The invention relates to container closures, and more particularly to squeeze-type container dispensing closures. This invention relates to a dispensing closure for dispensing liquid. More specifically, it relates to a dispensing closure defining an orifice in the closure to produce a fan-type discharge or spray in a low-pressure environment.
The prior art discloses numerous patents related to high pressure environments for producing various sprays. U.S. Pat. No. 2,755,137 discloses a liquid spray jet and has for its object the provision of a jet. The spray jet includes a jet member having a parallel sided slot. U.S. Pat. No. 4,175,704 discloses a non-aerosol type spray dispenser. The end of a tubular member mounts a spray nozzle built into a parabolic section which extends outwardly from the end of the actuator. U.S. Pat. No. 4,718,607 generally shows a spray orifice adapted for discharging a mixture of atomized liquid entrained within a gas stream for coating a surface with the liquid. U.S. Pat. No. 4,760,956 shows a spray gun that includes a mixing apparatus and an atomizer including a liquid nozzle.
Also, the prior art discloses the use of additional non-squeeze-type dispensing closures to produce various sprays in a high pressure environment. U.S. Pat. No. 4,971,256 shows a sprinkler having a nozzle head abutting the end wall and defining a vertical slot extending radially therethrough. U.S. Pat. No. 5,642,860 shows a slotted spray nozzle. U.S. Pat. No. 5,890,655 discloses a fan spray nozzle having elastomeric dome-shaped tips with a flow conduit outwardly extending from the upper deck. The '655 patent discloses the spray nozzle being made of an elastomeric material having a flexural modulus from about 1,000 psi to about 25,000 psi.
Based upon the prior art cited above, there remains a need for a dispensing closure having a dispensing orifice which allows for liquid discharges in the form of a fan-type spray in a low pressure environment produced by a squeeze-type container.
The invention preserves the advantages of prior dispensing closures for squeeze-type containers. In addition, it provides new advantages not found in currently available dispensing closures for squeeze-type containers and overcomes many disadvantages of such currently available dispensing closures for squeeze-type containers.
The dispensing closure for a squeeze-type container produces a fan-type spray in a low pressure environment. The dispensing closure includes a closure body having an upper deck and a skirt depending from the upper deck. The skirt is configured and arranged to attach to a squeeze-type product container. A flow conduit extends from an interior of the closure body and through the upper deck to provide a flow path from an interior of the closure to an exterior of the closure. The flow conduit has an entrance orifice and an exit orifice. The flow conduit has an inner wall extending between the entrance orifice and the exit orifice.
The flow conduit is configured to produce a fan-type spray in a low pressure environment. A low pressure environment may be produced by a squeeze-type product container upon a force being applied to the product container by a user. In one embodiment, the fan-type spray is provided at less than 5 psi. Alternatively, the fan-type spray may be produced between 0.5 psi and 3 psi which is typically the result of a squeeze produced by an average person.
The flow conduit includes a tip portion for producing a fan-type spray. The tip portion including a raised non-planar surface having an interior volume to collect liquid before the liquid exits through the exit orifice in a low pressure environment. The tip portion defines a shape of the exit orifice which produces the fan-type spray. For example, the shape of the exit orifice may be rectangular, bowtie, half bowtie, oval, keyhole, dumbbell, curved rectangular, “J”, “T”, inverted “T”, inverted “J”, and other non-circular shapes. Also, it should be noted that to produce a continuous fan-type spray with desired dimension, the exit orifice may also define a uniform width, with regard to the rectangular shaped orifice, and the tip portion may have a relatively uniform thickness of material.
In one embodiment, the flow conduit, the closure body, and the tip portion are integrally formed to facilitate the fan-type spray in a low pressure environment. The flow conduit includes a first body portion of the flow conduit extending from the upper deck to the tip portion in a gradually decreasing diameter. The tip portion has a height less than the first body portion of the flow conduit. Note, a peripheral wall extends upwardly from the upper deck to surround the first body portion of the flow conduit to capture excess fluids.
