Irrigation sprinkler nozzle having deflector with micro-ramps

Information

  • Patent Grant
  • 9427751
  • Patent Number
    9,427,751
  • Date Filed
    Friday, April 9, 2010
    14 years ago
  • Date Issued
    Tuesday, August 30, 2016
    7 years ago
Abstract
A spray nozzle for an irrigation sprinkler is provided, where the nozzle has a deflector that is configured with depending ribs. Each of the ribs has micro-structures that cooperate with other geometry of the rib and deflector to define a plurality of different micro-ramps for dividing the discharged water into different sprays having different characteristics that can be combined to achieve a spray pattern.
Description
FIELD

This disclosure relates generally to an irrigation sprinkler nozzle and, in particular, to an irrigation sprinkler nozzle having a deflector.


BACKGROUND

Efficient irrigation is a design objective of many different types of irrigation devices, such as gear-drive rotors, rotary spray nozzles, and fixed spray nozzles. That objective has been heightening due to concerns at the federal, state and local levels of government regarding the efficient usage of water. Over time, irrigation devices have become more efficient at using water in response to these concerns. However, those concerns are ongoing as demand for water increases.


As typical irrigation sprinkler devices project streams or sprays of water from a central location, there is inherently a variance in the amount of water that is projected to areas around the location of the device. For example, there may be a greater amount of water deposited further from the device than closer to the device. This can be disadvantageous because it means that some of the area to be watered will be over watered and some of the area to be watered will receive the desired about of water or, conversely, some of the area to be watered will receive the desired amount of water and some will receive less than the desired about of water. In other words, the distribution of water from a single device is often not uniform.


One measure of how uniformly water is applied to an area being watered is called Distribution Uniformity “DU”, which is expressed as a percentage. One common measure of Distribution Uniformity is the Lower Quarter Distribution Uniformity (“DUlq”), which is a measure of the average of the lowest quarter of samples, divided by the average of all samples:







DU
lq

=


Average





Catch





of





Lower





Quarter
×
100


Average





Catch





Overall







For example, if all samples are equal, the DU is 100%. If a proportion of the area greater than 25% receives zero application the DU will be 0%. DU can be used to determine the total watering requirement during irrigation scheduling. For example, one may want to apply not less than one inch of water to the area being watered. If the DU were 75%, then the total amount to be applied would be the desired about of water (one inch) divided by the DU (75%), or 1.33 inches of water would be required so that only a very small area receives less than one inch of water. The lower the DU, the less efficient the distribution and the more water that must be applied to meet the minimum desired. This can result in undesirable over watering in one area in order to ensure that another area receives the minimum water desired.


Another measurement is called the Scheduling Coefficient (“SC”). Unlike the DU, the scheduling coefficient does not measure average uniformity. Instead, it is a direct indication of the dryness of the driest turf areas (critical areas). The measurement is called the Scheduling Coefficient because it can play a role in establishing irrigation times. It is based on the critical area to be watered. To calculate the SC, one first identifies the critical area in the water application pattern which is receiving the least amount of water. The amount of water applied to this critical area is divided into the average amount of water applied throughout the irrigated area to obtain the Schedule Coefficient. The scheduling coefficient indicates the amount of extra watering needed to adequately irrigate the critical area. If perfect uniformity were obtained, the scheduling coefficient would be 1.0 (no extra watering needed to adequately irrigate the critical area). By way of example, assume that an irrigation pattern has a scheduling coefficient of 1.8. After 15 minutes of irrigation, a critical area would still be under-watered due to non-uniformity. It will take an additional 12 minutes (15 minutes×0.8) to apply an adequate amount of water to the critical area (or 27 minutes total). While that is the amount of time needed to water the critical area, the result is that other areas will be over-watered.


There are many applications where conventional spray nozzle irrigation devices are desirable for use. Unfortunately, conventional spray nozzle irrigation devices can undesirably have lower DUlq values. For example, some conventional fixed spray devices can have DUlq values of about 65% and be considered to have a very good rating, DUlq values of about 70% for rotors are considered to have a very good rating.


SUMMARY

Spray nozzles having either an arcuately fixed or adjustable spray patterns are described herein, wherein the nozzles have deflectors that are configured with depending ribs having micro-structures that cooperate with other geometry of the rib and deflector to define a plurality of different micro-ramps for dividing the discharged water into different sprays having different characteristics. The different sprays with the different characteristics combine to provide for an improved spray pattern. The result is that advantageously higher DUlq and lower SC values can be achieved, including in a variable arc nozzle.


