The invention relates generally to showerheads and, more particularly, to multi-function showerheads.
Multi-function showerheads are known in which different sets of nozzles provide different water delivery functions, such that a user can select between the different water delivery functions. Water is discharged from the multi-function showerhead differently for each of the water delivery functions so that the user experiences a desired sensation corresponding to the selected water delivery function. The water delivery functions can include, for example, a stream function, a spray function, a pulse function, and variations thereof. Furthermore, additional water delivery functions can be provided by using two or more sets of nozzles simultaneously.
Typically, each set of nozzles of a multi-function showerhead occupies a discrete zone or region (hereinafter “zone/region”) on a face of the showerhead. For example, as shown in
As shown in
The use of discrete zones/regions facilitates providing the underlying waterways corresponding to each set of the nozzles 104 and 106. As shown in
A problem with using the discrete zones/regions, however, is that they give rise to the aforementioned dead zones 118 and 120. The dead zones 118 and 120 can result in poor water coverage (e.g., an incoherent and unbalanced spray pattern) with respect to a user's body that results in the user experiencing an unpleasant sensation when the water impacts his or her body. These problems of the dead zones 118 and 120 are exacerbated if a water delivery function is selected in which some nozzles on the showerhead are not used.
For example, with respect to the showerhead 100 of
Additionally, if the user selects the second water delivery function, water is discharged through the outer nozzles 106 only. Consequently, the dead/zones 118 and 120, as well as the zone/region 108 containing the inner nozzles 104, on the face 102 are not used. As a result, the water is discharged from the face 102 with the dead zones noticeably affecting the feel of the water on the user's body. Here, the user can feel the circular spray pattern produced by the outer nozzles 106 but a large “hole” is also felt within the spray pattern because of the non-used dead/zones 118 and 120 and the non-used inner nozzles 104 in the zone/region 108.
Furthermore, if the user selects a third water delivery function, water is discharged through both the inner nozzles 104 and the outer nozzles 106 simultaneously. However, even in this case, the dead zones 118 and 120 result in an incoherent and unbalanced spray pattern providing less than ideal coverage and likely to have an unpleasant feel.
In view of the above, a multi-function apparatus is provided that includes at least a first set of nozzles and a second set of nozzles. The apparatus discharges fluid according to a fluid delivery function selected from at least a first fluid delivery function, a second fluid delivery function and a third fluid delivery function. The first fluid delivery function corresponds to fluid being discharged through only the first set of nozzles, the second fluid delivery function corresponds to fluid being discharged through only the second set of nozzles and the third fluid delivery function corresponds to fluid being discharged through the first and second sets of nozzles simultaneously. The fluid delivery functions can be further differentiated by varying the number of nozzles, the size of the nozzles, the arrangement of the nozzles, and the like, in each of the sets of nozzles.
The first set of nozzles includes a plurality of first curves which are each formed, for example, from at least three adjacent nozzles in the first set of nozzles. Each first curve passes through a center of an opening in the at least three adjacent nozzles. The second set of nozzles includes a plurality of second curves which are each formed, for example, from at least three adjacent nozzles in the second set of nozzles. Each second curve passes through a center of an opening in the at least three adjacent nozzles.
As described herein, the first curves and the second curves are interleaved. Accordingly, the aforementioned problems associated with the dead zones (e.g., the incoherent and unbalanced spray patterns) are reduced, if not eliminated. As a result, the multi-function apparatus produces a coherent and balanced spray pattern regardless of the selected fluid delivery function.
Numerous additional advantages and features will become readily apparent from the following detailed description of exemplary embodiments, from the claims and from the accompanying drawings.
The invention as well as embodiments and advantages thereof are described below in greater detail, by way of example, with reference to the drawings wherein like reference numbers denote like elements and in which:
While the general inventive concept is susceptible of embodiment in many different forms, there are shown in the drawings and will be described herein in detail specific embodiments thereof with the understanding that the present disclosure is to be considered as an exemplification of the principles of the general inventive concept. Accordingly, the general inventive concept is not intended to be limited to the specific embodiments illustrated herein.
A multi-function showerhead according to an exemplary embodiment is shown as a three-function showerhead 200 (hereinafter, the “showerhead 200”) in
The first set of nozzles 204 corresponds to a first water delivery function and the second set of nozzles 206 corresponds to a second water delivery function. A third water delivery function is provided by discharging water through the first set of nozzles 204 and the second set of nozzles 206 simultaneously. An actuator 218 is located, for example, on the showerhead 200 to allow a user to select among the different water delivery functions.
