Dispenser with visual display system
The dispenser with a 360-degree light ring addresses the limitations of conventional systems by offering clear, continuous visual feedback on operation and composition levels, improving user interaction and reducing costs.
Patent Information
- Application Number
- JP2022543162
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-01-15
- Filing Date
- 2021-01-11
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2041-01-11
AI Technical Summary
Conventional dispensing systems fail to effectively notify users about the active release of compositions and their ongoing effectiveness, often relying on small, difficult-to-see visual indicators like LEDs, which are expensive and easily concealed by sprays, and do not provide continuous feedback on composition levels.
A dispenser with a light ring that extends around the body, emitting different visual indications in various states, including a 360-degree view, to inform users about the operational status and composition levels.
Provides intuitive and continuous visual feedback on the dispenser's operation and composition levels, enhancing user experience by ensuring visibility from multiple angles and reducing manufacturing complexity and cost.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims priority to U.S. Patent Application No. 16 / 743,933, filed January 15, 2020, the entire contents of which are incorporated herein by reference for any and all purposes.
[0002] FIELD OF THE DISCLOSURE The present disclosure relates generally to systems for dispensing compositions, and more particularly to dispensers that use an indication system to generate indicators of use and efficacy. [Background technology]
[0003] Consumer product users typically purchase compositions to perform specific household chores. For example, a user may want to spray a pest control agent inside or outside the home to control pests. Alternatively, a user may purchase an air freshener device to fragrance and / or deodorize the home. In some cases, it is desirable to immediately dispense a composition, e.g., dispense a pest control composition onto or into an area of pests to control, repel, or eliminate the pests. In other instances, it is desirable to dispense a composition over an extended period of time to achieve a desired result, e.g., dispense a fragrance composition, deodorizer, or odor neutralizer into a room of the home to continuously provide a pleasant scent or eliminate odors. In still other instances, it is desirable to dispense a composition that provides both immediate results followed by the extended action of the same or another composition to achieve long-term results.
[0004] One particular obstacle with conventional dispensing systems is notifying the user that the composition has been actively released along with notification that the composition continues to provide the desired effect for a period of time after the initial release (e.g., passive release). Furthermore, conventional dispensing systems generally do not provide an indication of a low composition level, so the user may not realize that the dispensing system has run dry. Some prior art systems provide an initial indicator that the composition is in use when the system is first turned on, set up, or presented to the user during the first use phase. In some cases, notification is provided to the user via an audible indicator. In other instances, notification is provided to the user via a visual indicator.
[0005] However, problems arise with the use of some visual and audible indicators. For example, in some cases, the audible and visual indicators are temporary and generally do not provide the user with an indication of ongoing effectiveness. In other cases, the visual indicator is electronic and is provided in the form of an LED or other light. In these systems, the LED is typically provided as a very small light bulb that flashes rapidly to indicate use. Due to the size limitations of the light bulb, the light bulb may be difficult for some people to see. Additionally, light bulbs are more expensive, adding additional complexity and expense to the system's manufacturing process.
[0006] In other systems, a spray may be produced during operation. The spray may provide a visual indicator of the active emission status of the system. Unfortunately, many systems spray into a housing that covers the spray, thereby concealing the visual indicator.
[0007] Therefore, there is a need for a system that provides an effective indication to the user, and more preferably, a system that notifies the user of the system's emission status. It is desirable that the system use visual indicators to communicate the system's operation and effects to the user. Summary of the Invention
[0008] According to one embodiment, a light ring for a flowable medium dispenser includes an annular shape and is coupled to a body of the dispenser.
[0009] According to another embodiment, a dispenser includes a container configured to hold a flowable medium and a mechanism for dispensing the flowable medium. The dispenser is configured to be in a first operational state or a second operational state. The light ring is configured to emit a first visual indication when the dispenser is in the first operational state and to emit a second visual indication when the dispenser is in the second operational state.
[0010] According to yet another embodiment, the visual indicator for the fluid medium dispenser is a light that extends around the entire periphery of the body of the fluid medium dispenser, and the visual indicator is configured to emit at least two different visual indications.