Water is discharged through one or more flow openings upstream of the deflector in a direction that is generally parallel a central axis of the nozzle (or at an angle from perpendicular thereto). When the discharged water hits an inclined portion of the deflector, the deflector redirects the water outwardly, with the ribs generally confining the water to being radially outwardly. However, the momentum of the water reacts to the impact with the deflector by wanting to move outwardly against the bottom of channels formed between adjacent pairs of the ribs as well against the sidewalls of the ribs. Essentially, the behavior of the water upon impact with the deflector is such that a significant fraction wants to remain close to the structure as opposed to completely filling the channels. In other words, a large fraction of the water tends to “ride along” the sides of the ribs and the bottom of the channels. In order to take advantage of this behavior of the discharged water, very minute structural variances in the portions of the deflector that the water comes into contact with can have a significant impact on the water passing thereagainst. That is, making non-uniform ribs, such as with steps or other protuberances or variations, can provide micro-ramps for altering the flow pattern of the water thereagainst as compared to adjacent water flows. In this manner, the discharging flow of water can be segregated by the deflector into different sprays having different characteristics which can be tailored to achieve certain objectives, such as sprays that are intended to irrigate different areas which, when combined, can result in a more efficient irrigation spray pattern.


In one aspect, a spray nozzle is provided having a deflector body downstream of a flow opening to deflect water discharge from the flow opening. The deflector body has a plurality of depending ribs forming channels for water flow therebetween, and a plurality of the ribs each have an outwardly-extending step at least partially along the length of the ribs such that a micro-ramp extends into the channels for directing a portion of the water flow.


In another aspect, a spray nozzle is provided having a base having a longitudinal axis and at least one water passage extending through base. A deflector body has an upper deflector portion and a lower neck and is fixed relative to the base. The deflector body has a plurality of radially-outward extending, depending ribs forming channels for water flow therebetween, where the ribs each having a pair of sidewalls and a bottom wall with the sidewalls each having a primary micro-ramp projecting laterally a first distance from the sidewall and spaced from a bottom of the channel to define a primary path for water flow outwardly from the nozzle.


In either of the foregoing aspects, the spray nozzle may be of a fixed-arc type or a variable arc-type. In the case of a variable arc-type spray nozzle, a first nozzle body may be provided having a first helical surface. A second nozzle body can be rotatably associated with the first nozzle body and can include a second helical surface. The first and second helical surfaces are configured to cooperate to define an arcuate flow opening adjustable in size to determine an arc of water distribution upon rotation of the first nozzle body relative to the second nozzle body. In one example, the second nozzle body can be in the form of a collar and the first nozzle body can include a deflector that are mounted for relative rotation. The collar has a collar helical surface configured to cooperate with a deflector helical surface of the deflector to define an arcuate flow opening, upstream of an upper deflector portion, that is adjustable in size to determine an arc of water distribution upon rotation of the collar relative to the deflector.


A method is also provided for distributing water from the spray nozzle which includes the step of deflecting at least some of the water radially outward along a plurality of flow paths disposed between adjacent pairs of the ribs and the bottom of the channels, a first of the flow paths on a side of the steps closer to the bottom wall having a first fraction of the total discharged water volume and a second of the flow paths on a side of the step opposite the bottom wall having a second fraction of the total discharged water volume, the second fraction being different than the first fraction.


In any of the foregoing aspects, the deflector body may optionally have an upper portion with an underside with the depending ribs thereon and a lower portion with a neck depending from the underside with a plurality of flow notches disposed about its outer periphery. The flow notches may be aligned with channels formed between the ribs such that a water flow path extends through the flow notches into the channels.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is an exploded perspective view of an exemplary embodiment of a variable arc irrigation nozzle, depicting a deflector, a collar, a base and an adjustment screw, where the deflector includes a plurality of radially-extending ribs forming channels for water flow therebetween, the ribs having micro-ramps configured for providing different aspects of the spray pattern;



FIG. 2 is a perspective view of the variable arc irrigation nozzle of FIG. 1 in an assembled configuration;



FIG. 3 is a top plan view of the assembled variable arc irrigation nozzle of FIG. 1;



FIG. 4 is a cross-section view of the assembled variable arc irrigation nozzle taken along line IV-IV of FIG. 3;



FIG. 5 is a cross-section view of the assembled variable arc irrigation nozzle similar to FIG. 4, but showing diagrammatic flow paths discharging from the nozzle;



FIG. 6 is a top plan view of the base of the variable arc irrigation nozzle of FIG. 1;



FIG. 7 is a perspective view of the collar of the variable arc irrigation nozzle of FIG. 1;



FIG. 8 is a perspective view of the underside of the deflector of the variable arc irrigation nozzle of FIG. 1;



FIG. 9 is a detailed perspective view of some of the ribs on the underside of the deflector of the variable arc irrigation nozzle of FIG. 1;



FIG. 10 is a detailed bottom plan view of a portion of the underside of the deflector of the variable arc irrigation nozzle of FIG. 1;



FIG. 11 is a perspective view of a section of the deflector of the variable arc irrigation nozzle of FIG. 1 showing details of the ribs;



FIG. 12 is a side elevation view of the deflector of the variable arc irrigation nozzle of FIG. 1;



FIG. 13 is an image based upon Computational Fluid Dynamics (“CFD”) analysis of water flow along the ribs of the variable arc irrigation nozzle of FIG. 1; and



FIG. 14 is a schematic diagram depicting an idealized flow discharging from the variable arc irrigation nozzle of FIG. 1.