In one exemplary embodiment, the first set of nozzles 204 has at least 9 nozzles and the second set of nozzles 206 has at least 9 nozzles. As shown in
In one exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is within 0.032 inches to 0.042 inches, inclusive. In another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is within 0.036 inches to 0.046 inches, inclusive. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is within 0.028 inches to 0.038 inches, inclusive. In still another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is within 0.030 inches to 0.040 inches, inclusive.
In one exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is approximately equal to 0.034 inches. In another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is approximately equal to 0.042 inches. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is approximately equal to 0.030 inches. In still another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 204 is approximately equal to 0.040 inches.
In one exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is within 0.028 inches to 0.038 inches, inclusive. In another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is within 0.020 inches to 0.032 inches, inclusive. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is within 0.032 inches to 0.042 inches, inclusive. In still another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is within 0.028 inches to 0.035 inches, inclusive.
In one exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is approximately equal to 0.034 inches. In another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is approximately equal to 0.032 inches. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is approximately equal to 0.038 inches. In still another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 206 is approximately equal to 0.035 inches.
As shown in
As shown in
In one exemplary embodiment, all of the first curves 208 and the second curves 210 have the same number of nozzles. In one exemplary embodiment, all of the first curves 208 and the second curves 210 have approximately the same rate of curvature.
As shown in
Additionally, the number of nozzles in each of the first set of nozzles 204 and the second set of nozzles 206, as well as a corresponding total cross-sectional area (i.e., flow area) of the openings in the first set of nozzles 204 and the second set of nozzles 206, are chosen to provide a pleasant sensation that contributes to the improved showering experience, regardless of the selected water delivery function.
In one exemplary embodiment, the first set of nozzles 204 has from 15 to 45 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 204 being within 0.010 in2 to 0.045 in2, inclusive. In another exemplary embodiment, the first set of nozzles 204 has from 19 to 42 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 204 being within 0.015 in2 to 0.040 in2, inclusive. In yet another exemplary embodiment, the first set of nozzles 204 has from 22 to 38 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 204 being within 0.018 in2 to 0.037 in2, inclusive. In still another exemplary embodiment, the first set of nozzles 204 has from 24 to 36 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 204 being within 0.019 in2 to 0.041 in2, inclusive.
In one exemplary embodiment, the first set of nozzles 204 has 24 nozzles with a total cross-sectional area of the openings in the nozzles 204 being approximately 0.022 in2. In another exemplary embodiment, the first set of nozzles 204 has 24 nozzles with a total cross-sectional area of the openings in the nozzles 204 being approximately 0.033 in2. In yet another exemplary embodiment, the first set of nozzles 204 has 36 nozzles with a total cross-sectional area of the openings in the nozzles 204 being approximately 0.025 in2. In still another exemplary embodiment, the first set of nozzles 204 has 30 nozzles with a total cross-sectional area of the openings in the nozzles 204 being approximately 0.038 in2.
In one exemplary embodiment, the second set of nozzles 206 has from 20 to 90 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 206 being within 0.010 in2 to 0.080 in2, inclusive. In another exemplary embodiment, the second set of nozzles 206 has from 23 to 70 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 206 being within 0.012 in2 to 0.060 in2, inclusive. In yet another exemplary embodiment, the second set of nozzles 206 has from 25 to 65 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 206 being within 0.018 in2 to 0.053 in2, inclusive. In still another exemplary embodiment, the second set of nozzles 206 has from 27 to 70 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 206 being within 0.020 in2 to 0.067 in2, inclusive.
In one exemplary embodiment, the second set of nozzles 206 has 36 nozzles with a total cross-sectional area of the openings in the nozzles 206 being approximately 0.033 in2. In another exemplary embodiment, the second set of nozzles 206 has 64 nozzles with a total cross-sectional area of the openings in the nozzles 206 being approximately 0.051 in2. In yet another exemplary embodiment, the second set of nozzles 206 has 27 nozzles with a total cross-sectional area of the openings in the nozzles 206 being approximately 0.031 in2. In still another exemplary embodiment, the second set of nozzles 206 has 70 nozzles with a total cross-sectional area of the openings in the nozzles 206 being approximately 0.067 in2.
The nozzle characteristics described herein (e.g., diameter of opening and total cross-sectional area) are based on nozzles having substantially circular openings. It will be appreciated that the general inventive concept encompasses other nozzle types, including nozzles having non-circular openings. The equivalent nozzle characteristics of a nozzle having a non-circular opening can be readily determined.
