendicular directions.
7. A spray insert, comprising: a sidewall; an endwall including a discharge outlet; a first baffle disposed on the sidewall; and a first boss disposed on the endwall to direct fluid product into a swirl chamber, the first boss extending from the first baffle, the first boss including a rounded tip, a first side portion, and a second side portion opposite the first side portion, wherein the first side portion has a first radius of curvature and a first arc length, and the second side portion has a second radius of curvature and a second arc length, and wherein the first radius of curvature is greater than the second radius of curvature, and the first arc length is longer than the second arc length.
8. The spray insert of claim 7, wherein the first side portion is to direct the fluid product into the swirl chamber, the first side portion forming a first point of inflection with a third side portion of the first boss.
9. The spray insert of claim 8, wherein the third side portion extends from the first baffle to the first side portion.
10. The spray insert of claim 8, wherein the second side portion forms a second point of inflection with a fourth side portion of the first boss.
11. The spray insert of claim 9, wherein the fourth side portion extends from the first baffle to the second side portion.
12. The spray insert of claim 7, further comprising a second baffle disposed on the sidewall, the second baffle spaced apart from the first baffle to define a first longitudinal channel.
13. The spray insert of claim 12, wherein the first longitudinal channel extends substantially parallel to a longitudinal axis of the spray insert to direct the fluid product into an oblique channel defined by the first boss and a second boss disposed on the endwall.
14. The spray insert of claim 7, wherein the tip is spaced apart from the discharge outlet.
15. The spray insert of claim 7, wherein the spray insert is to discharge a sheet of the fluid product that includes an air core via the discharge outlet.
16. A spray insert for use with an aerosol container, the spray insert comprising: a sidewall; a first vane extending from the sidewall; an endwall including a discharge outlet; and a first boss including a tip, a first side to direct a fluid product toward a swirl chamber, and a second side opposite the first side, the boss disposed on the endwall and extending from the vane, wherein at least one of the first side and the second side has a point of inflection, and wherein the first side and second side are curved and extend to the tip.
17. The spray insert of claim 16, further comprising: a second vane extending from the sidewall and spaced apart from the first vane to define a longitudinal channel; and a second boss disposed on the endwall, extending from the second vane, and spaced apart from the first boss to define an oblique channel.
18. The spray insert of claim 17, wherein the oblique channel decreases in width from the sidewall toward the swirl chamber.
19. The spray insert of claim 16, wherein the spray insert is to discharge a substantially conical sheet of the fluid product via the discharge outlet.
20. The spray insert of claim 16, wherein the tip of the boss is rounded.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
DETAILED DESCRIPTION
(20) With reference to
(21)
(22)
(23)
(24) Turning to
(25)
(26) The sheet 504 of
(27) The sheet 504 of the fluid spray 502 of
(28)
(29) The above-noted tests were performed with the aerosol canister in a first state, a second state, and a third state. In the first state, the aerosol canister is filled with the fluid product 102. In the second state, the aerosol canister is about half filled with the fluid product 102. In the third state, the aerosol canister is about one quarter filled with the fluid product 102. The above noted tests were also conducted using the discharge outlet 510 with a diameter of 0.020 inches, 0.021 inches, and 0.022 inches. Tables 1-6 below detail the results of these tests.