[0011] According to another embodiment, a method of operating a fluid medium dispenser includes providing power to a fluid medium dispenser including a visual indicator, the visual indicator being a light ring configured to extend around a circumference of the fluid medium dispenser, and dispensing a fluid medium. The visual indicator is also configured to emit at least two different visual indications. [Brief explanation of the drawings]
[0012] [Figure 1] 1 is a front isometric view of a dispensing system including a dispenser and a container according to one embodiment of the present disclosure. [Figure 2] FIG. 2 is an exploded front isometric view of the dispensing system of FIG. 1. [Figure 3] FIG. 2 is an exploded rear isometric view of the dispensing system of FIG. 1. [Figure 4] FIG. 2 is a front isometric view of the top of the housing of the dispenser of FIG. 1. [Figure 5] FIG. 5 is another front isometric view of the top of FIG. 4. [Figure 6] FIG. 2 is a front isometric view of the lower portion of the housing of the dispenser of FIG. 1. [Figure 7] FIG. 7 is a rear isometric view of the lower portion of FIG. 6. [Figure 8] 2 is a rear isometric view of the dispenser of FIG. 1 including the top cover, control ring, and visual indicators. [Figure 9] FIG. 9 is a partial isometric view of the dispenser of FIG. 8 with the top cover and control ring removed. [Figure 10] FIG. 1 is a schematic diagram of a visual indicator according to one embodiment of the present disclosure. [Figure 11] FIG. 10 is a schematic diagram of a visual indicator according to another embodiment of the present disclosure. [Figure 12] FIG. 10 is a schematic diagram of a visual indicator according to yet another embodiment of the present disclosure. [Figure 13] FIG. 9 is a front isometric view of the visual indicator of FIG. 8. [Figure 14] 1 is a schematic diagram of a dispenser and a visual indicator according to one embodiment of the present disclosure. [Figure 15] 10 is a schematic diagram of a dispenser and a visual indicator according to another embodiment of the present disclosure. [Figure 16] 10 is a schematic diagram of a dispenser and a visual indicator according to yet another embodiment of the present disclosure. [Figure 17] 10 is a schematic diagram of a dispenser and a visual indicator according to yet another embodiment of the present disclosure. [Figure 18] 10 is a schematic diagram of a dispenser and a visual indicator according to another embodiment of the present disclosure. [Figure 19] 10 is a schematic diagram of a dispenser and a visual indicator according to yet another embodiment of the present disclosure. [Figure 20] FIG. 9 is a front isometric view of the dispenser of FIG. 8 with the top cover removed. [Figure 21] FIG. 9 is a front isometric view of the control ring of FIG. 8. [Figure 22]FIG. 22 is a top view of the control ring of FIG. 21. [Figure 23] FIG. 22 is a left side view of the control ring of FIG. 21. [Figure 24] FIG. 22 is a rear view of the control ring of FIG. 21. [Figure 25] FIG. 9 is a front isometric view of the top cover of FIG. 8. [Figure 26] FIG. 26 is a top view of the upper cover of FIG. 25. [Figure 27] 27 is a cross-sectional view of the upper cover taken along line 27-27 in FIG. 26. [Figure 28] FIG. 2 is a left side view of the dispensing system of FIG. 1. [Figure 29] FIG. 2 is a top view of the dispensing system of FIG. 1. [Figure 30] 30 is a cross-sectional view of the dispensing system taken along line 30-30 of FIG. 29. [Figure 31] 1 is a schematic diagram of a dispensing system according to one embodiment of the present disclosure. [Figure 32] 10 is a graph illustrating visual feedback from a visual indicator of a dispensing system when the dispenser enters an on state, according to one embodiment of the present disclosure. [Figure 33] 10 is a graph illustrating visual feedback from a visual indicator of a dispensing system in response to changes in dispense intensity, according to one embodiment of the present disclosure. [Figure 34] 10 is a graph illustrating visual feedback from a visual indicator of a dispensing system when the dispensing system enters a sleep state, according to one embodiment of the present disclosure. [Figure 35] 10 is a graph illustrating visual feedback from a visual indicator of a dispensing system when a container of the dispensing system enters a low state, according to one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0013] The present disclosure generally relates to a dispenser for dispensing a fluid medium. For purposes of discussion herein, a specific exemplary embodiment will be described using an aerosol-based volatile active agent-containing composition. However, it should be understood that the disclosed system, whether described in relation to an aerosol, volatile material, composition, etc., is not limited thereto and can be used with any number of liquids or fluids that can be released by one or more of an aerosol system, a compressed gas system, a pump-type sprayer system, or any other means known to those skilled in the art.
[0014] The dispensers described herein may be used as plug-in devices configured to be inserted into a powered outlet. Alternatively, aspects disclosed herein may be used in alternative dispensers, such as dispensers that are stand-alone or handheld devices powered by a battery. FIGS. 1-30 illustrate one particular embodiment of a dispenser assembly 100 according to the present disclosure. Referring to FIG. 1 , the dispenser assembly 100 generally comprises a dispenser 102 including a housing 104 having an internal cavity 106 for receiving a flowable medium container 108 and a diffusing element 110 (see, e.g., FIG. 9 ) disposed within the housing 104. The container 108 may be similar in structure and function to the container disclosed in U.S. Patent Application No. 16 / 045,165, filed July 25, 2018, the disclosure of which is incorporated by reference in its entirety. Alternatively, the container 108 may be refillable or may be filled without removing and replacing the container. The diffusion element may also be a heater, a fan, a piezoelectric element, or any other diffusion element known in the art. The diffusion element may be similar in structure and function to the heater arrangement disclosed in U.S. Patent Application No. 2006 / 0109904, entitled "Dispenser with Improved Heater Arrangement," filed on the same day as the present disclosure and incorporated herein by reference in its entirety. The dispenser 102 further includes a top cover 112, a visual indicator 114, a control dial 116, and a selective switch 118. As shown in the exploded view of FIG. 2, each of the top cover 112, the control dial 116, the visual indicator 114, and the housing 104 are configured to be assembled together. When assembled, the dispenser 102 defines a longitudinal axis 120.
[0015] 3, the housing 104 of the dispenser 102 includes an upper casing 124 and a lower casing 126 that are generally configured to attach to one another and define an interior cavity 106. The upper casing 124 and the lower casing 126 may be formed of a thin-walled plastic material and may be formed using known manufacturing methods such as thermoforming or injection molding. Also, while the housing 104 according to this embodiment includes two components, the upper casing 124 and the lower casing 126, it should be understood that dispensers according to alternative embodiments may have housings that include more or fewer components.
