System and method for a dispenser to generate different sprays
10589920 ยท 2020-03-17
Assignee
Inventors
Cpc classification
B65D83/48
PERFORMING OPERATIONS; TRANSPORTING
B05B11/1005
PERFORMING OPERATIONS; TRANSPORTING
B65D83/22
PERFORMING OPERATIONS; TRANSPORTING
B05B1/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D83/48
PERFORMING OPERATIONS; TRANSPORTING
B05B1/30
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system releases spray fluid in different mass flow rates. The system includes an actuator having a first area and a second area, a stem connected to the actuator and having a first orifice and a second orifice, a gasket covering the first orifice and the second orifice in a non-actuated position, and a biased member biasing the stem to the non-actuated position. When the first area of the actuator is pressed, the stem moves a first distance relative to the gasket to uncover the second orifice and compressing the biased member to spray fluid with a first mass flow rate. When the second area of the actuator is pressed, the stem moves a second distance relative to the gasket to uncover the first orifice and the second orifice to spray fluid with a second mass flow rate greater than the first mass flow rate.
Claims
1. A system to release spray fluid in different mass flow rates from a container, the system comprising: an actuator having a first area and a second area; a stem being connected to the actuator and having a channel surrounded by a wall of the stem, the stem having a first orifice and a second orifice in communication with the channel through the wall, the wall of the stem having a groove that forms a neck around an exterior circumference of the stem; a monolithic gasket seated in the groove and over the first orifice and the second orifice to directly seat the first orifice and the second orifice in a non-actuated position, the monolithic gasket held in place by the container; and a biased member that biases the stem to the non-actuated position, wherein the stem is movable a first distance relative to the gasket to directly uncover the second orifice while the first orifice is directly covered by the gasket and the stem compresses the biased member to spray fluid with a first mass flow rate when the first area of the actuator is pressed down, and wherein the stem is movable a second distance relative to the gasket to directly uncover the first orifice and the second orifice and the stem compresses the biased member to spray fluid with a second mass flow rate that is greater than the first mass flow rate when the second area of the actuator is pressed down.
2. The system according to claim 1, wherein the gasket is impermeable to spray fluid and seals the stem.
3. The system according to claim 1, wherein the first orifice is above the second orifice.
4. The system according to claim 3, wherein the first orifice has a diameter that is larger than the diameter of the second orifice.
5. The system according to claim 1, wherein the biased member is a spring.
6. The system according to claim 1, further comprising a level, wherein the actuator contacts sides of the level when the first area is pressed, and wherein the actuator contacts the sides and rear of the level when the second area is pressed.
7. The system according to claim 1, further comprising a base that rests on top of a container, wherein the base supports the actuator.
8. The system according to claim 7, wherein the actuator has side extensions with hooks that rotatably connect the base and the actuator.
9. The system according to claim 7, wherein the base has a first rib and a second rib and the actuator has a first indentation and a second indentation, wherein the actuator moves the first distance prior to the first indentation contacting the first rib when the first area of the actuator is pressed and the actuator moves the second distance prior to the second indentation contacting the second rib when the second area of the actuator is pressed.
10. The system according to claim 9, wherein the first distance is less than the second distance.
11. The system according to claim 1, wherein the first orifice and the second orifice each have a longitudinal axis that is positioned normal to the groove.
12. A method to release spray fluid from a container at different mass flow rates, the method comprising: pressing one of a first area and a second area of an actuator to compress a biased member and move a stem of a dispensing system, the dispensing system having the actuator the stem, the biased member, and a monolithic gasket, wherein the stem is connected to the actuator and has a channel surrounded by a wall of the stem, wherein the stem has a first orifice and a second orifice in communication with the channel through the wall, and wherein the wall of the stem has a groove that forms a neck around an exterior circumference of the stem, wherein the monolithic gasket is seated in the groove and over the first orifice and the second orifice to directly seal the first orifice and the second orifice in a non-actuated position, wherein the monolithic gasket held in place by the container, wherein the biased member biases the stem to the non-actuated position, wherein the stem moves a first distance relative to the gasket to directly uncover the second orifice while the first orifice is covered by the gasket to spray fluid with a first mass flow rate when the first area of the actuator is pressed, and wherein the stem moves a second distance relative to the gasket to directly uncover the first orifice and the second orifice to spray fluid with a second mass flow rate that is greater than the first mass flow rate when the second area of the actuator is pressed.
13. The method according to claim 12, wherein the gasket is impermeable to spray fluid and seals the stem.
14. The method according to claim 12, wherein the second orifice is below the first orifice.
15. The method according to claim 14, wherein the first orifice has a diameter that is larger than the diameter of the second orifice.