In one embodiment including a closure lid, the dispensing closure includes a multiple sealing mechanisms to prevent liquid from exiting through the exit orifice. In one embodiment, the dispensing closure includes a closure lid, a hinge mechanism for connecting the lid to the body and a latching mechanism for securing the lid to the body. In a first sealing mechanism for a dispensing closure having a closure lid, a sealing wedge is positioned on an interior surface of the lid for sealing engagement through the exit orifice of the flow conduit when the lid is in a closed position to prevent the exit of liquid through the exit orifice.
In a second sealing mechanism for a dispensing closure having a closure lid, a sealing member portion of the flow conduit is positioned at upper portion of the flow conduit for engaging an interior of the closure lid when the lid is in a closed position. The interior of the closure lid includes a seal bead to frictionally engage the sealing member portion to prevent the flow of liquid out of the exit orifice. Alternatively, the sealing member portion includes a seal bead to frictionally engage the interior of the closure lid.
In a third sealing mechanism for a dispensing closure having a closure lid, the closure lid includes a mating surface corresponding to an exterior surface of the tip portion. When the lid is in a closed position, the mating surface seals against the tip portion to prevent the flow of liquid through said exit orifice of the flow conduit.
In another embodiment having an insert member, the dispensing closure includes multiple sealing mechanisms to prevent liquid from exiting through the exit orifice. The dispensing closure includes an insert member positioned within the exit aperture of the product container. The insert member includes an insert base for seating within the exit aperture of the product container. The insert member also includes a sealing tube portion extending upwardly from said insert base to occupy an interior volume of said flow conduit.
In a first sealing mechanism for a dispensing closure having an insert member, the sealing tube portion includes a mating surface corresponding to an interior surface of the tip portion to prevent flow of liquid through the exit orifice when the closure body is rotated into a closed position to contact the sealing tube portion.
In a second sealing mechanism for a dispensing closure having an insert member, a sealing member portion of the sealing tube portion is positioned at upper portion of the insert member. The sealing member portion engages an interior of the flow conduit when the closure is rotated into in a closed position to contact the sealing tube portion. The interior of the flow conduit includes a seal bead to frictionally engage the sealing member portion to prevent the flow of liquid out of the exit orifice. Alternatively, the sealing member portion includes the seal bead to frictionally engage the interior of the flow conduit.
In another embodiment, the dispensing closure may also include two pairs of opposing stopping tabs on the inner surface of the outer wall, which cooperate with a single pair of opposed stopping lugs on the container finish. A first, opposed pair of stopping tabs function as child resistant latches to resist movement of the dispensing closure from the closed position to the open position. In operation, the dispensing closure must be squeezed at opposing locations (identified with thumb pads) on the dispensing closure to deform the dispensing closure and move the CR tabs outwardly to overcome the stop lugs. Once freed from the stop lugs, the dispensing closure can then rotate 90 degrees where the second set of stopping tabs engages with the stop lugs to prevent further rotation. This second set of stopping tabs prevents complete removal of the dispensing closure from the container finish.
In another embodiment, a dispensing closure for a squeeze-type container may include a closure body including an upper deck and a skirt depending downwardly from the upper deck, the skirt defining a lower interior opening configured and arranged to attach to a neck of the container, a spout pivotally attached to the closure body and movable between a closed position and an open position, the spout including a flow conduit from an interior of the closure to an exterior of the closure, and a dispensing tip portion, an entrance orifice and an exit orifice at the dispensing tip portion, the spout being movable relative to said closure body between the closed position wherein the dispensing tip portion is at least partly recessed into the closure body and the entrance orifice is not in communication with the lower interior opening, and an open position wherein said dispensing tip portion is pivoted upward relative to the closure body and the entrance orifice is in communication with the lower interior opening; the exit orifice being configured and arranged to produce a fan-type spray in a low-pressure environment when the squeeze-type container is inverted and squeezed.
In operation, the dispensing closure of the present invention provides a fan-type spray in a low pressure environment. The low pressure environment may be less than 5 psi. In one embodiment, the dispensing closure is attached to a squeeze-type product container. When the squeeze-type product container has a force applied by a user, the liquid within the container moves through the flow conduit, up through the tip portion, and discharges through the shaped exit orifice to produce a fan-type spray at less than 5 psi.
It is therefore an object of the present invention to provide a fan-type spray in a low pressure environment.