DETAILED DESCRIPTION

As shown in the exemplary drawings, a new and improved sprinkler spray nozzle for use in irrigation is provided. The spray nozzle has a deflector that provides for the separation of discharging water into different sprays in order to improve the overall spray pattern and, in particular, the DUlq and SC values associated with the spray nozzle. Unlike conventional spray nozzles, which often have deflectors with simple, radially-extending vanes, the deflector of the exemplary embodiment has a deflector with depending ribs, where the ribs in turn each have one or more micro-ramps or other structures protruding into the flow paths of the water which guide the deflected water flow in different sprays which can have different characteristics. The different sprays with the different characteristics combine to provide for an improved spray pattern. Moreover, the spray pattern can be tailored by adjusting the geometries of the micro-ramps and the ribs depending upon the desired application or irrigation spray pattern. In one aspect, the deflector can receive discharging water from an arcuately-adjustable opening such that the arc of the spray pattern can be adjusted. However, the deflector described herein and, in particular, the division of the deflected fluid, can also be incorporated into a fixed spray-type sprinkler nozzle or a rotary-type sprinkler nozzle.


In an exemplary embodiment, a spray nozzle 10 for an irrigation device includes a base 12, a collar 14, a deflector 16 and a screw 18, as illustrated in FIG. 1. The base 12 includes a lower skirt 20 and an upper skirt 22, both surrounding a central opening. The lower skirt 20 includes internal threads 40 (illustrated in FIG. 4) to allow the base 12 (and hence the assembled nozzle 10) to be threadingly connected to a riser, stand or the like of a sprinkler for receiving pressurized water. The upper skirt includes external threading 24 configured to mate with internal threading 42 of the collar 14, as shown in FIG. 4. The collar 14 can be rotated relative to the base 12 along the mating threads 24 and 42 such that the collar 14 can rotate about the base 12. The deflector 16 includes an upper deflector surface 58 with a depending neck 50, as illustrated in FIG. 12. The deflector surface 58 is disposed on an opposite side of the collar 14 from the base 12, and the neck 50 of the deflector 16 extends through the collar 14 and partially into the central opening of the base 12, as depicted in FIG. 4. The depending neck 50 of the deflector 16 is adapted to be attached to the base 12, as will be described in greater detail herein, such that the deflector 16 is not rotatable relative to the base 12. The screw 18 may be an adjustable flow rate adjustment screw to regulate water flow through the nozzle 10.


The illustrated embodiment of the nozzle 10 includes variable arc capability such that the arcuate extent of the spray pattern emanating from the nozzle 10 can be adjusted. The collar 14 includes a radially-inward extending helical ledge 32, as illustrated in FIG. 7. Ends of the ledge 32 are axially spaced and are connected by an axially-extending wall 34. The ledge 32 has an upwardly-facing surface and a radially-inward edge surface. An upper face 36 of the collar 14 is also helical, having the same pitch as the ledge 32 and with ends thereof joined by an axially extending face wall 38, also as illustrated in FIG. 7. The neck 50 of the deflector 16 includes a downward-facing helical surface 55 and a depending, radially-outward facing helical wall 52, as illustrated in FIG. 8, both of which have the same pitch as the ledge 32 of the collar 14. The downward-facing helical surface 55 of the deflector 16 lies over the ledge 32 of the collar 14.


As the collar 14 is rotated relative to the deflector 16, however, the radially-inward edge surface of ledge 32 of the collar 14 is brought into or out of sliding and sealing engagement with the helical wall 52 of the deflector 16 in order to increase or decrease the arcuate extent of a water discharge opening. In a fully closed position, the radially-inward edge surface of the ledge 32 of the collar and the helical wall 52 of the deflector 16 are sealingly engaged to block water flow through the spray nozzle. Rotation of the collar 14 then increase the axially spacing between the edge surface of the ledge 32 of the collar and the helical wall 52 of the deflector 16 such that they have overlying segments that are not sealingly engaged through which the water discharge opening is defined. In this manner, the arcuate extent of the water discharge opening, and thereby the arcuate extent of the spray, can be readily adjusted. By way of example, the collar 14 in FIG. 4 has been rotated to a position whereby the water discharge opening is about 180-degrees. As can be seen on the left side of FIG. 4, the edge surface of the ledge 32 of the collar 14 is sealingly engaged with the helical wall 52 of the deflector 16 but on the right side they are axially spaced.


Turning now to details of the upper deflector surface 58 of the deflector 16, a plurality of radially-extending ribs 60 depend from the underside, as illustrated in FIGS. 8-11. Discharge channels for water are formed between adjacent ribs and have bottoms 62 coinciding with the underside of the upper deflector surface 58. The ribs 60 are each configured to divide the water flow through the channels into different sprays directed to different areas and thereby having different characteristics. The different sprays with the different characteristics are combined to provide for an improved spray pattern having improved DUlq and SC values as compared to conventional spray nozzles, including conventional spray nozzles configured for variable arc adjustment, as will be discussed in greater detail herein.