16. The method according to claim 12, wherein the biased member is a spring.
17. The method according to claim 12, wherein the actuator contacts sides of a level when the first area is pressed, and wherein the actuator contacts the sides and rear of the level when the second area is pressed.
18. The method according to claim 17, wherein the actuator and the level are supported by a base that rests on top of the container.
19. The method according to claim 18, wherein the base has a first rib and a second rib and the actuator has a first indentation and a second indentation, wherein the actuator moves the first distance prior to the first indentation contacting the first rib when the first area of the actuator is pressed down and the actuator moves the second distance prior to the second indentation contacting the second rib when the second area of the actuator is pressed down.
20. The method according to claim 12, wherein the actuator has side extensions with hooks that can lock the actuator against a base.
21. The method according to claim 12, wherein the first distance is less than the second distance.
22. A system to release spray fluid in different mass flow rate from a container, the system comprising: an actuator having a first area and a second area; a stem being connected to the actuator, the stem having a channel along a vertical axis of the stem, the channel being surrounded by a wall of the stem, the stem having a first orifice and a second orifice, the first orifice and the second orifice each having a longitudinal axis disposed perpendicular to the vertical axis, and the first orifice and the second orifice being in communication with the channel through the wall, the wall of the stem having an exterior circumferential groove that forms a neck around an exterior circumference of the stem, the first orifice and the second orifice having openings that are located completely within the exterior circumferential groove of the stem; a monolithic gasket disposed over the first orifice and the second orifice to directly seal the first orifice and the second orifice in a non-actuated position, the monolithic gasket held in place by the container; and a biased member that biases the stem to the non-actuated position, wherein the stem is movable a first distance relative to the gasket to directly uncover the second orifice while the first orifice is directly covered by the gasket and the stem compresses the biased member to spray fluid with a first mass flow rate when the first area of the actuator is pressed down, and wherein the stem is movable a second distance relative to the gasket to directly uncover the first orifice and the second orifice and the stem compresses the biased member to spray fluid with a second mass flow rate that is greater than the first mass flow rate when the second area of the actuator is pressed down.
23. The system according to claim 22, wherein the monolithic gasket is disposed in the groove.
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)
(20)
(21)
(22)
(23)
(24)
(25)
(26)
(27)
(28)
(29)
(30)
DETAILED DESCRIPTION OF THE DISCLOSURE
(31) Referring to the drawings and, in particular, to
(32) Container 125 can store spray fluid 145. Spray fluid 145 in container 125 is pressurized, or can be pressurized before and/or after being filled in container 125. After spray fluid 145 is pressurized, the pressure of spray fluid 145 in container 125 is higher than the ambient pressure.
(33) Referring to
(34) Referring to
(35) Biased member 270 can be a spring. Biased member 270 can be made of a metal material.
(36) Referring to
(37) Referring to
(38) Referring to
(39) Rear extension 315, inner rear extension 320, pair of inner side extensions 325, pair of outer side extensions 330, and front extension 335 all extend from top portion 150 of actuator 105 and actually from shell 310.
(40) Rear extension 315, inner rear extension 320, and each inner side extension 325 and outer side extension 330 are radially inward and coaxial or substantially coaxial with the outer periphery of shell 310.
(41) As shown in
(42) Two outer side extensions 330 are located along the same radii and those radii are greater than the radii of inner side extensions 325. As with inner side extensions 325, the centers outer side extensions 330 are 180 degrees apart from one another. Also, outer side extensions 330 are longer than inner side extensions 325.
(43) Front extension 335 is located radially inward with respect to the radial position of aperture 305.
(44) Referring to
(45) Referring to
(46) Referring to
(47) Referring to
(48) Referring to
(49) Flat surface 520 has an upstanding clicking post 554. Inner ring 535 has spaces 538. Inner ring 535 is connected to outer ring 540 by a plurality of ribs 536.
(50) Referring to
(51) First orifice 610 has a hole diameter that can be larger than that of second orifice 615. An exemplary diameter of first orifice 610 is 0.46 millimeters (mm). An exemplary diameter of second orifice 615 is 0.25 mm.