(30) TABLE-US-00001 TABLE 1 0.020 Discharge Outlet -- Test sample A Weight OD ID Included Included (formula, cap, Spray Spray Angle (OD) Angle (ID), aerosol can) (in) (in) .sub.2 .sub.1 Full Can 360.9 g 6.5 3 44.2 21.2 6.5 3.5 44.2 24.7 Average 6.7 3.3 45.2 23.5 full 270.3 g 6 3.5 41.1 24.7 6.5 4 44.2 28.1 6.5 4 44.2 28.1 Average 6.3 3.8 43.2 26.9 full 181.2 g 5.5 3.5 37.9 24.7 5.5 3.5 37.9 24.7 5.5 3.5 37.9 24.7 Average 5.5 3.5 37.9 24.7
(31) TABLE-US-00002 TABLE 2 0.020 Discharge Outlet -- Test sample B Weight OD ID Included Included Full (formula, cap, Spray Spray Angle (OD) Angle (ID), Can aerosol can) (in) (in) .sub.2 .sub.1 Full Can 360.9 g 6 3 41.1 21.2 7 4 47.3 28.1 6.5 4.5 44.2 31.4 Average 6.5 3.8 44.2 26.9 full 271.2 g 6.5 4 44.2 28.1 6.5 4 44.2 28.1 6.5 4 44.2 28.1 Average 6.5 4.0 44.2 28.1 full 180.8 g 5.5 4 37.9 28.1 6 4 41.1 28.1 5.8 4.0 39.5 28.1 Average 5.8 4.0 39.5 28.1
(32) TABLE-US-00003 TABLE 3 0.021 Discharge Outlet -- Test sample A Weight OD ID Included Included (formula, cap, Spray Spray Angle (OD) Angle (ID), aerosol can) (in) (in) .sub.2 .sub.1 Full Can 363.7 g 7 4.5 47.3 31.4 7 4.5 47.3 31.4 7 4.5 47.3 31.4 Average 7.0 4.5 47.3 31.4 full 265 g 6.5 4 44.2 28.1 7 4.5 47.3 31.4 7 4.5 47.3 31.4 Average 6.8 4.3 46.2 30.3 full 180.4 g 6 4 41.1 28.1 6 4 41.1 28.1 6 4 41.1 28.1 Average 6.0 4.0 41.1 28.1
(33) TABLE-US-00004 TABLE 4 0.021 Discharge Outlet -- Test sample B Weight OD ID Included Included (formula, cap, Spray Spray Angle (OD) Angle (ID), aerosol can) (in) (in) .sub.2 .sub.1 Full Can 363.4 g 7 4 47.3 28.1 7 4 47.3 28.1 7 4 47.3 28.1 Average 7.0 4.0 47.3 28.1 full 271.7 g 6 4.5 41.1 31.4 6.5 4.5 44.2 31.4 6.5 4.5 44.2 31.4 Average 6.3 4.5 43.2 31.4 full 181 g 6 4 41.1 28.1 5.5 4 37.9 28.1 6.0 4.0 41.1 28.1 Average 5.8 4.0 40.1 28.1
(34) TABLE-US-00005 TABLE 5 0.022 Discharge Outlet -- Test sample A Weight OD ID Included Included (formula, cap, Spray Spray Angle (OD) Angle (ID), aerosol can) (in) (in) .sub.2 .sub.1 Full Can 362.5 g 7.5 5 50.2 34.7 7.5 5 50.2 34.7 7.5 5 50.2 34.7 Average 7.5 5.0 50.2 34.7 full 270 g 7 4.5 47.3 31.4 7 5 47.3 34.7 7 5 47.3 34.7 Average 7.0 4.8 47.3 33.6 full 180 g 7 5 47.3 34.7 7 5 47.3 34.7 7 5 47.3 34.7 Average 7.0 5.0 47.3 34.7
(35) TABLE-US-00006 TABLE 6 0.022 Discharge Outlet -- Test sample B Weight OD ID Included Included (formula, cap, Spray Spray Angle (OD) Angle (ID), aerosol can) (in) (in) .sub.2 .sub.1 Full Can 363.7 g 7 4.5 47.3 31.4 7.5 5 50.2 34.7 7.5 5 50.2 34.7 Average 7.3 4.8 49.2 33.6 full 270 g 7 5.5 47.3 37.9 7 5 47.3 34.7 7 5 47.3 34.7 Average 7.0 5.2 47.3 35.8 full 180 g 6.5 4.5 44.2 31.4 6.5 4.5 44.2 31.4 6.5 4.5 44.2 31.4 Average 6.5 4.5 44.2 31.4
(36) Additional spray tests were also conducted to determine amounts of the fluid product 102 discharged onto the surface 104. The spray tests were conducted by providing an aerosol system having the spray insert 500 operatively coupled to an aerosol canister holding the fluid product 102. The spray aerosol canister was weighed via a scale. A foil sheet was cut to size based on an estimated spray pattern size on the surface. The foil sheet was then weighed, and a first weight of the foil sheet was tared out of the scale (e.g., the scale was zeroed). The foil sheet was then disposed on the surface 104. The aerosol canister was then shaken for three seconds and positioned relative to the surface 104 as shown in
(37) The above-noted tests were performed with the aerosol canister in the first state, the second state, and the third state. As described above, in the first state, the aerosol canister is filled with the fluid product 102. In the second state, the aerosol canister is about half filled with the fluid product 102. In the third state, the aerosol canister is about one quarter filled with the fluid product 102. The above noted tests were also conducted using the discharge outlet 510 with a diameter of 0.020 inches, 0.021 inches, and 0.022 inches. Further, the tests were performed when the spray insert 500 was positioned at distances of about one inch, about six inches, about eight inches, and about nine inches from the surface 104. The tests at the distance of about eight inches from the surface 104 were performed using two substantially similar or identical aerosol systems, which are indicated in the following tables as sample A and sample B, respectively. Tables 7-18 detail the results of these tests.