[0016] 4 and 5 show isometric views of the upper casing 124. Referring particularly to FIG. 5, the upper casing 124 includes a first wall 128 having a second wall 130 and a third wall 132 extending from opposing edges thereof. Each of the first wall 128, second wall 130, and third wall 132 is substantially planar, and the second wall 130 and third wall 132 extend substantially perpendicularly from the first wall 128. The fourth wall 138 opposes the first wall 128 and extends from the second wall 130 to the third wall 132. The fourth wall 138 is substantially semi-cylindrical, thereby defining a curved front face 142 opposite a planar back face 144 defined by the first wall 128. Each of the first wall 128 , second wall 130 , third wall 132 , and fourth wall 138 are integrally formed to define the interior cavity 106 .
[0017] 4, the upper casing 124 of the housing 104 further includes a circular receiving aperture 146 disposed at a first upper end 148 thereof. An inwardly extending lip 152 extends from the upper casing 124 at the first upper end 148 to define the circular receiving aperture 146. Additionally, an upwardly extending lip 154 extends from the first upper end 148 adjacent the planar back surface 144. The upper casing 124 further includes a second upper end 156 defining a lower edge 158. As best seen in FIG. 5, the lower edge 158 includes a semicircular edge 160, first and second linear edges 162, 164 extending from opposite ends of the semicircular edge 160, and a curved edge 166 extending between the first and second linear edges 162, 164. A first semi-cylindrical extension 168 extends from the semi-circular edge 160 to define a first semi-cylindrical chamber 170. A first linear edge 162 and a second linear edge 164 extend from the semi-circular edge 160 and include a first latch 172 and a second latch 174, respectively. The first latch 172 and the second latch 174 extend substantially perpendicularly from the first linear edge 162 and the second linear edge 164, respectively, and are substantially flush with the second wall 130 and the third wall 132, respectively. Furthermore, the first latch 172 and the second latch 174 are configured to mate with a first latch receiving structure 176 and a second latch receiving structure 178, respectively, on the lower casing 126 of the housing 104 (see, e.g., FIG. 7 ), which are described below.
[0018] With particular reference to FIG. 4 , the upper casing 124 according to the illustrated embodiment may further include a raised frame 182 extending from its second wall 130 to define a switch opening 184. In some embodiments, as shown in FIG. 5 , an optional switch cover 186 may be provided within the raised frame 182 and configured to connect to a first switch arm (not shown) of the diffusion element 110 (see, e.g., FIG. 9 ) and provide certain controls, such as a timer to automatically turn the dispenser on or off. For example, a user may turn on the switch to implement a sleep state period in which the dispenser 102 may automatically switch from an on state to a sleep state after a set time (e.g., 16 hours), as described in more detail herein. The dispenser 102 may be held in a sleep state in which it does not actively dispense any flowable medium or dispenses a very small amount of flowable medium for a set period of time (e.g., 8 hours) before the dispenser 102 returns to the on state.
[0019] 6 and 7 show front and rear isometric views, respectively, of lower casing 126. Lower casing 126 includes a cylindrical central portion 192 defining a channel 194 at a lower first end 196 having a downwardly extending fastening portion 198 (see, e.g., FIG. 30 ). Two extension guide posts 202 extend outwardly from lower first end 196 of lower casing 126 and are generally parallel to longitudinal axis 120. A wall 204 extends from lower second end 206 thereof to a semicircular edge 208, and a second semicylindrical extension 210 extends from semicircular edge 208 to define a second semicylindrical chamber 212. Further, with particular reference to FIG. 7, the second semi-cylindrical extension 210 of the lower casing 126 includes a first latch receiving structure 176 and a second latch receiving structure 178 configured to receive and secure the first latch 172 and the second latch 174, respectively, of the upper casing 124 (see, e.g., FIG. 4).
[0020] Returning to FIG. 3 , the upper casing 124 and the lower casing 126 are configured to be attached to one another. More specifically, the upper casing 124 is configured to receive the extended guide post 202 of the lower casing 126, and the first latch 172 and the second latch 174 of the upper casing 124 are configured to be secured to the first latch receiving structure 176 and the second latch receiving structure 178 of the lower casing 126, respectively. As a result, the first semi-cylindrical extension 168 and the second semi-cylindrical extension 210 create a cylindrical extension 216, thereby defining a cylindrical receiving chamber 218 configured to receive and retain a plug assembly 220 therein. As best seen in FIG. 8 , the plug assembly 220 extends from the cylindrical receiving chamber 218 defined by the upper casing 124 and the lower casing 126 of the housing 104. The plug assembly 220 includes two electrical prongs 222 configured to be inserted into a conventional electrical outlet. Although plug assembly 220 is shown as being a typical U.S. plug assembly, plug assemblies suitable for use in other countries may be used. Additionally, plug assembly 220 may include any features known in the art, for example, plug assembly 220 may be partially or fully rotatable, similar to the plug assemblies disclosed in U.S. Patent No. 8,821,171, filed September 22, 2011, and U.S. Patent No. 8,858,236, filed October 28, 2011, the disclosures of which are incorporated by reference in their entireties.
[0021] Referring to FIG. 9 , the upper casing 124 of the housing 104 may be configured to receive, couple to, or abut the visual indicator 114 at the first top end 148 of the housing. In the illustrated embodiment, the visual indicator 114 is a light ring 224 that can provide a 360-degree visual display to the user. The light ring 224 generally includes an annular body 226 configured to transmit light from a light source therethrough. For example, as shown in the illustrated embodiment, the light ring 224 may be a solid ring made of a translucent material, such as acrylic or polycarbonate, preferably configured to transmit light from one or more LEDs 228. In the illustrated embodiment, the LEDs 228 are disposed at the first top end 148 of the upper casing 124 of the housing 104, with the light ring 224 configured to be positioned at the top of the light-emitting portion thereof. Thus, the light ring 224 is separable from the housing 104 and configured to transmit or diffuse light from the LEDs 228.
