This application is a national stage filing of PCT International Application Serial No. PCT/US2016/026677, filed Apr. 8, 2016, the disclosure of which is hereby expressly incorporated by reference herein in its entirety. This application also claims priority to the following applications, the disclosures of which are hereby expressly incorporated by reference herein in their entirety:
The present disclosure relates to a water sprayer and various features thereof. More particularly, the present disclosure relates to a water sprayer for use in a pool, and to a method for using the same.
There are many ways to enhance pool recreation. One such way is the use of a water spraying mechanism or a water sprayer. Water sprayers can include various structures and offer various forms of functionality. Existing water sprayers, however, are simple in both structure and function.
For example, water sprayers can include a light source (e.g., LED) to offer an LED illumination function. Existing water sprayers have an LED illumination function powered by batteries. But such a mechanism is inconvenient, as it requires regularly replacing batteries. Other existing water sprayers offering an LED illumination function are driven by water flow generator mechanisms that supply power to the LED, where water flow rotates a rotor to produce a current and a corresponding voltage. The voltage and current supplied by these water flow generator mechanisms, however, are dependent on water pressure and water flow rate. Thus, when the water pressure and water flow rate generate voltage and current higher than the rated voltage and rated current of the LED, the LED may burn out. Correspondingly, where the water pressure and water flow rate are low, the water flow generator mechanism produces current insufficient to meet the need of the lighting device, thus shortening the useful life of the LED.
Water sprayers can also be structured to produce a water sheet output (i.e., a water sheet sprayer). To form a water sheet output, water sheet sprayers generally have an outlet structure with an elongated opening. However, due to traditional piping structures and water viscosity properties, existing water sheet sprayers suffer from uneven and irregular water flow at the output, which affects the appearance and comfort of the water sheet. Oftentimes, instead of a water sheet output, the result is a water output in the shape of a flat ellipse. These disadvantages are heightened in situations in which the size of the outlet structure is significantly larger than the size of the inlet structure.
In view of these disadvantages, it would be beneficial to have a water sprayer with illumination functionality independent of water pressure and water flow rate. Furthermore, it would also be beneficial to have a water sheet sprayer with improved and consistent water flow.
The present disclosure provides a water sprayer, various water sprayer features, and further relates to methods for using the same. Various configurations of the water sprayer are contemplated as within the scope of the present disclosure. Each water sprayer may include a water output mechanism and a light source that is powered by flowing water to illuminate the sprayed water.
According to one embodiment of the present disclosure, a water sprayer comprises a spraying cover further comprising a sealing element, wherein the sealing element is disposed in the spraying cover, and an adjusting valve, wherein the adjusting valve is rotatably accommodated in the spraying cover and cooperated with the sealing element to close the outlet of the spraying cover, and is disposed with a water spout passage and a water curtain passage, and is further disposed with a handle, wherein when the adjusting valve is rotated, the sealing element closes the water spout passage or the water curtain passage, or the sealing element opens the water spout passage and the water curtain passage at the same time.
According to another embodiment of the present disclosure, a water sprayer comprises an outlet component disposed at an outlet end of an outlet waterway, a decompression waterway connected to the outlet waterway, an elastic element, and a valve spool to open and close the decompression waterway, wherein the elastic element applies elastic force on the valve spool to make the valve spool close the decompression waterway, and when the pressure valve of the waterway to the valve spool is larger than the elastic force of the elastic element to the valve spool, the valve spool is pushed away, and the decompression waterway is open.
According to a further embodiment of the present disclosure, a water sprayer comprises a main body, a cover plate, a water pipe, and a rectifying chamber, wherein a front end of the main body cooperates with the cover plate and forms an elongated outlet extending in the horizontal direction, a rear end of the main body is disposed with an inlet connected to the water pipe, the main body is assembled to the cover plate to define a hollow chamber connecting the inlet and the outlet, the rectifying chamber is assembled to the end of the hollow chamber and is connected to the outlet, the rectifying chamber has wavy sub-hollow chamber.
According to another embodiment of the present disclosure, a water sprayer end comprises an outlet nozzle, wherein the outlet nozzle is bilaterally symmetrical and the width of the outlet nozzle is gradually larger from the center to both outer ends, the outlet nozzle has a closed elongated hole comprising a lateral straight line section, a curve line section, a left connecting line section, and a right connecting line section when projected or expanded in the horizontal plane, and wherein water sprays out of the outlet nozzle to form a water sheet of even thickness.
According to a further embodiment of the present disclosure, an impeller speed-up mechanism comprises a deflecting cover, and an impeller, wherein the deflecting cover is disposed with an inlet passage running through the deflecting cover vertically, the impeller is rotatably disposed in the inlet passage, the outer periphery surface of the impeller is disposed with a plurality of blades evenly arranged in the periphery and inclined to the left with respect to the axis of the inlet passage, wherein a plurality of drain plates are evenly disposed at the side wall of the inlet passage in the circumferential direction, the drain plates incline to the right with respect to the axis of the inlet passage.