(38) TABLE-US-00007 TABLE 7 Full Can (130-135 psi) - Spray Insert 1 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 369.16 367.72 1.4 1.44 97 98 .020 367.72 365.6 2.08 2.12 98 .020 365.6 363.53 2.01 2.07 97 A .021 365.77 363.45 2.25 2.32 97 97 .021 360.46 358.43 1.95 2.03 96 .021 358.43 356.08 2.3 2.35 98 A .022 367.77 365.16 2.56 2.61 98 98 .022 362.57 359.69 2.81 2.88 98 .022 359.69 356.81 2.81 2.88 98
(39) TABLE-US-00008 TABLE 8 Full Can (130-135 psi) - Spray Insert 6 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 370.8 367.49 3.1 3.31 94 93 .020 367.49 364.9 2.39 2.59 92 .020 364.9 362.5 2.26 2.4 94 A .021 372.53 369.81 2.54 2.72 93 92 .021 369.81 367.49 2.09 2.32 90 .021 367.49 364.93 2.37 2.56 93 A .022 366.55 363.68 2.65 2.87 92 93 .022 363.68 360.32 3.15 3.36 94 .022 360.32 357.76 2.39 2.56 93
(40) TABLE-US-00009 TABLE 9 Full Can (130-135 psi) - Spray Insert 8 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 352.3 349.7 2.51 2.6 97 92 .020 349.7 347.04 2.38 2.66 89 .020 347.04 343.9 2.87 3.14 91 B .020 343.9 340.5 3.18 3.4 94 .020 340.5 337.54 2.68 2.96 91 .020 337.54 333.98 3.22 3.56 90 A .021 353.66 350.37 3.02 3.29 92 90 .021 350.37 346.95 3.13 3.42 92 .021 346.95 343.25 3.32 3.7 90 B .021 343.25 339.18 3.7 4.07 91 .021 339.18 335.61 3.16 3.57 89 .021 335.61 331.99 3.26 3.62 90 A .022 353.3 348.94 3.93 4.36 90 90 .022 348.94 344.71 3.84 4.23 91 .022 344.71 340.43 3.78 4.28 88 B .022 340.43 336.48 3.61 3.95 91 .022 336.48 332.11 3.87 4.37 89 .022 332.11 328.01 3.71 4.1 90
(41) TABLE-US-00010 TABLE 10 Full Can (130-135 psi) - Spray Insert 9 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 369.08 366.19 2.58 2.89 89 89 .020 366.19 363.13 2.69 3.06 88 .020 363.13 359.95 2.85 3.18 90 A .021 361.24 357.75 2.97 3.49 85 87 .021 357.75 354.28 3.06 3.47 88 .021 354.28 351.13 2.75 3.15 87 A .022 367.29 363.84 3.1 3.45 90 87 .022 363.84 360.78 2.63 3.06 86 .022 360.78 357.62 2.7 3.16 85
(42) TABLE-US-00011 TABLE 11 Half full Can (60-70 psi) - Spray Insert 1 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 237.31 235.52 1.77 1.79 99 98 .020 235.52 233.11 2.36 2.41 98 .020 233.11 230.99 2.11 2.12 100 A .021 237.2 235.49 1.69 1.71 99 98 .021 235.49 233.74 1.73 1.75 99 .021 233.74 232.22 1.48 1.52 97 A .022 236.6 235.28 1.28 1.32 97 98 .022 235.28 233.54 1.73 1.74 99 .022 233.54 231.49 1.99 2.05 97
(43) TABLE-US-00012 TABLE 12 Half full Can (60-70 psi) - Spray Insert 6 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 230.98 228.92 1.97 2.06 96 96 .020 228.92 226.68 2.16 2.24 96 .020 226.68 224.37 2.2 2.31 95 A .021 229.04 226.96 2 2.08 96 96 .021 226.66 224.46 2.12 2.2 96 .021 224.46 222.37 2.01 2.09 96 A .022 231.48 228.97 2.43 2.51 97 97 .022 228.97 226.91 1.98 2.06 96 .022 226.91 224.76 2.08 2.15 97