[0022] 10-12 illustrate schematic cross-sectional views of a light ring 224 according to an embodiment of the present disclosure. Referring to FIG. 10, the light ring 224 is shown as described above in connection with FIG. 9 having a solid annular body 226 disposed over an LED 228. Referring now to FIG. 11, in some embodiments, the annular body 226 of the light ring 224 can be configured to partially surround an LED 228 disposed in the first upper end 148 of the upper casing 124 (see, e.g., FIG. 9). That is, the annular body 226 of the light ring 224 can include an annular channel 230a provided along its length configured to at least partially receive, cover, or surround the light-emitting portion of the LED 228. In this case, the light ring 224 can be configured to snap into the housing 104 (see, e.g., FIG. 9). Also, in an alternative embodiment, referring to FIG. 12, the annular body 226 of the light ring 224 can be hollow to define an annular cavity 230b configured to at least partially receive the LED 228 therein. Thus, the light ring 224 may substantially surround the light-emitting portion of the LED 228. In any of the above examples, the annular body 226 may be an integrally formed component or may include two or more separable components. While the visual indicator 114 in the above-described embodiment is an LED light ring, dispensers in other embodiments may use different visual indicators, such as an LED light strip, multiple individually received LED lights, or a single LED. Furthermore, visual indicators in additional embodiments may include incandescent, halogen, or fluorescent bulbs, or any combination of incandescent, fluorescent, and LED bulbs. It is also contemplated that the annular body 226 may house a light-emitting structure, such as tape, paint, or other artificial light-emitting article. In other embodiments, natural light-emitting structures or organisms may be provided within the annular body 226.
[0023] As best seen in FIG. 13 , in this embodiment, the visual indicator 114 includes an annular body 226 having two securing legs 232 extending from opposing sides substantially parallel to the longitudinal axis 120. The annular body 226 may be transparent or translucent to amplify, project, or diffuse light from an LED 228 disposed adjacent thereto. As described below, the securing legs 232 are configured to be received by a portion of the upper casing 124 for securing purposes, although the light ring 224 may be attached to or coupled to the housing 104 in other ways. For example, in some embodiments, the light ring 224 may include female threads disposed on its surface configured to engage and mate with male threads disposed on the upper casing 124 at the first upper end 148. In some embodiments, the light ring 224 may be configured to be received by a recess defined by the upper casing 126 and / or to be secured in place with a fastener. In some embodiments, the light ring 224 may include an extension configured to be received by an opening in the upper casing 126 and snap into place. In some embodiments, one or more latches may be used to secure the light ring 224 to the upper casing 126. Additionally, in some embodiments, the light ring 224 may be integrally formed with the housing 104 or may be bonded to the housing 104 using an adhesive. While the illustrated embodiment shows the visual indicator 114 with two securing legs 232, additional embodiments may use more, fewer, or no securing legs 232. The securing legs 232 may be configured to contact a power source that provides power to the light ring 224. Alternatively, the annular body 226 of the light ring 224 may be configured to directly contact a power source to power the light ring 224. Additionally, more securing legs 232 than shown may be used for holding or powering purposes. That is, in some embodiments, the light ring 224 may include one or more securing legs 232 configured to hold the light ring 224 and / or one or more securing legs 232 configured to contact a power source.
[0024] As described above, the light ring 224 in the illustrated embodiment may be configured to provide a 360-degree visual indication to the user. That is, the light ring 224 may be designed to be visible from all angles around the dispenser 102 (or axis 120), thereby providing a 360-degree effective viewing angle. This feature is particularly useful for improving the user experience because existing dispensers typically include few or no visual indicators. The visual indicators on existing dispensers are typically designed to be visible only from a specific or limited effective viewing angle (e.g., from the front). Therefore, it is difficult for users to determine the operating status of the dispenser. To remedy this problem, the light ring 224 according to embodiments of the present disclosure may provide a wide effective viewing angle. In some embodiments, the LEDs may be positioned adjacent to the light ring 224 along its entire circumference, while in other embodiments, the LEDs may be positioned adjacent to the light ring 224 along only a portion of the annular body 226. For example, the LEDs may be adjacent to the annular body 226 by 270 degrees. Preferably, the LEDs occupy at least 180 degrees of the annular body 226, although the LEDs may occupy 250, 210, 180, 140, 110, 90, 75, or 40 degrees of the annular body 226 in alternative embodiments.
[0025] Returning to FIG. 9 , the visual indicator 114 is configured to be secured to the first upper end 148 of the upper casing 124. More specifically, the securing legs 232 (see, e.g., FIG. 13 ) are configured to be retained within a receiving opening 234 defined by an inwardly extending lip 152 of the upper casing 124 (see, e.g., FIG. 4 ). The visual indicator 114 is configured to extend along the circumference of the circular receiving hole 146 of the upper casing 124, thereby extending approximately 360 degrees of the dispenser 102. While the visual indicator 114 is positioned at the first upper end 148 of the upper casing 124, as shown in FIGS. 14-17 , alternative embodiments may provide dispensers with visual indicators provided in different locations. For example, referring to FIG. 14 , according to one embodiment of the present invention, the visual indicator 114 may be positioned immediately below the first upper end 148 of the upper casing 124. 15 and 16, alternatively, the visual indicator 114 may be disposed between the first top end 148 and the second top end 156 of the upper casing 124. Referring to FIG. 17, the visual indicator 114 may be disposed at or adjacent to the second top end 156 of the upper casing 124. Also, as shown in FIGS. 18 and 19, in some embodiments, the visual indicator 114 may extend along a portion of the circumference of the circular receiving hole 146 of the upper casing 124. Rather, in some embodiments, the visual indicator 114 may include a curved body that extends along a portion of the circular receiving hole 146, such as, for example, 270, 250, 210, 180, 140, 110, 90, 75, or 40 degrees. Thus, the visual indicator may be sized to provide a particular useful viewing angle.