It is another object of the present invention to provide a sealing mechanism to prevent the flow of liquid through the exit orifice.
Another object of the present invention is to provide a one-piece or two-piece dispensing closure.
It is also another object of the present invention to provide a latching mechanism for securing the lid to the closure body.
A further object of the present invention is to provide a child-resistant latching mechanism.
The novel features which are characteristic of the present invention are set forth in the appended claims. However, the invention's preferred embodiments, together with further objects and attendant advantages, will be best understood by reference to the following detailed description taken in connection with the accompanying drawings in which:
In accordance with the present invention, a dispensing closure for squeeze-type containers is disclosed. This invention relates to a dispensing closure for dispensing liquid. More specifically, it relates to a dispensing closure defining an exit orifice in the closure to produce a fan-type discharge or spray in a low-pressure environment.
As shown generally in
A low pressure environment may be produced by a squeeze-type product container 900 (
Referring to
A flow conduit 20 extends from an interior of the closure body 12 and through the upper deck 24 to provide a flow path from an interior of the closure 10 to an exterior of the closure 10. The flow conduit 20 has an entrance orifice 20A within the interior of the closure body 12 and an exit orifice 16 outside the exterior of the closure body 12. In one embodiment, the flow conduit 20 is raised in an elongated manner outside the exterior surface of the closure body 12. The flow conduit 20 has an inner wall 21 extending between the entrance orifice 20A and the exit orifice 16. The inner wall 21 is gradually inclined to funnel liquid from an interior of the closure body 12 to the tip portion 18. Note, a peripheral wall 26 extends upwardly from the upper deck 24 to surround a first body portion of the flow conduit 20 to capture excess liquids.
The flow conduit 20 includes the tip portion 18 for facilitating the production of a fan-type spray through the exit orifice 16. The tip portion 18 includes the raised non-planar surface having an interior volume to collect liquid before the liquid exits through the exit orifice 16 under low pressure. The collection of liquid within an interior volume of the raised non-planar surface provides a continuous and even flow of liquid as it exits through the exit orifice 16.
The tip portion 18 defines a shape of the exit orifice 16 which facilitates the production of the fan-type spray. Referring back to
It should be noted that the rectangular exit orifice 16 and tip portion 18 having the non-planar surface, disclosed in
The dispensing closure 10 can provide a fan-type discharge using multiple configurations of the dispensing orifice 16. Other shapes of the exit orifice 16 that may be used are, for example, a bowtie shape (
The bowtie shape (
In another embodiment, the dispensing orifice 16 may also have a non-uniform width along the tip portion 18 of the flow conduit 20. For example, the “fan” orifice 16 may have an increased or decreased width of the dispensing orifice 16 depending upon the viscosity of the product and desired angular flow of the liquid.
Also, the dispensing orifice 16 may extend less than the entire radius or diameter of the non-planar surface area of the tip portion 18. The dispensing orifice 16 may be set off its normal orientation, by degrees, in order to provide a better or optimal angle for streaming liquid into a toilet bowl or other desirable environment. It should also be noted that the fan-type spray from the present invention may be adjusted by using different shapes, sizes, and/or configurations in accordance with those dispensing characteristics desired.
In one embodiment, the flow conduit 20, the closure body 12, and the tip portion 18 are integrally formed to facilitate the fan-type spray in a low pressure environment. The flow conduit 20 includes a first body portion of the flow conduit 20 extending from the upper deck 24 to the tip portion 18 in a gradually decreasing diameter. The tip portion 18 has a height less than the first body portion of the flow conduit 20 to funnel liquid from an interior of the closure body 12 to the tip portion 18.
Now referring generally to
Referring to
Referring to
In a third sealing mechanism for a dispensing closure 10B having a closure lid 14, the closure lid 14 includes a mating surface corresponding to an exterior non-planar surface of the tip portion 18. When the lid 14 is in a closed position, the mating surface seals against the tip portion 18 to prevent the flow of liquid through the exit orifice 16 of the flow conduit 20.