(44) TABLE-US-00013 TABLE 13 Half Full Can (60-70 psi) - Spray Insert 8 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 238.91 235.97 2.73 2.94 93 94 .020 235.97 232.76 3.02 3.21 94 .020 232.76 229.76 2.81 3 94 B .020 229.76 226.52 3.05 3.24 94 .020 226.52 223.08 3.26 3.44 95 .020 223.08 219.86 2.97 3.22 92 A .021 239.37 236.33 2.84 3.04 93 94 .021 236.33 233.1 3.01 3.23 93 .021 233.1 229.81 3.1 3.29 94 B .021 229.81 226.78 2.85 3.03 94 .021 226.78 223.52 3.12 3.26 96 .021 223.52 219.71 3.56 3.81 93 A .022 236.58 232.95 3.44 3.63 95 94 .022 232.95 229.51 3.28 3.44 95 .022 229.51 226 3.31 3.51 94 B .022 226 222.47 3.28 3.53 93 .022 222.47 218.82 3.45 3.65 95 .022 218.82 215.37 3.26 3.45 94
(45) TABLE-US-00014 TABLE 14 Half full Can (60-70 psi) - Spray Insert 9 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 230.11 227.26 2.64 2.85 93 93 .020 227.26 224.59 2.49 2.67 93 .020 224.59 222.34 2.1 2.25 93 A .021 227.86 224.7 2.84 3.16 90 92 .021 224.37 221.62 2.53 2.75 92 .021 221.62 218.91 2.55 2.71 94 A .022 235.84 233.21 2.43 2.63 92 92 .022 233.21 230.52 2.5 2.69 93 .022 230.52 227.5 2.77 3.02 92
(46) TABLE-US-00015 TABLE 15 Quarter full Can (50-60 psi) - Spray Insert 1 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 171.29 169.6 1.67 1.69 99 98 .020 169.6 168.11 1.46 1.49 98 .020 168.11 166.57 1.52 1.54 99 A .021 173.7 172.16 1.49 1.54 97 98 .021 172.16 170.6 1.56 1.56 100 .021 170.6 168.96 1.61 1.64 98 A .022 172.5 170.78 1.67 1.72 97 98 .022 170.78 169.28 1.49 1.5 99 .022 169.28 167.15 2.09 2.13 98
(47) TABLE-US-00016 TABLE 16 Quarter full Can (50-60 psi) - Spray Insert 6 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 181.2 179.24 1.91 1.96 97 96 .020 179.24 177.45 1.69 1.79 94 .020 177.45 175.96 1.45 1.49 97 A .021 180.71 179.17 1.45 1.54 94 96 .021 179.17 177.64 1.48 1.53 97 .021 177.1 175.42 1.63 1.68 97 A .022 181.99 180.15 1.79 1.84 97 98 .022 180.15 178.42 1.69 1.73 98 .022 178.42 176.76 1.62 1.66 98
(48) TABLE-US-00017 TABLE 17 Quarter Full Can (50-60 psi) - Spray Insert 8 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 176.9 174.07 2.73 2.83 96 95 .020 174.07 171.17 2.8 2.9 97 .020 171.17 167.8 3.19 3.37 95 B .020 167.8 165.19 2.51 2.61 96 .020 165.19 162.29 2.72 2.9 94 .020 162.29 159.57 2.58 2.72 95 A .021 179.44 176.83 2.49 2.61 95 96 .021 176.83 173.8 2.89 3.03 95 .021 173.8 170.82 2.85 2.98 96 B .021 170.82 168.1 2.63 2.72 97 .021 168.1 164.56 3.34 3.54 94 .021 161.15 158.15 2.87 3 96 A .022 179.68 176.95 2.62 2.73 96 94 .022 176.95 174.12 2.67 2.83 94 .022 174.12 170.95 2.95 3.17 93 B .022 170.95 167.81 2.87 3.14 91 .022 167.81 164.21 3.4 3.6 94 .022 164.21 161.25 2.83 2.96 96