[0026] As shown in FIG. 20 , the control dial 116 is secured adjacent to the visual indicator 114. That is, the visual indicator 114 is configured to be secured between the control dial 116 and the upper casing 124 of the housing 104. FIGS. 21-24 show various views of the control dial 116. With particular reference to FIG. 21 , the control dial 116 is a substantially cylindrical component including an upper portion 236 and a lower portion 238 that define a hollow center 240. The upper portion 236 defines a first outer edge 242 and a first outer wall 244, while the lower portion 238 defines a second outer edge 246 and a second outer wall 248. As best seen in FIG. 22 , which shows a top view of the control dial 116, the first outer wall 244 has a diameter that is larger than the diameter of the second outer wall 248. Additionally, upper portion 236 is integrally secured to lower portion 238 by a plurality of radially extending ribs 250 extending therebetween.
[0027] 23 and 24 , the control dial 116 further includes a spirally extending slot 252, a third latch 254, and a fourth latch 256. The third latch 254 and the fourth latch 256 are provided to secure the control dial 116 to the housing 104 (see, for example, FIG. 20 ). While the illustrated embodiment shows the control dial 116 with the third latch 254 and the fourth latch 256 symmetrically positioned, additional embodiments may have more or fewer latches in various directions. The slot 252 is disposed within the lower portion 238 and extends spirally through the second outer wall 248. That is, a first slot end 258 of the slot 252 is disposed adjacent the second outer edge 246, and the slot 252 extends spirally toward the first outer edge 242 and a second slot end 260. In some cases, the slot 252 extends more than 90 degrees about the axis 120. Also, in some cases, slot 252 may extend more than 100 degrees about axis 120. Preferably, slot 252 extends between 90 and 180 degrees about axis 120. In the illustrated embodiment, slot 252 extends approximately 130 degrees about axis 120.
[0028] 25-27 show various views of the top cover 112. With particular reference to FIG. 25, the top cover 112 includes a circular wall 264 having an annular rim 266 extending from a periphery 268 thereof. The annular rim 266 includes a plurality of latches 270 configured to be received and secured by receptacles 272 on the control dial 116 (see, for example, FIG. 21). In the illustrated embodiment, the top cover 112 includes three latches 270, although alternative embodiments may include more or fewer latches.
[0029] 25-27 , the circular wall 264 of the top cover 112 includes an inner edge 274 disposed inwardly from a peripheral edge 268. As best seen in FIG. 27 , the peripheral edge 268 and the inner edge 274 are oriented in different planes such that the inner edge 274 defines the topmost portion of the top cover 112. In the illustrated embodiment, the inner edge 274 and the peripheral edge 268 are spaced apart by a distance h. In some cases, the distance h may be greater than 2 millimeters (“mm”). In some cases, the distance h may be greater than 8 mm. Furthermore, the circular wall 264 extends concavely from the peripheral edge 268 toward the inner edge 274. More specifically, the circular wall 264 extends downward in a first direction, e.g., concavely downward, toward a trough 276. From the trough 276, the circular wall 264 curves in a second direction, e.g., concavely upward, until it meets the inner edge 274. Thus, the circular wall 264 defines a curved wall, and the inner edge 274 defines a central aperture 278.
[0030] 26, the circular wall 264 further defines a plurality of holes 280 arranged about a central hole 278. In the illustrated embodiment, the plurality of holes 280 decrease in size as they are located farther from the central hole 278. That is, the plurality of holes 280 proximate the periphery 268 are smaller than the plurality of holes 280 proximate the inner edge 274. The plurality of holes 280 may be integrated to provide a venting function. Additional embodiments of the present disclosure may include top covers with more, fewer, or no holes in various designs and configurations.
[0031] 28 and 29 provide side and top views, respectively, of the dispenser assembly 100. FIG. 30 shows a cross-sectional view of the dispenser assembly 100 taken along line 30-30 in FIG. 29. As shown in FIG. 30, the channel 194 of the lower casing 126 is configured to receive the wick 286 of the container 108 therein, and the fastening portion 198 is configured to grip a portion of the container 108 to secure the container 108 therein. Additionally, the slot 252 of the control dial 116 is configured to receive an intensity switch arm 288 therein, which may be a component of the diffusion element 110. Thus, rotational movement of the control dial 116 results in translation of the intensity switch arm 288 in the axial direction defined by the axis 120, which results in activation or deactivation of an electronic control configured to control the dispensing intensity of a flowable medium held within the container 108. More specifically, if the diffusion element 110 includes a heater arrangement, the intensity switch arm 288 is configured to communicate with a controller (e.g., controller 292 of FIG. 31 ) to change the temperature of the heater. Additionally or alternatively, if the diffusion element 110 includes a fan device, the intensity switch arm 288 is configured to communicate with a controller (e.g., controller 292 of FIG. 31 ) to change the intensity of the fan device. Also, in other embodiments, the intensity switch arm 288 may control the proximity of the wick 286 to the diffusion element 110 by moving one or more of the diffusion element 110 or the wick 286, which may affect the dispense intensity of the flowable medium.