Each of the ribs 60 has an inner end adjacent the neck 50, and outer end radially outward from the neck 50, a pair of sidewalls and a bottom wall 70. As the ribs 60 are each generally symmetric about a radially-extending line, only one of the sides of a representative rib 60 will be described with it being understood that the opposite side of that same rib 60 has the same structure. With reference to FIGS. 10 and 11, the rib 60 has a first step 66 forming in part a first micro-ramp and a second step 68 defining in part a second micro-ramp. The first step 66 is generally linear and positioned at an angle closer to perpendicular relative to a central axis of the deflector as compared to the bottom 62 of the upper deflector surface 58, as shown in FIG. 11. The second step 68 is segmented, having an inner portion 68a that extends closer to perpendicular relative to the central axis as compared to an outer portion 68b, which has a sharp downward angle.


The first and second steps 66 and 68 divide the sidewall into three portions having different thicknesses: a first sidewall portion 63 disposed adjacent an outward region of the bottom 62 of the upper deflector surface 58; a second, narrower sidewall portion 67 disposed partially on an opposite side of the first step 66 from the first sidewall portion 63; and a third, yet narrower sidewall portion 65 having an outer region disposed on an opposite side of the second step 68 from the first step 66, a middle region disposed on an opposite side of the first step 66 from the bottom 62 of the upper deflector surface 58, and an inner region disposed adjacent the bottom 62, as depicted in FIG. 11. The outer portion 68b of the second step 68 is spaced inwardly from the outer end of the rib 60 by a second sidewall portion 67. An inclined sidewall segment 69 is disposed radially inward from the second sidewall portion 67.


The underside or bottom wall 70 of the rib 60 has a first, generally linear segment 70a positioned at an angle closer to perpendicular relative to a central axis of the deflector 16 as compared to an inner, inclined intermediate segment 70b and the bottom 62 of the upper deflector surface 58, as shown in FIG. 11. An outer, inclined intermediate segment 70c is closer to perpendicular than the inner intermediate segment 70b but not as close to perpendicular as the first segment 70a. An upwardly curved segment 70d is disposed at the end of the rib 60.


The geometries of the ribs 60 and the bottom 62 of the of the upper deflector surface 58 cooperate to define a plurality of micro-ramps which divide the discharging water into sprays having differing characteristics. More specifically, and with reference to FIGS. 5 and 14, there is a first spray B, a second spray C, a mid-range spray D and a close-in spray E as measured from the location A of the spray nozzle 10. The first and second sprays B and C may combine or may be coextensive to form a primary spray. The first and second sprays B and C can have the furthest throw, but may be angularly offset from each other to minimize gaps between the sprays. The mid-range spray D and the close-in spray E are progressively closer to the location A of the spray nozzle 10, as depicted in FIG. 14. When the different sprays are combined, the result is a spray pattern which provides for improved DUlq and SC values as compared to conventional arcuately adjustable, fixed spray nozzles.


The micro-ramp associated with the first spray B is defined by the first step 66 and the adjacent portions of the sidewall of the rib 60, such as portion of sidewall segment 65, 69 and 67, with reference to FIG. 11. The micro-ramp associated with the second spray C is defined by the bottom 62 of the upper deflector surface 58 and the adjacent portions of the sidewall of the rib 60, such as segment 63, also with reference to FIG. 11. As can be seen from the image of FIG. 13 from the CFD analysis of the water flow, the vast majority of the water tends to flow immediately adjacent the ribs 60 and the bottom 62 of the channels and opposed to evenly filling the space between the ribs 60. Accordingly, the position of the first step 66 relative to the bottom 62 can be selected to vary the amount or fraction of the water flowing along the first micro-ramp as opposed to the second micro-ramp. For example, moving the first step 66 closer to the bottom 62 will increase the depth of the first micro-ramp and thereby increase its fraction of water as compared to the second micro-ramp. As shown in this example, there is a greater fraction of the water flow in the first micro-ramp as compared to the second micro-ramp.


In order to provide for the phase shifting of the spray from the first micro-ramp relative to the spray from the second micro-ramp, the outward ends 67 of the sidewalls of the ribs 60 narrow or taper toward each other, such that a pair of sub-sprays each flowing along the primary micro-ramp on opposite sides of the same rib 60 combine to form a common primary spray. This angularly shifts the first spray from being directly radially outward in the direction of the bottom 62 of the channels.