(49) TABLE-US-00018 TABLE 18 Quarter full Can (50-60 psi) - Spray Insert 9 from Surface Can Wt after 3 Can Percentage Discharge Initial Second Product Delta of Spray Sam- Outlet Can Wt Spray on foil Wt Product on ple Diameter (g) (g) (g) (g) foil Avg A .020 178.54 176.81 1.61 1.73 93 94 .020 176.81 175.09 1.64 1.72 95 .020 175.09 173.29 1.68 1.8 93 A .021 180.89 178.97 1.79 1.92 93 93 .021 178.97 177.39 1.48 1.58 94 .021 177.39 175.4 1.85 1.99 93 A .022 175.93 173.82 1.98 2.11 94 94 .022 173.82 171.54 2.14 2.28 94 .022 171.54 169.76 1.69 1.78 95
(50) As shown in Tables 7-18, between about 90% to about 97% of the fluid product 102 discharged via the spray insert 500 deposits on the surface 104 when the spray insert 500 is between about 1 inch and about 8 inches away from the surface 104.
(51) Spray tests were also conducted to determine average particle sizes of the fluid product 102 using the spray insert 500. Each of the tests was performed using two substantially similar aerosol systems, indicated as sample A and sample B, respectively. Each of the spray tests was conducted by providing an aerosol system having the spray insert 500 operatively coupled to an aerosol canister holding the fluid product 102, shaking the canister for three seconds, and actuating an actuator of the aerosol system for about three seconds to discharge the fluid product 102 via the spray insert 500. The average particle size was measured and/or calculated via a particle size analyzer manufactured and/or sold by Malvern Instruments, Ltd. These tests were performed with an aerosol canister in the first state, the second state, and the third state. The tests were also conducted using the discharge outlet 510 with a diameter of 0.020 inches, 0.021 inches, and 0.022 inches. The following tables detail the results of these tests.
(52) TABLE-US-00019 TABLE 19 Full Can (130-135 psi) Discharge Average Starting Outlet particle Can Average Sample Diameter size (m) WT (g) (m) A .020 79.44 352.03 87 .020 90.16 .020 88.25 B .020 88.08 333.27 .020 87.73 .020 86.76 A .021 90.8 349.07 91 .021 93.87 .021 92.25 B .021 94.08 309.67 .021 79.14 .021 96.08 A .022 84.77 333.73 88 .022 84.54 .022 87.4 B .022 86.9 350.6 .022 89.11 .022 92.56
(53) As shown in Table 19, the average particle size of the fluid product 102 discharged from a substantially full aerosol canister via the spray insert 500 is about 79 micrometers to about 96 micrometers.