[0032] In the illustrated embodiment, for example, when the control dial 116 is rotated fully clockwise, the diffusion element 110 may operate at a lower intensity (e.g., the heater may operate at a lower temperature), and the dispenser 102 may dispense less flowable medium than if the control dial 116 were rotated fully counterclockwise. In an alternative embodiment, when the control dial 116 is rotated fully counterclockwise, the diffusion element 110 may operate at a lower intensity (e.g., the heater may operate at a lower temperature), and the dispenser 102 may dispense less flowable medium than if the control dial 116 were rotated fully clockwise. The dispenser assembly 100 may also be configured with multiple preset dispensing intensities that the intensity switch arm 288 is configured to achieve. For example, the diffusion element 110 may be configured to operate at three preset intensities: low, medium, and high. In embodiments in which the diffusion element 110 includes a heater, the heater may operate at a temperature associated with the preset intensity. When the control dial 116 is rotated fully clockwise so that the intensity switch arm 288 is positioned at the second slot end 260 (see, e.g., FIG. 24 ), the diffusing element 110 (e.g., heater) may operate at a low intensity (e.g., low temperature). When the control dial 116 is rotated so that the intensity switch arm 288 is positioned along the length of the slot 252 between the first slot end 258 and the second slot end 260 (see, e.g., FIG. 24 ), the diffusing element 110 (e.g., heater) may operate at a medium intensity (e.g., medium temperature). When the control dial 116 is rotated fully counterclockwise so that the intensity switch arm 288 is positioned at the first slot end 258 (see, e.g., FIG. 24 ), the diffusing element 110 (e.g., heater) may operate at a high intensity (e.g., high temperature). It is contemplated that as the control dial 116 is rotated clockwise and / or counterclockwise, the intensity of the diffusing element 110 may be gradually increased or decreased, which may include more or fewer discrete steps in the change in intensity.In some embodiments, it is contemplated that the control dial 116 may provide a continuous change in intensity, including discontinuous changes in intensity, that may be seen as providing a spectrum between off intensity and full intensity, while being relatively imperceptible to the user.
[0033] The dispenser 102 according to this embodiment may further include a sensor 290 configured to monitor the fill level of the container 108. In the illustrated embodiment, the sensor 290 is a capacitance sensor, but the sensor 290 may be any type of sensor commonly used in the art to measure fluid levels, such as a magnetic or mechanical float, a pressure sensor, or an optical sensor. The sensor 290 is configured to monitor and communicate the fill level of the flowable medium in the container 108. That is, with reference to FIG. 31 , the sensor 290 may communicate the fill level of the container 108 to a controller 292, which may adjust the brightness intensity, pulse (or blink) frequency, and / or color of the visual indicator 114 on the dispenser 102 to visually indicate the fill level of the dispenser. Additionally or alternatively, in some embodiments, the dispenser 102 may include one or more sensors configured to monitor various parameters. For example, in some embodiments, the sensor may be used to communicate changes in dispensing intensity to the controller, which may adjust the visual indicator 114. Additionally, in some embodiments, sensors may be used to monitor and communicate the power status of the dispenser.
[0034] As described above, dispensing systems according to embodiments of the present disclosure are intended to provide an interactive and intuitive display to a user. Accordingly, dispensers according to embodiments of the present disclosure may integrate a visual indicator, such as visual indicator 114 shown in FIGS. 1-30 , to provide visual feedback to a user. Generally, visual indicators according to embodiments of the present disclosure are configured to provide a visual display or feedback sequence defined by certain parameters, such as color, brightness, pulsing, and flashing. Accordingly, visual indicators according to embodiments of the present disclosure are generally configured to provide at least one color, brightness, pulse sequence, and / or flash sequence. In some embodiments, a visual indicator may be configured to emit at least two colors. That is, a visual indicator may be configured to switch between two colors. In some embodiments, a visual indicator may be configured to emit at least two brightness intensities. Also, in some embodiments, a visual indicator may be configured to emit at least two pulse (or flash) sequences.
[0035] 32-35 illustrate examples of visual indication or feedback sequences according to embodiments of the present disclosure. For purposes of illustration, a dispenser is considered to be in an on state when power is applied to the dispenser. That is, if the dispenser has a diffusion element that includes a powered component, such as a fan or heater, the powered component is powered or operable for its intended use when the dispenser is in the on state. Conversely, if the dispenser, and thereby the powered component, is not powered or not operating for its intended use, the dispenser is considered to be in an off state. Also, if the dispenser includes a visual indicator, the visual indicator is generally not powered when the dispenser is in the off state. When the powered component is not operating for its intended use, the dispenser may be in a sleep state but still provide a visual indication. For example, in embodiments in which the diffusion element includes a heater, the heater may be powered off or in a low-power mode when the dispenser is in a sleep state. Generally, when in the sleep state, the powered components temporarily do not operate for their intended use or dispense a small amount of flowable medium, but the visual indicator may still actively provide a visual indication. That is, the visual indicator is powered even in the sleep state. As described above, dispensers according to embodiments of the present disclosure may include the ability to automatically switch to a sleep state period. For example, a switch may be activated that initiates a sleep state period in which the dispenser is on for 16 hours of the day and automatically switches to a sleep state for 8 hours. After remaining in the sleep state for 8 hours, the dispenser may automatically return to the on state. When dispensers according to embodiments of the present disclosure switch between the above-mentioned states, the visual indicator may emit a visual indication or feedback sequence. Furthermore, the visual indicator may emit different visual indications or feedback sequences during each of the on state, off state, and sleep state, as described in more detail below.