In one exemplary embodiment, the first curves 208 and the second curves 210 are considered to be interleaved if a zone/region encompassing the first curves 208 and a zone/region encompassing the second curves 210 substantially overlap. As shown in
In another exemplary embodiment, the first curves 208 and the second curves 210 are considered to be interleaved if at least one nozzle in each first curve 208 is located between two adjacent second curves 210 on the face 202 and/or at least one nozzle in each second curve 210 is located between two adjacent first curves 208 on the face 202. As shown in
. In yet another exemplary embodiment, the first curves 208 and the second curves 210 are considered to be interleaved if at least 50% of the nozzles in each first curve 208 are located between two adjacent second curves 210 on the face 202 and/or at least 50% of the nozzles in each second curve 210 are located between two adjacent first curves 208 on the face 202.
In another exemplary embodiment, the first curves 208 and the second curves 210 are considered to be interleaved if all of the nozzles in each first curve 208 are located between two adjacent second curves 210 on the face 202 and/or all of the nozzles in each second curve 210 are located between adjacent two first curves 208 on the face 202.
In still other exemplary embodiments, more than one of the first curves 208 can be interleaved between each adjacent pair of the second curves 210. Alternatively, more than one of the second curves 210 can be interleaved between each adjacent pair of the first curves 208.
In view of the above, by interleaving the first curves 208 formed by the first set of nozzles 204 and the second curves 210 formed by the second set of nozzles 206, a coherent and balanced spray pattern is achieved across the different water delivery functions. As a result, the spray pattern provides good coverage of a user's body across the different water delivery functions, while avoiding any unpleasant sensations resulting from the incoherent and unbalanced spray patterns of conventional multi-function showerheads. Additionally, the interleaved curves (e.g., the first curves 208 and the second curves 210) result in a nozzle arrangement which users may find aesthetically pleasing.
A multi-function showerhead according to another exemplary embodiment is shown as a five-function showerhead 300 (hereinafter, the “showerhead 300”) in
The first set of nozzles 304 corresponds to a first water delivery function and the second set of nozzles 306 corresponds to a second water delivery function. In one exemplary embodiment, a third water delivery function is provided by discharging water through the first set of nozzles 304 and the second set of nozzles 306 simultaneously. The showerhead 300 uses other sets of nozzles to achieve one or more of the remaining water delivery functions (e.g., a fourth water delivery function and a fifth water delivery function). Additionally, two or more of any of the sets of nozzles of the showerhead 300 can be combined to achieve one or more of the remaining water delivery functions (e.g., the fourth water delivery function and the fifth water delivery function). An actuator 308 is located, for example, on the showerhead 300 to allow a user to select among the different water delivery functions.
In one exemplary embodiment, the first set of nozzles 304 has at least 9 nozzles and the second set of nozzles 306 has at least 9 nozzles. As shown in
In one exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is within 0.032 inches to 0.042 inches, inclusive. In another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is within 0.036 inches to 0.046 inches, inclusive. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is within 0.028 inches to 0.038 inches, inclusive. In still another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is within 0.030 inches to 0.040 inches, inclusive.
In one exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is approximately equal to 0.034 inches. In another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is approximately equal to 0.042 inches. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is approximately equal to 0.030 inches. In still another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 304 is approximately equal to 0.040 inches.
In one exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is within 0.028 inches to 0.038 inches, inclusive. In another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is within 0.020 inches to 0.032 inches, inclusive. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is within 0.032 inches to 0.042 inches, inclusive. In still another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is within 0.028 inches to 0.035 inches, inclusive.
In one exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is approximately equal to 0.034 inches. In another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is approximately equal to 0.032 inches. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is approximately equal to 0.038 inches. In still another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 306 is approximately equal to 0.035 inches.
As shown in
As shown in
In one exemplary embodiment, all of the first curves 310 and the second curves 312 have the same number of nozzles. In one exemplary embodiment, all of the first curves 310 and the second curves 312 have approximately the same rate of curvature.
As shown in
Additionally, the number of nozzles in each of the first set of nozzles 304 and the second set of nozzles 306, as well as a corresponding total cross-sectional area (i.e., flow area) of the openings in the first set of nozzles 304 and the second set of nozzles 306, are chosen to provide a pleasant sensation that contributes to the improved showering experience, regardless of the selected water delivery function.