(54) TABLE-US-00020 TABLE 20 Half Full Can (60-70 psi) Discharge Average Starting Outlet particle Can Average Sample Diameter size (m) WT (g) (m) A .020 91.82 234.95 99 .020 95.35 .020 98.56 B .020 103.2 220.3 .020 104.9 .020 102.9 A .021 101.7 238.12 108 .021 107.2 .021 99.74 B .021 109.2 224.89 .021 113.9 .021 115.2 A .022 99.48 235.35 95 .022 90.14 .022 91.45 B .022 95.52 220.5 .022 93.37 .022 100.2
(55) As shown in Table 20, the average particle size of the fluid product 102 discharged from a substantially half full aerosol canister via the spray insert 500 is about 90 micrometers to about 115 micrometers.
(56) TABLE-US-00021 TABLE 21 Quarter Full Can (50-60 psi) Discharge Average Starting Outlet particle Can Average Sample Diameter size (m) WT (g) (m) A .020 109.7 180.3 115 .020 118 .020 120.9 B .020 112.2 168.64 .020 115.4 .020 116.3 A .021 110 179.79 112 .021 112.7 .021 111.7 B .021 111.8 164.95 .021 114.7 .021 109.1 A .022 105.5 168.66 110 .022 117.7 .022 100.6 B .022 110.5 154.67 .022 110.4 .022 113.1
(57) As shown in Table 21, the average particle size of the fluid product 102 discharged from a substantially quarter full aerosol canister via the spray insert 500 is about 105 micrometers to about 121 micrometers.
(58)
(59) In the illustrated example, the overcap assembly 700 includes a housing 704, an actuator 706, and a spray insert 708. The example actuator 706 of
(60)
(61)
(62)
(63) Turning to
(64) The example spray insert 708 includes a first vane or baffle 1006, a second vane or baffle 1008, a third vane or baffle 1010, and a fourth vane or baffle 1012 disposed on the sidewall 1000 within the cavity 1002. In the illustrated example, the vanes 1006-1012 are symmetrically disposed in the cavity 1002 relative to the central, longitudinal axis D-D (
(65) The spray insert 708 also includes a first boss or tooth 1022, a second boss or tooth 1024, a third boss or tooth 1026, and a fourth boss or tooth 1028 disposed on an interior surface 1030 of the endwall 1004. In the illustrated example, the bosses 1022-1028 are spaced apart from each other. The first boss 1022 extends from the first vane 1006 toward the second vane 1008 and the third vane 1010. The second boss 1024 extends from the second vane 1008 toward the third vane 1010 and the fourth vane 1012. The third boss 1026 extends from the third vane 1010 toward the fourth vane 1012 and the first vane 1006. The fourth boss 1028 extends from the fourth vane 1012 toward the first vane 1006 and the second vane 1008. Thus, the first boss 1022 mirrors the third boss 1026, and the second boss 1024 mirrors the fourth boss 1028.
(66) In the illustrated example, a first end or tip 1032 of the first boss 1022, a second end or tip 1034 of the second boss 1024, a third end or tip 1036 of the third boss 1026, and a fourth end or tip 1038 of the fourth boss 1028 are spaced apart from the discharge outlet 718 of the spray insert 708. As a result, portions of the bosses 1022-1028 and a portion of the interior surface 1030 of the endwall 1004 surrounding the discharge outlet 718 define a swirl chamber 1040 in which the fluid product 102 flowing through the spray insert 708 swirls, rotates and/or circulates prior to flowing out of the spray insert 708 via the discharge outlet 718. The swirl chamber 1040 has a height corresponding to a distance between the interior surface 1030 of the endwall 1004 and the distal end 910 of the post 904 when the spray insert 708 is coupled to the manifold 800.
(67) In the illustrated example, the bosses 1022-1028 are substantially similar or identical. Thus, the following description of the first boss 1022 is applicable to the second boss 1024, the third boss 1026, and the fourth boss 1028. Therefore, for the sake of brevity, the second boss 1024, the third boss 1026, and the fourth boss 1028 are not separately described herein.