According to yet another embodiment of the present disclosure, a water sprayer outlet mechanism is disclosed for use with a pool. The water sprayer outlet mechanism has an inlet and an outlet nozzle in fluid communication with the inlet, the outlet nozzle including an elongate hole configured to deliver water from the inlet to the pool, a planar projection of the elongate hole having a lateral axis and a central axis of symmetry, the elongate hole defined by a first elongate section, a second elongate section, a first end section that connects the first and second elongate sections, and a second end section that connects the first and second elongate sections, wherein a width of the elongate hole measured between the first and second elongate sections increases from the central axis to each of the first and second end sections.
According to yet another embodiment of the present disclosure, a water sprayer outlet mechanism is disclosed for use with a pool. The water sprayer outlet mechanism includes a water passageway with an inlet and an elongate outlet that widens laterally, a power generating mechanism positioned along the water passageway, and a light source powered by the power generating mechanism and configured to illuminate water in the water passageway.
The above-mentioned and other features and advantages of this disclosure, and the manner of attaining them, will become more apparent and the invention itself will be better understood by reference to the following description of embodiments of the invention taken in conjunction with the accompanying drawings, wherein:
Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate exemplary embodiments of the invention and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
As shown in
The illustrative sprayer cover 110 is fan-shaped and has a rectangular or ellipse-shaped outlet 112 that faces vertically upward toward outlet end 106 and a circular-shaped inlet 114 that faces vertically downward. Seal 120, which may be constructed of rubber or another suitable material, is rectangular or ellipse-shaped and is disposed at outlet 112 of sprayer cover 110. Top cover 140 is also disposed at outlet 112 of sprayer cover 110 and cooperates with sprayer cover 110, such as with bolts or other fasteners (not shown), to compress seal 120 therebetween.
Furthermore, the illustrative adjusting valve 130 is cylinder-shaped and defines an internal water spout passage 132 and an internal water curtain passage 134, which are located on opposing sides of lamp shade 170. As discussed further below, adjusting valve 130 is capable of being adjusted to deliver water from outlet end 106 via water spout passage 132, water curtain passage 134, or both, such that water flowing out of water spout passage 132 sprays out as a water spout, and water flowing out of water curtain passage 134 sprays out as a water curtain or sheet. More specifically, adjusting valve 130 is rotatably accommodated in sprayer cover 110 and cooperates with seal 120 to selectively plug and/or open outlet 112 of the sprayer cover 110.
As shown in
Returning to
The power generating component 150 of water sprayer outlet mechanism 100 may have various features in common with the below-described power generating component 240 of water sprayer outlet mechanism 200. For example, as shown in
Additionally, an upper end 194 of connecting element 190 is connected to an opening at the bottom inlet 114 of sprayer cover 110. In the illustrated embodiment of
Inlet pipe 180 also includes an adapter 183 configured to connect water sprayer outlet mechanism 100 to a water source. In
Along outlet waterway 210, water sprayer outlet mechanism 200 may include a light source (e.g., LED) (not shown but similar to the above-described light source 160), an outlet or head component 230, and a power generating component 240 disposed in the water sprayer outlet mechanism 200 and operably connected to the light source (not shown). Power generating component 240 may be disposed in outlet component 230. In operation of an exemplary embodiment, water travels horizontally through inlet waterway 205 and vertically upward through outlet waterway 210 and outlet component 230. Then the water flowing through outlet component 230 impacts power generating component 240, so that power generating component 240 generates power and supplies power to the light source. The light passes from the light source and into the water, and then the illuminated water sprays out of outlet component 230. Outlet component 230 and power generating component 240 are described further below.
At the intersection between inlet waterway 205, outlet waterway 210, and decompression waterway 220, water sprayer outlet mechanism 200 may include a T-shaped guiding pipe 270 comprising an inlet 272, an outlet 274, and a decompression or drainage port 276. As shown in
Along decompression waterway 220, water sprayer outlet mechanism 200 may include an elastic element 250 (e.g., spring), a valve spool 260 used to open and close decompression waterway 220, a knob 280, a fixation nut 292, and a trimming nut 294. Additionally, valve spool 260 is T-shaped and includes a sealing end cover 262 connected to a guiding column 264. Sealing end cover 262 is sleeved with a sealing pad 266, and valve spool 260 is aligned along the central axis of decompression port 276. Elastic element 250 is sleeved on the guiding column 264. Fixation nut 292 is connected to decompression port 276 of guiding pipe 270. Knob 280 is threaded and connected to fixation nut 292, such that a lower portion 282 of knob 280 abuts elastic element 250. Knob 280 further includes a hole 284 corresponding to guiding column 264. Trimming nut 294 is threaded and connected on lower portion 282 of knob 280 to abut elastic element 250.