[0036] Also, again for purposes of explanation, a container attached to a dispenser and holding a flowable medium, such as the container 108 shown in FIG. 1, is in a filled state when it has a predetermined minimum amount of flowable medium held therein or greater. In some cases, the predetermined minimum may be 25% of the interior volume of the container 108. For example, the predetermined minimum may be 10% of the interior volume. This predetermined minimum may vary from 0% to 99% of the interior volume. In some cases, the predetermined minimum may be a percentage reduction in the volume of flowable medium held in the container 108. For example, the predetermined minimum may be when 75%, 80%, or 85% of the flowable medium has been dispensed from the interior volume of the container 108. When the container has less than the predetermined minimum amount of flowable medium held therein, the container is in a low state. For example, if a dispenser has a predetermined minimum of 15% of the interior volume of the container, the container is in a filled state when the flowable medium occupies at least 15% of the interior volume, and the container is in a low state when the flowable medium occupies less than 15% of the interior volume. As yet another example, if the dispenser has a preset minimum value of 90% reduction in the volume of flowable medium held in the container, the container is in a filled state when the volume reduction of the flowable medium is 90% or less, and in a low state when the volume reduction of the flowable medium is more than 90%. Similar to the on, off, and sleep states described above, a visual indicator may emit a visual indication or feedback sequence when a container of a dispenser according to embodiments of the present disclosure switches between the aforementioned states, or in a similar manner. Also, the visual indicator may emit a different visual indication or feedback sequence when the container is in either a filled state or a low state, as will be described in more detail below.
[0037] FIG. 32 illustrates an exemplary visual display or feedback sequence of a visual indicator when a dispenser switches from an off state to an on state, according to one embodiment of the present disclosure. In the off state, the visual indicator is not powered and therefore no visual display is provided. When the dispenser is plugged in (or powered on), the visual indicator may emit a first visual display. The first visual display may be a feedback flash. For example, the visual indicator may provide two consecutive 0.25-second flashes (ab seconds and cd seconds) in which the visual indicator may have a brightness of "W" lux. However, it is contemplated that the duration of the flashes may vary. After completing the feedback flash, the visual indicator may emit a second visual display (d seconds). The second visual display may be a steady-state brightness in which the visual indicator emits a particular brightness of "X" lux. In the illustrated embodiment, the steady-state brightness of "X" lux is less than the feedback flash of "W" lux, although in alternative embodiments, "X" lux may be equal to or greater than "W" lux. Additionally, the steady-state brightness and feedback flash may be adjusted to suit user preferences. While the visual indication sequence shown in Figure 32 relates to a change in brightness (or lux) when the dispenser switches from an off state to an on state, dispensers according to other embodiments of the present disclosure may use different types of visual indications, such as flashing, pulsing, changing color, or various light patterns when switching from an off state to an on state. Similarly, while Figure 32 shows a constant brightness (or lux) when the dispenser is in the on state, dispensers according to alternative embodiments may pulse, flash, change color, or produce various light patterns when in the on state.
[0038] FIG. 33 illustrates another exemplary visual display or feedback sequence of a visual indicator when (or as) a control dial, such as control dial 116 of FIGS. 21-24, is adjusted. First, the visual indicator may emit a steady-state brightness of "X" lux because the dispenser is on. When (or as) the control dial is rotated counterclockwise, i.e., to increase dispensing intensity, the visual indicator may synchronously increase in brightness until (e.g., as) the dial is stopped from rotating (e.g., as). In the illustrated embodiment, the brightness gradually and continuously increases from "X" lux to "Y" lux. Additionally or alternatively, the brightness of the visual indicator may increase in steps from "X" lux to "Y" lux to appear continuous, or may increase in a stepwise manner where it is apparent that the user is switching to another discrete brightness level. After the dial is rotated, the visual indicator may hold a brightness of "Y" lux for fg seconds, e.g., 0.95 seconds, before providing a feedback flash of "W" lux as described above (gh and ij seconds). The visual indicator may then return to a steady-state brightness of "X" lux (k seconds). While the visual indication sequence shown in FIG. 33 relates to a change in brightness (or lux) as the dispenser's dispensing intensity changes, dispensers according to other embodiments of the present disclosure may use different types of visual indications when (or as) the dispensing intensity changes, such as flashing, pulsing, changing color, or various light patterns. Also, while FIG. 33 illustrates a visual indication when the dispenser's dispensing intensity increases, it should be understood that this exemplary visual indication is also applicable when the dispenser's dispensing intensity decreases in the same or related manner. For example, as the dispenser's dispensing intensity decreases, the visual indicator may decrease in brightness during an ef period, hold the brightness constant during an fg period, provide a feedback flash during a gh and ij period, and then return to a steady-state brightness of "X" lux in k seconds (see FIG. 33).