(68) The example first boss 1022 has an airfoil-shaped portion 1042. For example, a first side portion 1044 of the first boss 1022 has a first radius of curvature R1, and a second side portion 1046 of the first boss 1022 has a second radius of curvature R2 less than the first radius of curvature R1. In some examples, the first radius of curvature R1 is about 0.066 inches, and the second radius of curvature R2 is about 0.036 inches. The first radius of curvature R1 is substantially constant over a first arc length of the first side portion 1044. The second radius of curvature R2 is substantially constant over a second arc length of the second side portion 1046. Thus, the first boss 1022 includes a first area and a second area between the sidewall 1000 and the first tip 1032 having constant radii of curvature. In other examples, the first radius of curvature R1 and/or the second radius of curvature R2 changes over the first arc length and the second arc length, respectively.
(69) In the illustrated example, the first arc length of the first side portion 1044 is longer than the second arc length of the second side portion 1046. The first side portion 1044 and the second side portion 1046 are curved about a first axis or center of curvature E-E and a second axis or center of curvature F-F, respectively. In the illustrated example, the first axis of curvature E-E and the second axis of curvature F-F parallel to the central longitudinal axis D-D (see also
(70) The first boss 1022 also includes a base portion 1048 extending from the first vane 1006 to the airfoil shaped portion 1042. For example, the base portion 1048 has a third side portion 1050 extending from the first vane 1006 to a first point of inflection 1052 formed by the third side portion 1050 and the first side portion 1044. The base portion 1048 also includes a fourth side portion 1054 extending from the first vane 1006 to a second point of inflection 1056 formed by the fourth side portion 1054 and the second side portion 1046. Thus, the first side portion 1044 extends from the third side portion 1050 of the base portion 1048 at the first point of inflection 1052 to the first tip 1032, and the second side portion 1046 extends from the fourth side portion 1054 of the base portion 1048 at the second point of inflection 1056 to the first tip 1032. In the illustrated example, the third side portion 1050 and the fourth side portion 1054 extend (e.g., curve) from the first vane 1006 toward the second boss 1024.
(71) The first tip 1032 of the first boss 1022 is curved or rounded. In other examples, the first tip 1032 of the first boss 1022 is a linear edge. The above-noted shapes of the first boss 1022 cause the fluid product 102 to rotate and/or swirl in the swirl chamber 1040 of
(72) In the illustrated example, the fluid product 102 flows through the longitudinal channels 1014-1020 between the vanes 1006-1012 and into a first lateral or oblique channel 1058 defined by the first boss 1022 and the second boss 1024, a second lateral or oblique channel 1060 defined by the second boss 1024 and the third boss 1026, a third lateral or oblique channel 1062 defined by the third boss 1026 and the fourth boss 1028, and a fourth lateral or oblique channel 1064 defined by the fourth boss 1028 and the first boss 1022, respectively. The oblique channels 1058-1064 decrease in width or span from the sidewall 1000 toward the swirl chamber 1040. As a result, the oblique channels 1058-1064 increase a velocity of the fluid product 102 as the fluid product 102 flows through the oblique channels 1058-1064 and into the swirl chamber 1040. The curvature and orientation of the bosses 1022-28 and, thus, the shapes of the oblique channels 1058-1064 direct the fluid to rotate about the longitudinal axis D-D when the fluid product is in the oblique channels 1058-1064. As a result, the curvature and orientation of the bosses 1022-28 and, thus, the shapes of the oblique channels 1058-1064 direct the fluid product to rotate about the longitudinal axis D-D upstream of the swirl chamber 1040.
(73) Referring to
(74)
(75)
(76)
INDUSTRIAL APPLICABILITY
(77) The examples disclosed herein can be used to dispense or discharge fluid products from commercial products such as, for example, air fresheners, pesticides, paints, deodorants, disinfectants, cleaning fluids, and/or one or more additional and/or alternative products.
(78) Numerous modifications to the examples disclosed herein will be apparent to those skilled in the art in view of the foregoing description. Accordingly, this disclosure is to be construed as illustrative only and is presented for the purpose of enabling those skilled in the art to make and use the claimed invention and to teach the best mode of carrying out same. The exclusive rights to all modifications which come within the scope of the claims are reserved. All patents and publications are incorporated by reference.