The micro-ramp associated with the mid-range spray D is defined by second step 68 and those portions of the sidewall of the rib 60 on an opposite thereof from the first step 66, such as a portion of sidewall segments 65. The sharply inclined end segment 68b is configured to direct the water spray more downwardly as compared to the spray from the first micro-ramp. Finally, the micro-ramp associated with the close-in spray E is defined by the underside 70 of the rib 60, including the downturned end segments 70b and 70c, for directing the water flow a shorter throw as compared to the mid-range spray D, the second spray C and the first spray B. It will be understood that the geometries, angles and extend of the micro-ramps can be altered to tailor the resultant combined spray pattern. Further, while it is presently believed to be preferable to have all or nearly all (at least about 80%, 85%, 90%, or 95%) of the ribs 60 with the micro-ramps, it is foreseeable that in some circumstances it may be preferable to have less than all of the ribs include micro-ramps. For instance, the micro-ramps may be on only one side of each of the ribs, may be in alternating patterns, or the like.


Extending about the outer circumference of a portion of the neck 50 of the deflector 16 are a plurality of radially-projecting and axially-extending ribs 54 which are spaced by axially-extending flow notches 56. The flow notches 56 have an upstream entrance disposed radially outward from the downwardly-facing helical wall 55, as illustrated in FIG. 8. A downstream exit of the flow notches 56 is aligned with the channels between adjacent ribs 60, as illustrated in FIG. 9. An inclined ramp 64 at the intersection of each of the channels and the flow notches 56 can assist in gradually turning the flow from being generally axially to projecting generally radially outwardly. The flow notches 56 can improve the ability of the spray nozzle 10 to provide for a matched precipitation rate, particularly desirable given the adjustable nature of the arcuate extent of the spray pattern from the spray nozzle 10. In other words, the flow notches 56 contribute to having proportional volumes of water discharged for given arcuate spray pattern settings.


In the exemplary embodiment of a variable arc spray nozzle 10 depicted in the accompanying figures, the nozzle 10 may be configured to have a 12 foot throw. There may be thirty flow notches 56 feeding thirty channels separated by ribs 60, with thirty ribs 60 total and one rib extending from the ends of the helically-inclined array of ribs 60, which one rib lacks micro-ramps in the illustrated embodiment. Each of the axially-extending ribs projects outwardly about 0.0255 inches, has a width at its outward end of about 0.024 inches and adjacent ones form a flow notch 56 with an inward taper of about 6.2 degrees with a bottom radius of about 0.0125 inches. The length may be about 0.92 inches. The inclined ramp 64 may be outwardly-inclined at about 20 degrees relative to a central axis. The ribs 60 are spaced at about 10 degrees to about 12 degrees apart. The first step 66 is between about 0.004 and 0.008 inches in width from the sidewall of the adjacent portion of the rib 60, such as about 0.006 inches. A distal end of each of the ribs 60, including the first step 66, may be about 0.040 inches with about a 3 degree taper, with the portion on the opposite side of the step 66 from the bottom wall 62 being about 0.028 inches in width, with a proximate end of each of the ribs 60 being about 0.018 inches. The second step 68 may be between about 0.002 and 0.006 inches in width, such as about 0.004 inches in width. The angle of the linear portion 70a of the bottom wall 62 may be about 9 degrees toward a horizontal plane coinciding with the top of the deflector 16, with the inward segment 70b being inclined about 50 degrees away from the plane and the intermediate segment 70c being inclined about 20 degrees away from the plane. While these dimensions are representative of the exemplary embodiment, they are not to be limiting, as different objectives can require variations in these dimensions, the addition or subtraction of the steps and/or micro-ramps, and other changes to the geometry to tailor the resultant spray pattern to a given objective.


The deflector 16 is attached to the base 12 via engagement between a pair of depending prongs 46 and 48 of the neck 50 and structure surrounding the central opening of the base 12. More specifically, the base 12 includes an interior center disc 26 supported in spaced relation from the upper skirt 22 via a plurality of connecting webs 30, as depicted in FIG. 6. The central opening 28 extends through the disc 26. Barbed ends of the prongs 46 and 48 are configured to extend through the central opening 28 to form a cantilever snap fit to secure the deflector 16 relative to the base 12 with the collar 14 therebetween. Further, the central opening 28 is optionally key-shaped or otherwise asymmetric in at least one direction. When one of the prongs 48 is larger than the other of the prongs 46 in its arcuate extent, as depicted in FIG. 8, the key-shaped central opening 28 and the differently-sized prongs 46 and 48 can cooperate to ensure that the deflector 16 can only be attached to the base 12 in a single preferred orientation.


It will be understood that various changes in the details, materials, and arrangements of parts and components, which have been herein described and illustrated in order to explain the nature of the invention may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims.