In one exemplary embodiment, the first set of nozzles 304 has from 15 to 45 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 304 being within 0.010 in2 to 0.045 in2, inclusive. In another exemplary embodiment, the first set of nozzles 304 has from 19 to 42 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 304 being within 0.015 in2 to 0.040 in2, inclusive. In yet another exemplary embodiment, the first set of nozzles 304 has from 22 to 38 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 304 being within 0.018 in2 to 0.037 in2, inclusive. In still another exemplary embodiment, the first set of nozzles 304 has from 24 to 36 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 304 being within 0.019 in2 to 0.041 in2, inclusive.
In one exemplary embodiment, the first set of nozzles 304 has 24 nozzles with a total cross-sectional area of the openings in the nozzles 304 being approximately 0.022 in2. In another exemplary embodiment, the first set of nozzles 304 has 24 nozzles with a total cross-sectional area of the openings in the nozzles 304 being approximately 0.033 in2. In yet another exemplary embodiment, the first set of nozzles 304 has 36 nozzles with a total cross-sectional area of the openings in the nozzles 304 being approximately 0.025 in2. In still another exemplary embodiment, the first set of nozzles 304 has 30 nozzles with a total cross-sectional area of the openings in the nozzles 304 being approximately 0.038 in2.
In one exemplary embodiment, the second set of nozzles 306 has from 20 to 90 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 306 being within 0.010 in2 to 0.080 in2, inclusive. In another exemplary embodiment, the second set of nozzles 306 has from 23 to 70 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 306 being within 0.012 in2 to 0.060 in2, inclusive. In yet another exemplary embodiment, the second set of nozzles 306 has from 25 to 65 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 306 being within 0.018 in2 to 0.053 in2, inclusive. In still another exemplary embodiment, the second set of nozzles 306 has from 27 to 70 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 306 being within 0.020 in2 to 0.067 in2, inclusive.
In one exemplary embodiment, the second set of nozzles 306 has 36 nozzles with a total cross-sectional area of the openings in the nozzles 306 being approximately 0.033 in2. In another exemplary embodiment, the second set of nozzles 306 has 64 nozzles with a total cross-sectional area of the openings in the nozzles 306 being approximately 0.051 in2. In yet another exemplary embodiment, the second set of nozzles 306 has 27 nozzles with a total cross-sectional area of the openings in the nozzles 306 being approximately 0.031 in2. In still another exemplary embodiment, the second set of nozzles 306 has 70 nozzles with a total cross-sectional area of the openings in the nozzles 306 being approximately 0.067 in2.
The nozzle characteristics described herein (e.g., diameter of openings and total cross-sectional area of openings) are based on nozzles having substantially circular openings. It will be appreciated that the general inventive concept encompasses other nozzle types, including nozzles having non-circular openings. The equivalent nozzle characteristics of a nozzle having a non-circular opening can be readily determined.
The examples of interleaving described above in conjunction with
A multi-function showerhead according to still another exemplary embodiment is shown as a seven-function showerhead 400 (hereinafter, the “showerhead 400”) in
The first set of nozzles 404 corresponds to a first water delivery function and the second set of nozzles 406 corresponds to a second water delivery function. In one exemplary embodiment, a third water delivery function is provided by discharging water through the first set of nozzles 404 and the second set of nozzles 406 simultaneously. The showerhead 400 uses other sets of nozzles to achieve one or more of the remaining water delivery functions (e.g., a fourth water delivery function, a fifth water delivery function, a sixth water delivery function and a seventh water delivery function). Additionally, two or more of any of the sets of nozzles of the showerhead 400 can be combined to achieve one or more of the remaining water delivery functions (e.g., the fourth water delivery function, the fifth water delivery function, the sixth water delivery function and the seventh water delivery function). An actuator 408 is located, for example, on the showerhead 400 to allow a user to select among the different water delivery functions.
In one exemplary embodiment, the first set of nozzles 404 has at least 9 nozzles and the second set of nozzles 406 has at least 9 nozzles. As shown in
In one exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is within 0.032 inches to 0.042 inches, inclusive. In another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is within 0.036 inches to 0.046 inches, inclusive. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is within 0.028 inches to 0.038 inches, inclusive. In still another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is within 0.030 inches to 0.040 inches, inclusive.
In one exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is approximately equal to 0.034 inches. In another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is approximately equal to 0.042 inches. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is approximately equal to 0.030 inches. In still another exemplary embodiment, a diameter of an opening in each nozzle in the first set of nozzles 404 is approximately equal to 0.040 inches.