(52) Referring to
(53) As shown in
(54) Referring to
(55) Referring to
(56) Referring to
(57) Referring to
(58) Referring to
(59) Referring to
(60) As shown clearly in
(61) Stem 230 is inserted into center opening 266 of stem gasket 265 so that stem gasket 265 is inserted in groove surface 620. First orifice 610 and second orifice 615 are sealed by stem gasket 265 when system 100 is in a non-actuated position, as shown in
(62) As shown in
(63) U-shaped channel 1005 is located inside of u-shaped channel 810 of cup 235. Both u-shaped channel 1005 of container 125 and u-shaped channel 810 of cup 235 are located inside of a first space formed by inner ring 535 and front block 505 and inside of a second space formed by inner ring 535 and rear block 525 forming a snap fit to secure base 120, container 125 and cup 235 together.
(64) System 100 has the non-actuated position and two operation positions: a spray-less position and a spray-more position. Spray fluid 145 is not released from container 125 in the non-actuated position. Spray fluid 145 can only be released in the spray-less position or the spray-more position.
(65) A spray-less position means that system 100 releases spray fluid 145 in a mass flow rate less than a nominal mass flow rate of system 100. In the spray-less position, a user presses first area 155 to release spray fluid 145 from system 100.
(66) In the spray-more position, a user presses second area 160, shown in
(67) Referring to
(68)
(69) Referring to
(70) Hole diameter of nozzle 705 can be from 0.025 mm to 2.5 mm. The hole diameter of nozzle 705 relates to spray characteristic required by formulation being sprayed.
(71)
(72) As described above, spray fluid 145 in container 125 is pressurized or can be pressurized. Spray fluid 145 exits container 125 because of its higher pressure when spray fluid 145 is in communication with the ambient temperature.
(73) Referring again to
(74) When system 100 is in a spray-less position, second orifice 615 is exposed to spray fluid 145 in container 125. Spray fluid 145 can enter stem 230 through second orifice 615, but spray fluid 145 cannot enter first orifice 610 because first orifice 610 is still sealed by gasket 265. When system 100 is in a spray-more position, both first orifice 610 and second orifice 615 are exposed to spray fluid 145 in container 125, and spray fluid 145 can enter stem 230 through second orifice 615.
(75)
(76) With the above orifices, mass flow rate for the spray-less is in the range of 0.3 to 0.5 grams per second. A mass flow rate for the spray-more position is in the range of 0.9 to 1.1 grams per second. Particularly, system 100 can achieve a mass flow rate having an average of 0.41 grams per second for the spray-less position and 0.98 grams per second for the spray-more with the above-mentioned embodiment.
(77) The above-mentioned embodiment is one example of system 100. As understood by an ordinary skill in the art, the present disclosure can have other embodiments of system 100 that require different orifice sizes, shapes, spaces and number of orifices. System 100 preferably has the ability to prevent leakage, the ability to separate between the spray-less and spray-more function in mass flow rate, and the ability to match the customer's requested mass flow rates with their particular product. [[.]] There is no limitation to the shape of the orifice, the number of the orifice, the location of the orifice, or the distance between the orifices as long these desirable features can be met.
(78) In the present disclosure, the spray-less position operation releases a less amount of spray fluid than that of spray-more position operation. No setting is required. The spray-more position distributes a normal or full amount of fluid spray. This spray-more position releases the same amount as any normal actuator and delivers a noticeable larger amount of spray than the spray-less position. Again, no settings are required.
(79) In the present disclosure, the consumer simply moves their fingers from the front of system to the back of the system to switch between a spray-less and spray-more position operation.
(80) The spray-less position is controllable in accordance with a manufacturer's requirements. The mass flow rate of the spray-less position can be as little as 80% reduction relative to the spray-more position. The variability of the two different mass flow rates of the spray-less position and the spray-more position can be infinite determined by the viscosity of the product and the pressure of aerosol in the container.
(81) Actuator 105 is rotatable on base 120 from a closed position where actuator 105 cannot be depressed to dispense spray fluid 145 as shown in
(82) During rotation of actuator 105 between the open position and the closed position, rear extension 315 contacts upstanding clicking post 554 generating an audible noise. The audible noise alerts a user that actuator 105 is rotating in a first direction to the open position or that actuator 105 is rotating in a second direction opposite the first direction away from the open position.
(83) It should be noted that the terms first, second, and the like can be used herein to modify various elements. These modifiers do not imply a spatial, sequential or hierarchical order to the modified elements unless specifically stated.
(84) While the present disclosure has been described with reference to one or more exemplary embodiments, it will be understood by those skilled in the art that various changes can be made and equivalents can be substituted for elements thereof without departing from the scope of the present disclosure. In addition, many modifications can be made to adapt a particular situation or material to the teachings of the disclosure without departing from the scope thereof. Therefore, it is intended that the present disclosure will not be limited to the particular embodiment(s) disclosed as the best mode contemplated, but that the disclosure will include all embodiments falling within the scope of the appended claims.