Claims
  • 1. An irrigation spray nozzle comprising: a nozzle body defining at least in part one or more fluid discharge flow passages for the passage of water; anda deflector to deflect water received from the one or more fluid discharge flow passages, the deflector having radially extending ribs depending from an underside of the deflector, adjacent ones of the ribs forming channels for water flow therebetween, a plurality of the ribs from the radially extending ribs, each rib of the plurality of the ribs having a pair of opposing sides, and each side comprises at least a first step extending into an adjacent one of the channels and at least partially in a radially extending direction such that a micro-ramp extends into the adjacent one of the channels for directing a portion of the water flow, the micro-ramp being spaced from a bottom of the channel defined by the underside of the deflector, the micro-ramps on the pair of opposing sides of each of the plurality of the ribs being spaced from each other.
  • 2. The irrigation spray nozzle of claim 1, wherein the plurality of ribs are each wider on a side of the first step adjacent the bottom of the channels than on an opposite side of the first step from the bottom of the channels.
  • 3. The irrigation spray nozzle of claim 1, wherein at least some of the plurality of the ribs each have at least the first step and a second step on a common side and extending into an adjacent one of the channels and at least partially in a radially extending direction such that more than one micro-ramp extends into the adjacent one of the channels for directing a portion of the water flow, each of the more than one micro-ramps being spaced from the bottom of the channel.
  • 4. The irrigation spray nozzle of claim 3, wherein the plurality of ribs are each wider on a side of any one of the more than one step adjacent the bottom of the channels than on an opposite side of the one of the steps from the bottom of the channels.
  • 5. The irrigation spray nozzle of claim 4, wherein the first step is closer to the bottom of the channel than the second step, and each of the plurality of the ribs having an underside, the bottom of the channels, the first steps, second steps and underside of the ribs each configured to provide for more than one discrete spray.
  • 6. The irrigation spray nozzle of claim 5, wherein the first step directs a first segment of the spray, the second step directs a mid-range spray segment extending closer from the spray nozzle as compared to the first segment of the spray, the underside of the rib directs a close-in spray segment extending closer from the spray nozzle as compared to the mid-range spray segment, and the bottom of the channel directs a second spray segment extending further than the mid-range and close-in spray segments and orientated out of phase with the first segment of the spray.
  • 7. The irrigation spray nozzle of claim 1, wherein the deflector has an upper portion with an underside with the radially extending ribs thereon and a lower portion with a neck depending from the underside with flow notches disposed about its outer periphery, the flow notches of the neck being aligned with and intersecting channels formed between the radially extending ribs such that water flow paths extend through the flow notches of the neck and into the channels.
  • 8. The irrigation spray nozzle of claim 1, further comprising: a base having a first end portion adapted for attachment to an irrigation device and a second end portion;a first helical surface fixed relative to the base;a second helical surface rotatable relative to the base, the first and second helical surfaces cooperating to define an arcuate flow passage adjustable in size to determine an arc of spray distribution upon relative rotation between the first and second helical surfaces.
  • 9. The irrigation spray nozzle of claim 8, wherein the nozzle body is a collar mounted for rotation about the second end portion of the base and includes the second helical surface and a neck of the deflector includes the first helical surface.
  • 10. The irrigation spray nozzle of claim 9, wherein the deflector has an upper portion with the radially extending ribs and wherein the neck of the deflector depends from the underside of the deflector and has flow notches disposed about its outer periphery, the flow notches being aligned with and intersecting the channels formed between the ribs such that water flow paths extend through the flow notches and into the channels.
  • 11. The irrigation spray nozzle of claim 1, wherein each of the plurality of the ribs have a bottom wall having a first segment and a second segment, the second segment being radially outward relative to the first segment and inclined relative to the first segment.