[0039] FIG. 34 illustrates yet another exemplary visual display or feedback sequence for a visual indicator when (or upon) the dispenser enters a sleep state. As described above, the dispenser may be configured to automatically enter a sleep state after a set time has elapsed. When (or upon) the dispenser enters a sleep state, the visual indicator may provide a feedback flash. More specifically, the visual indicator may flash twice at a steady-state brightness of “X” lux for a duration of m-1 seconds and on seconds, or approximately 0.25 seconds. After providing the feedback flash, the visual indicator may slowly pulse for the duration of the sleep state. That is, the visual indicator may gradually decrease in brightness from “X” lux until it no longer emits light (op seconds), and then gradually increase in brightness until it reaches “Z” lux (qr seconds). The visual indicator may repeat this process throughout the sleep state. In the illustrated embodiment, it may take approximately 8 seconds to decrease the brightness of the visual indicator (op seconds). The visual indicator may then proceed without emitting light for approximately qp seconds (e.g., 3 seconds), and then gradually increase to "Z" lux over 8 seconds (qr seconds). In the illustrated embodiment, "Z" lux is less than "X" lux, however, in other embodiments, "Z" lux may be equal to or greater than "X" lux. Also, in some embodiments, "Z" lux may be approximately 50% of "X" lux. Also, "Z" lux may be less than 40%, 60%, or 70% of "X" lux. The visual indicator then repeats this process until the dispenser is switched to the on state. Furthermore, although the visual display sequence shown in FIG. 34 relates to a change in brightness (or lux) as the dispenser enters a sleep state, dispensers according to other embodiments of the present disclosure may use different types of visual indications, such as flashing, pulsing, color changes, or various light patterns, when switching to and remaining in a sleep state (or remaining in a sleep state).
[0040] Dispensers according to embodiments of the present invention may also be configured to provide a visual indication when a container enters a low state. With particular reference to FIG. 35 , the visual indicator may emit a first visual indication when the container is in a full state and a second visual indication when the container is in a low state. For example, the first and second visual indications may be different colors, different brightnesses, or different pulse / flash sequences. Additionally or alternatively, the visual indicator may rapidly pulse or flash when the container is in or entering a low state. It is also contemplated that a visual indicator related to the container's fill state may only be provided when the container enters a low state, with no additional visual indicators beyond those previously discussed being provided for other operating parameters. The dispenser may also be configured to automatically turn off when the container remains in a low state for a certain period of time. That is, after being in a low state for a certain period of time (e.g., 1 hour), the entire dispenser, including the powered components of the diffusion element and visual indicators, will not receive power until the container is replaced with a refill container, the container is filled, or the dispenser is reset (e.g., unplugged). [Industrial Applicability]
[0041] Numerous variations on the present invention will be apparent to those skilled in the art in light of the foregoing description. Accordingly, this description 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 invention and to teach the best manner of doing so. The exclusive rights to all modifications that come within the scope of the appended claims are reserved.
Claims
1. 1. A visual indicator for a flowable medium dispenser, comprising: the visual indicator is a light ring extending around a periphery of the body of the fluid medium dispenser and about a central axis of the body extending through a central aperture, the light ring being configured to emit at least two different visual indications; In a use configuration, the reservoir of the fluid medium dispenser is configured to be positioned entirely below the light ring; The light ring is annular in shape and surrounds the central hole. Visual indicator.
2. 2. The visual indicator of claim 1, wherein the fluid medium dispenser is configured to be in a first operational state or a second operational state, and the light ring is configured to emit a first visual indication when the fluid medium dispenser is in the first operational state and to emit a second visual indication when the fluid medium dispenser is in the second operational state.
3. The visual indicator of claim 1 , wherein the light ring includes a plurality of LED lights.
4. The visual indicator of claim 1 , wherein the light ring includes an annular hollow body defining a channel that at least partially receives at least one LED.
5. The visual indicator of claim 1 , wherein the light ring is configured to emit at least two different light intensities.
6. The visual indicator of claim 1 , wherein the light ring is configured to provide at least two different pulse patterns.
7. The visual indicator of claim 1 , wherein the light ring is configured to provide at least two different colors.
8. 1. A method of operating a flowable medium dispenser, comprising: providing a power source to a fluid medium dispenser defining an axis and including a visual indicator, a housing having an exterior surface facing the ambient environment, and a central bore; dispensing a flowable medium through the central aperture; Including, the visual indicator is a light ring extending around the periphery of the body of the fluid medium dispenser, the light ring being annular in shape and surrounding the central hole; the visual indicator emits light radially outward from an exterior of the housing through an annular body adjacent the exterior surface, the visual indicator being configured to emit at least two different visual indications; In a use configuration, the reservoir of the fluid medium dispenser is configured to be positioned entirely below the light ring. method.
9. 9. The method of claim 8, wherein the fluid medium dispenser further comprises a diffusion element, the diffusion element configured to be powered by a power source, and the light ring configured to emit a first visual indication when the diffusion element is powered.
10. 10. The method of claim 9, wherein the light ring is configured to emit a second visual indication when the diffusing element is not powered.
11. 11. The method of claim 10, further comprising providing a sleep state period, wherein the light ring is configured to emit a third visual indication during the sleep state period.
12. The method of claim 11 , wherein the third visual representation is different from the first visual representation and the second visual representation.
13. 13. The method of claim 12, further comprising detecting a low-fill condition of the flowable medium, the light ring being configured to provide a fourth visual indication when a low-fill condition is detected.
14. The method of claim 13 , wherein the fourth visual indication is different from the first visual indication, the second visual indication, and the third visual indication.
15. The method of claim 8 , wherein the light ring is configured to emit at least two different visual indications across at least 180 degrees of the circumference of the fluid medium dispenser.
16. The method of claim 8 , wherein the light ring includes an annular hollow body defining a channel that at least partially receives at least one LED.
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