In a fourth sealing mechanism for a dispensing closure 60 having a closure lid 62, the closure lid 62 includes an inner circular wall 66 depending from a central region. Preferably, the inner circular wall 66 has a diameter to allow for a friction fit with the sealing member portion 68 of the flow conduit 70. When the closure lid 62 is in a closed position, the inner circular wall 66 snaps over the exit orifice 72 to prevent the exit of liquid therethrough.
Now referring generally to
Referring to
Referring to
Referring to
As shown generally in
As shown generally in
Now referring to
The flow path and velocity of the liquid through the dispensing closure during operation provides a fan-type spray in a low-pressure environment. Upon applying pressure to product container full of liquid, the liquid moves from an interior of the product container and into an interior of the dispensing closure attached to the product container. The liquid then accelerates into the flow conduit. The flow conduit has a gradually decreasing diameter which funnels the liquid into the tip portion where it temporarily collects or pools in the interior volume of the raised non-planar surface. The purpose of the raised non-planar surface is to maintain a continuous flow of the liquid discharge while it exits through the shaped exit orifice in a fan-type discharge.
Referring to
Referring to
It is to be noted that the dimensions and shape of the dispensing closure, flow conduit, tip portion, and exit orifice are adjustable depending upon the viscosity of the product stored within an interior of the product container. Referring to
In view of the foregoing, a dispensing closure is provided related to container closures, and more particularly to squeeze-type container dispensing closures. This invention relates to a dispensing closure for dispensing liquid with varying degrees of viscosity. More specifically, it relates to a dispensing closure defining an orifice in the closure to produce a fan-type discharge or spray in a low-pressure environment.
Referring to
As shown generally in
Referring to
Referring to
The flow conduit 120 includes the tip portion 118 for facilitating the production of a fan-type spray through the exit orifice 116. The tip portion 118 includes the raised non-planar surface having an interior volume to collect liquid before the liquid exits through the exit orifice 116 under low pressure. The collection of liquid within an interior volume of the raised non-planar surface provides a continuous and even flow of liquid as it exits through the exit orifice 116.
The tip portion 118 defines a shape of the exit orifice 116 which facilitates the production of the fan-type spray. Referring back to
More specifically referring to
In a first sealing mechanism for a dispensing closure 100A having an insert member 110, the sealing tube portion 111 includes a mating surface corresponding to an interior surface of the tip portion 118. When the closure body 102 is rotated into a closed position to contact the sealing tube portion 111 with the interior surface of the tip portion 118, the liquid is prevented from discharging through the exit orifice 106.
Referring to
The dispensing closure 100A, 100B includes a threaded container finish or neck 910, an insert member 110 received inside the opening of the container finish, with the dispensing closure 100A, 100B threadably received on the container neck 910 so that the dispensing closure is rotatable from a closed position to an open position. The dispensing closure 100A, 100B includes a flow conduit 120 with a rectangular slit-shaped orifice 116 effective for spraying a fan shaped pattern of liquid. The insert member 110 includes a sealing tube portion 111, which is positioned so that the opening in tip of the flow conduit 120 is sealed by the sealing tube portion 111 when the dispensing closure 100A, 100B is in the closed position.
Referring to
To reduce the spreading out of the bottle outer diameter, a thread section of an upper portion of the dispensing closure 100B, as illustrated in
The dispensing closure 100A, 100B generally includes an upper wall from which the flow conduit projects upwardly and an inner wall extending downwardly from the upper wall. The inner wall is threadably received onto the container neck. Finally, the dispensing closure includes an outer shell wall or skirt depending downwardly and outwardly from the upper wall. The threads of the container neck and inner wall of the dispensing closure are a double thread design where the cap can be moved from a fully closed position to an operative open position by rotation of approximately 90 degrees. Complete removal of the dispensing closure from the neck requires a rotation of more than 270 degrees from fully engaged to fully disengaged.
The dispensing closure 100A, 100B also includes two pairs of opposing stopping tabs on the inner surface of the outer wall, which cooperate with a single pair of opposed stopping lugs on the container finish. A first, opposed pair of stopping tabs function as child resistant latches to resist movement of the dispensing closure from the closed position to the open position. In operation, the dispensing closure must be squeezed at opposing locations (identified with thumb pads) on the dispensing closure to deform the dispensing closure and move the CR tabs outwardly to overcome the stop lugs. Once freed from the stop lugs, the dispensing closure can then rotate 90 degrees where the second set of stopping tabs engages with the stop lugs to prevent further rotation. This second set of stopping tabs prevents complete removal of the dispensing closure from the container finish.