  • 12. An irrigation spray nozzle comprising: a base having a longitudinal axis and at least one water passage extending through the base; anda deflector body having a deflector portion and a neck, the deflector portion being positioned to receive a discharge of water from the at least one water passage and redirecting the discharge of water generally radially outward, the deflector portion having a plurality of radially-outward extending, depending ribs with adjacent ones of the depending ribs forming channels for water flow therebetween, the plurality of radially-outward extending, depending ribs each having a pair of sidewalls and a bottom wall, the sidewalls each at least partially defining a plurality of distinct micro-ramps projecting laterally into the channels and spaced from a bottom of the channels defined by an underside of the deflector portion, for dividing the discharge of water into different sprays for irrigating different areas adjacent the irrigation spray nozzle.
  • 13. The irrigation spray nozzle of claim 12, wherein a plurality of flow notches are disposed about an outer periphery of the neck, the plurality of flow notches being aligned with and intersecting the channels formed between the ribs such that water flow paths extend through the flow notches into the channels.
  • 14. The irrigation spray nozzle of claim 12, wherein each rib has a plurality of steps on the same side each projecting toward an adjacent rib a different distance.
  • 15. The irrigation spray nozzle of claim 12, wherein the plurality of micro-ramps includes a first micro-ramp and a second micro-ramp on a common side of one of the ribs, the first micro-ramp has a radially-outward portion that is inclined to a greater degree than the second micro-ramp.
  • 16. The irrigation spray nozzle of claim 15, wherein the bottom wall of each of the ribs has a radially outward portion that is inclined to a greater degree than the radially-outward portion of the first micro-ramp.
  • 17. The irrigation spray nozzle of claim 16, wherein the sidewalls of each of the ribs at a radially outward end taper toward each other.
  • 18. The irrigation spray nozzle of claim 12, wherein: the lower neck of the deflector body has a deflector helical surface that is fixed relative to the base; anda collar is mounted for rotation relative to a portion of the base, the collar having a collar helical surface configured to cooperate with the deflector helical surface to define an arcuate flow opening upstream of the upper deflector portion and adjustable in size to determine an arc of water distribution upon rotation of the collar relative to the deflector body.
  • 19. The irrigation spray nozzle of claim 12, wherein the plurality of micro-ramps includes a first micro-ramp, spaced from the underside of the deflector portion, comprising a first step that is generally linear and positioned at an angle closer to perpendicular relative to a central axis of the deflector as compared to the underside of the deflector portion.
  • 20. The irrigation spray nozzle of claim 19, wherein the plurality of micro-ramps includes a second micro-ramp, on a common sidewall as the first micro-ramp, comprising a second step that is segmented, having a radially inward portion that extends closer to perpendicular relative to the central axis as compared to a radially outward portion.
  • 21. A method for forming a spray of water from an irrigation spray nozzle, the nozzle having a deflector with a plurality of radially-outward extending, depending ribs forming channels for water flow therebetween, the ribs each having a pair of sidewalls and a bottom wall, the sidewalls each having at least one step projecting laterally a first distance from the sidewall and spaced from a bottom of the channel, the method comprising: discharging water against the deflector; anddeflecting at least some of the water generally radially outward along a plurality of flow paths disposed between adjacent pairs of the ribs and the bottom of the channels, a first of the flow paths on a side of the step closer to the bottom wall having a first fraction of the total discharged water volume and a second of the flow paths on a side of the step opposite the bottom wall having a second fraction of the total discharged water volume, the second fraction being different than the first fraction.
  • 22. The method of claim 21, wherein the step of deflecting the water radially outward further includes redirecting a secondary portion of the water from the second of the flow paths to thereby having a primary and secondary portion of the water, the secondary portion of the water having a throw different than that of the primary portion.
  • 23. The method of claim 22, wherein the step of discharging water and against the deflector further includes the step of dividing the water into discrete flows upstream of the deflector and directing each of the discrete flows into an associated one of the channels.