By rotating knob 280, the user may move lower portion 282 of knob 280 upward to compress elastic element 250 or downward to release elastic element 250, such that elastic element 250 applies an adjustable force to valve spool 260 toward outlet waterway 210. When the water pressure in the outlet waterway 210 is at or below the user's preselected level, elastic element 250 forces valve spool 260 upward to close decompression waterway 220, so water flows through outlet waterway 210 and out of water sprayer outlet mechanism 200. When the water pressure in the outlet waterway 210 is above the user's preselected level, the water pressure on valve spool 260 is higher than the force applied to valve spool 260 by elastic element 250, so that the valve spool 260 and, more specifically, guiding column 264 is pushed downward into knob hole 284, thereby opening the decompression waterway 220.
Water sprayer outlet mechanism 200 may have various features in common with the previously-described water sprayer outlet mechanism 100. For example, as shown in
An exemplary outlet component 230 is now described in more detail with reference to
Referring next to
As shown in
The process for deriving Y=a4x4+a2x2+a0 is as follows: The system flow Q and the expected water sheet width H, which corresponds to the physical width of elongated outlet nozzle 460, are known. At a certain flow rate V, the section area S of elongated outlet nozzle 460 is determined using a known calculus method to determine the curvilinear formal Y=a4x4+a2x2+a0. More specifically, according to the Fourier function for determining a curvilinear equation, the general equation is Y=a2nx2n+a2n−1x2n−1+ . . . +a4x4+a3x3+a2x2+a1x+a0. If the curvilinear equation is symmetrical about the Y-axis, as in the exemplary embodiment, the odd power factors are: 0, a2n−1=0, . . . , a3=0, a1=0. Further, according to known water viscosity and curvilinear correlation properties, the number of power factors is under 5, such that Y=a4x4+a3x3+a2x2+a1x+a0. Thus, because elongated outlet nozzle 460 is symmetrical about Y-axis, a3=0 and a1=0, then Y=a4x4+a2x2+a0. Thus, if the expected water sheet width H, which corresponds to the physical width of elongated outlet nozzle 460, is 120 mm, the water flow rate V is between 2 m/s, the system volumetric flow rate Q is 550 GPH in a certain lift, the section area of elongated outlet nozzle 460 is S, where:
As shown in
An exemplary power generating component 240 is now described in more detail with reference to
Referring to
Referring to
Referring to
Rectifying chamber 304 is disposed in the hollow chamber 313 and connected between inlet 312 and elongated outlet 311. Additionally, rectifying chamber 304 includes an upper cover 341 and a lower cover 342 that cooperate to define wavy sub-hollow chambers 340. Upper cover 341 includes at least a first protrusion 361, which may extend toward lower cover 342. In an exemplary embodiment, upper cover 341 also includes a third protrusion 362, although it may include more than the two protrusions 361, 362 shown in
A front end 343 of lower cover 342 includes a vertical guard sheet or barrier 372, such that there is a clearance 373 between guard sheet 372 and upper cover 341. Clearance 373 is fluidly connected to wavy sub-hollow chambers 340 on one side and elongated outlet 311 on the other side with elongated outlet 311 at a lower position than clearance 373. In this embodiment, the water exiting wavy sub-hollow chambers 340 travels upward, over guard sheet 372, and back downward to outlet 311. As described, water is stabilized by the buffering and diffusing of the sub-hollow chambers 340 and guard sheet 372 and flows out of elongated outlet 311 evenly, thus forming a substantially flat water sheet instead of a column of water. In operation of the exemplary embodiment, water flows evenly and is not limited by the inlet water volume or flow rate or the particular turbulence characteristics of an inlet water flow in inlet 312 of water pipe 303. Thus, the water output of the water sheet sprayer outlet mechanism 300 appears linear and attractive.
Furthermore, water sheet sprayer outlet mechanism 300 may have other features in common with the previously-described water sprayer outlet mechanism 100 and/or water sprayer outlet mechanism 200. For example, water sheet sprayer outlet mechanism 300 may include a power generating component 314 (which may be the same as or similar to the previously-described power generating components 150 and 240) and a light source 315 (which may be the same as or similar to the previously-described light source 160). In the illustrated embodiment of
Referring to
Referring next to
Referring next to
While this invention has been described as having exemplary designs, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.
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2015 2 06185393 | Aug 2015 | CN | national |
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Filing Document | Filing Date | Country | Kind |
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PCT/US2016/026677 | 4/8/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2016/164747 | 10/13/2016 | WO | A |
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