Referring to
A pivoting spout 223A is provided through which flow conduit 220 extends from an interior of the closure body 212 and through the upper deck 224 to provide a flow path from an interior of the closure 210A to an exterior of the closure 210A. The flow conduit 220 has an entrance orifice within the interior of the closure body 212 and an exit orifice 216 outside the exterior of the closure body 212. The flow conduit 220 may pass through spout 223A which pivots between a closed position generally within closure body 212 and an open position generally extending outward of closure body 212.
To move the spout 223A from a closed position to an open position, a user may pull upwardly on the end of spout 223A where it rests along the upper circumference of the closure body 212. The spout 223A may then be pivoted into its open position. To close spout 223A, it is merely pushed forward to pivot it downward and back into a recess 215 provided in the closure body 212.
The pivoting end of spout 223B may be provided with protrusions 223C to enable a user to open the spout 223B. To move the spout 223B from a closed position to an open position, a user may pull on protrusions 223C to roll or pivot the spout to an open position. To close spout 223B, it is merely pushed forward to pivot it downward and back into a recess 215 provided in the closure body 212.
The flow conduit 220 may extend through spout 223A from the opening shown at the back of the spout, out to the exit orifice 216 at the front of the orifice. When the spout is open, that is in a other than in a horizontal position, the entrance of the flow conduit 220 at the back of spout 223A may communicate with the container 900 so that fluid expelled from the container passes through the flow conduit and out the exit orifice. However when the pivoting spout is in a closed or horizontal position, the entrance of the flow conduit 220 at the back of spout 223A is not in communication with the container 900 and therefore the spout is closed.
The exit orifice 216 may have a lateral width of between 0.2 and 0.4 inches, or between 0.25 and 0.35 inches. The exit orifice may have a minimum height in a central region of between 0.01 and 0.04 inches, or between 0.02 and 0.03 inches. The maximum height of the exit orifice at the side regions may be between 0.05 and 0.08″, or between 0.06 and 0.07 inches. The upper and or lower surface of the exit orifice may have a radius of curvature between 0.25 and 0.5 inches, or between 0.3 and 0.4 inches, or about 0.35 inches.
The spout tip portion 218 defines a shape of the exit orifice 216 which facilitates the production of the fan-type spray. The orifice 216 may have a substantially rectangular shape with a uniform width to provide a uniform thickness and width of the fan-type spray when it exits through the exit orifice 216. Also, it should be noted that to produce a continuous fan-type spray, the exit orifice 216 may also define a uniform width, especially for the rectangular shape, and the tip portion 218 may have a relatively uniform thickness of material.
The dispensing closure 210A can provide a fan-type discharge using multiple configurations of the dispensing orifice 216. Other shapes of the exit orifice 216 that may be used are, for example, a bowtie shape (
The bowtie shape (
In another embodiment, the dispensing orifice 16 may also have a non-uniform width along the tip portion 118 of the flow conduit 220. For example, the “fan” orifice 216 may have an increased or decreased width of the dispensing orifice 216 depending upon the viscosity of the product and desired angular flow of the liquid.
It would be appreciated by those skilled in the art that various changes and modifications can be made to the illustrated embodiments without departing from the spirit of the present invention. All such modifications and changes are intended to be within the scope of the present invention.
This application is a continuation-in-part of U.S. application Ser. No. 14/466,324, filed Aug. 22, 2014, which is a continuation of U.S. application Ser. No. 13/178,385, filed Jul. 7, 2011 (now U.S. Pat. No. 8,814,010, granted Aug. 26, 2014), which is a continuation-in-part of U.S. application Ser. No. 12/487,583 filed Jun. 18, 2009 (now U.S. Pat. No. 8,469,241, granted Jun. 25, 2013), which is a non-provisional application of, and claims the benefit to, U.S. Provisional Patent Application No. 61/073,616 filed Jun. 18, 2008, the entire contents all of which are incorporated herein by reference.
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Child | 14755177 | US | |
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Child | 13178385 | US |