In one exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is within 0.028 inches to 0.038 inches, inclusive. In another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is within 0.020 inches to 0.032 inches, inclusive. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is within 0.032 inches to 0.042 inches, inclusive. In still another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is within 0.028 inches to 0.035 inches, inclusive.
In one exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is approximately equal to 0.034 inches. In another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is approximately equal to 0.032 inches. In yet another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is approximately equal to 0.038 inches. In still another exemplary embodiment, a diameter of an opening in each nozzle in the second set of nozzles 406 is approximately equal to 0.035 inches.
As shown in
As shown in
In one exemplary embodiment, all of the first curves 410 and the second curves 412 have the same number of nozzles. In one exemplary embodiment, all of the first curves 410 and the second curves 412 have approximately the same rate of curvature.
As shown in
Additionally, the number of nozzles in each of the first set of nozzles 404 and the second set of nozzles 406, as well as a corresponding total cross-sectional area (i.e., flow area) of openings in the first set of nozzles 404 and the second set of nozzles 406, are chosen to provide a pleasant sensation that contributes to the improved showering experience, regardless of the selected water delivery function.
In one exemplary embodiment, the first set of nozzles 404 has from 15 to 45 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 404 being within 0.010 in2 to 0.045 in2, inclusive. In another exemplary embodiment, the first set of nozzles 404 has from 19 to 42 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 404 being within 0.015 in2 to 0.040 in2, inclusive. In yet another exemplary embodiment, the first set of nozzles 404 has from 22 to 38 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 404 being within 0.018 in2 to 0.037 in2, inclusive. In still another exemplary embodiment, the first set of nozzles 404 has from 24 to 36 nozzles, inclusive, with a total cross-sectional area of the openings in the nozzles 404 being within 0.019 in2 to 0.041 in2, inclusive.
In one exemplary embodiment, the first set of nozzles 404 has 24 nozzles with a total cross-sectional area of the openings in the nozzles 404 being approximately 0.022 in2. In another exemplary embodiment, the first set of nozzles 404 has 24 nozzles with a total cross-sectional area of the openings in the nozzles 404 being approximately 0.033 in2. In yet another exemplary embodiment, the first set of nozzles 404 has 36 nozzles with a total cross-sectional area of the openings in the nozzles 404 being approximately 0.025 in2. In still another exemplary embodiment, the first set of nozzles 404 has 30 nozzles with a total cross-sectional area of the openings in the nozzles 404 being approximately 0.038 in2.
In one exemplary embodiment, the second set of nozzles 406 has from 20 to 90 inclusive, with a total cross-sectional area within 0.012 in2 to 0.060 in2, inclusive. In yet another exemplary embodiment, the second set of nozzles 406 has from 25 to 65 nozzles, inclusive, with a total cross-sectional area within 0.018 in2 to 0.053 in2, inclusive. In still another exemplary embodiment, the second set of nozzles 406 has from 27 to 70 nozzles, inclusive, with a total cross-sectional area within 0.020 in2 to 0.067 in2, inclusive.
In one exemplary embodiment, the second set of nozzles 406 has 36 nozzles with a total cross-sectional area of approximately 0.033 in2. In another exemplary embodiment, the second set of nozzles 406 has 64 nozzles with a total cross-sectional area of approximately 0.051 in2. In yet another exemplary embodiment, the second set of nozzles 406 has 27 nozzles with a total cross-sectional area of approximately 0.031 in2. In still another exemplary embodiment, the second set of nozzles 406 has 70 nozzles with a total cross-sectional area of approximately 0.067 in2.
The nozzle characteristics described herein (e.g., diameter of opening and total cross-sectional area) are based on nozzles having substantially circular openings. It will be appreciated that the general inventive concept encompasses other nozzle types, including nozzles having non-circular openings. The equivalent nozzle characteristics of a nozzle having a non-circular opening can be readily determined.
The examples of interleaving described above in conjunction with
The above description of specific embodiments has been given by way of example. From the disclosure given, those skilled in the art will not only understand the general inventive concept and its attendant advantages, but will also find apparent various changes and modifications to the structures and methods disclosed. For example, although the above exemplary embodiments are directed to multi-function showerheads that discharge water, the general inventive concept encompasses any multi-function apparatus for discharging any fluid. Furthermore, from the above disclosure, it should be obvious that more than two sets of nozzles can be interleaved among one another. As another example, it should be obvious that each of the curves formed from the sets of nozzles can comprise multiple arcs. It is sought, therefore, to cover all such changes and modifications as fall within the spirit and scope of the general inventive concept, as defined by the appended claims and equivalents thereof.
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