  • 24. The method of claim 23, further including the step of deflecting a portion of the water generally radially outward along a plurality of close-in flow paths, each of the close-in flow paths being disposed on an underside of the ribs, the water discharging along the close-in flow path having a throw less than the first of the flow paths.
  • 25. The method of claim 21, further including a step of adjusting an arcuate extent of a discharge opening prior to the step of discharging water against the deflector.
US Referenced Citations (368)
Number Name Date Kind
458607 Weiss Sep 1891 A
1523609 Roach Jan 1922 A
1432386 Curney Oct 1922 A
2125863 Munz Apr 1933 A
2075589 Munz Mar 1937 A
2125978 Arbogast Aug 1938 A
2128552 Arbogast Aug 1938 A
2325280 Rader Aug 1938 A
2130810 Munz Sep 1938 A
2875783 Bentley Apr 1941 A
2348776 Bentley May 1944 A
2634163 Double Apr 1953 A
2723879 Martin Nov 1955 A
2785013 Stearns Mar 1957 A
2935266 Coleondro Jun 1958 A
3029030 Wiant Jan 1959 A
2914257 Wiant Nov 1959 A
2990123 Hyde Jun 1961 A
2990128 Hyde Jun 1961 A
3239149 Moen Jun 1962 A
3109591 Moen Nov 1963 A
3380659 Lindberg Mar 1966 A
3752403 Diest Aug 1973 A
3940066 Hunter Feb 1976 A
3948285 Flynn Apr 1976 A
3955764 Phaup May 1976 A
4026471 Hunter May 1977 A
4119275 Hunter Oct 1978 A
4131234 Pescetto Dec 1978 A
4189099 Bruninga Feb 1980 A
4253608 Hunter Mar 1981 A
4272024 Kah, Jr. Jun 1981 A
4316579 Ray Feb 1982 A
4353506 Hayes Oct 1982 A
4353507 Kah Oct 1982 A
4398666 Hunter Aug 1983 A
4417691 Lockwood Nov 1983 A
4456181 Burnham Jun 1984 A
4471908 Hunter Sep 1984 A
4479611 Galvis Oct 1984 A
4501391 Hunter Feb 1985 A
4566632 Sesser Jan 1986 A
4568024 Hunter Feb 1986 A
4579284 Arnold Apr 1986 A
4579285 Hunter Apr 1986 A
4609146 Walto Sep 1986 A
4618100 White et al. Oct 1986 A
4624412 Hunter Nov 1986 A
4625917 Torney Dec 1986 A
RE32386 Hunter Mar 1987 E
4660766 Nelson Apr 1987 A
4669663 Meyer Jun 1987 A
4676438 Sesser Jun 1987 A
4681260 Cochran Jul 1987 A
4681263 Cockman Jul 1987 A
4682732 Walto Jul 1987 A
4699321 Bivens Oct 1987 A
4708291 Grundy Nov 1987 A
4718605 Hunter Jan 1988 A
4720045 Meyer Jan 1988 A
4739934 Gewelber Apr 1988 A
D296464 Marmol Jun 1988 S
4752031 Merrick Jun 1988 A
4763838 Holcomb Aug 1988 A
4784325 Walker et al. Nov 1988 A
4796809 Hunter Jan 1989 A
4796811 Davisson Jan 1989 A
4815662 Hunter Mar 1989 A
4834289 Hunter May 1989 A
4836449 Hunter Jun 1989 A
4836450 Hunter Jun 1989 A
4840312 Tyler Jun 1989 A
4842201 Hunter Jun 1989 A
4898332 Hunter Feb 1990 A
4901924 Kah, Jr. Feb 1990 A
4932590 Hunter Jun 1990 A
4944456 Zakai Jul 1990 A
4948052 Hunter Aug 1990 A
4955542 Kah, Jr. Sep 1990 A
4961534 Tyler Oct 1990 A
4967961 Hunter Nov 1990 A
4971250 Hunter Nov 1990 A
D312865 Davisson Dec 1990 S
4986474 Schisler Jan 1991 A
5031840 Grundy Jul 1991 A
5050800 Lamar Sep 1991 A
5052621 Katzer Oct 1991 A
5058806 Rupar Oct 1991 A
5078321 Davis Jan 1992 A
5083709 Iwanowski Jan 1992 A
RE33823 Nelson Feb 1992 E
5086977 Kah, Jr. Feb 1992 A
5090619 Barthold et al. Feb 1992 A
5104045 Kah, Jr. Apr 1992 A
5123597 Bendall Jun 1992 A
5141024 Hicks Aug 1992 A
5148990 Kah, Jr. Sep 1992 A
5148991 Kah Sep 1992 A
5152458 Curtis Oct 1992 A
5158232 Tyler Oct 1992 A
5174501 Hadar Dec 1992 A
5199646 Kah, Jr. Apr 1993 A
5205491 Hadar Apr 1993 A
5224653 Nelson Jul 1993 A
5226599 Lindermeir Jul 1993 A
5226602 Cochran Jul 1993 A
5234169 McKenzie Aug 1993 A
5240182 Lemme Aug 1993 A
5240184 Lawson Aug 1993 A
5267689 Forer Dec 1993 A
5288022 Sesser Feb 1994 A
5299742 Han Apr 1994 A
5322223 Hadar Jun 1994 A
5335857 Hagon Aug 1994 A
5360167 Grundy Nov 1994 A
5370311 Chen Dec 1994 A
5372307 Sesser Dec 1994 A
5375768 Clark Dec 1994 A
5398872 Joubran Mar 1995 A
5417370 Kah May 1995 A
5423486 Hunter Jun 1995 A
5435490 Machut Jul 1995 A
5439174 Sweet Aug 1995 A
RE35037 Kah Sep 1995 E
5456411 Scott Oct 1995 A
5503139 McMahon Apr 1996 A
5526982 McKenzie Jun 1996 A
5544814 Spenser Aug 1996 A
5556036 Chase Sep 1996 A
5588594 Kah, Jr. Dec 1996 A
5588595 Sweet Dec 1996 A
5598977 Lemme Feb 1997 A
5611488 Frolich Mar 1997 A
5620141 Chiang Apr 1997 A
5640983 Sherman, Jr. Jun 1997 A
5642861 Ogi Jul 1997 A
5653390 Kah Aug 1997 A
5662545 Zimmerman Sep 1997 A
5671885 Davisson Sep 1997 A
5671886 Sesser Sep 1997 A
5676315 Han Oct 1997 A
D388502 Kah Dec 1997 S
5695123 Le Dec 1997 A
5699962 Scott Dec 1997 A
5711486 Clark Jan 1998 A
5718381 Katzer et al. Feb 1998 A
5720435 Hunter Feb 1998 A
5722593 McKenzie Mar 1998 A
5758827 Van Le Jun 1998 A
5762270 Kearby Jun 1998 A
5765757 Bendall Jun 1998 A
5765760 Kuo Jun 1998 A
5769322 Smith Jun 1998 A
5785248 Staylor Jul 1998 A
5820029 Marans Oct 1998 A
5823439 Hunter Oct 1998 A
5823440 Clark Oct 1998 A
5826797 Kah, III Oct 1998 A
5845849 Mitzlaff Dec 1998 A
5875969 Grundy Mar 1999 A
5918812 Beutler Jul 1999 A
5927607 Scott Jul 1999 A
5971297 Sesser Oct 1999 A
5988523 Scott Nov 1999 A
5992760 Kearby Nov 1999 A
6007001 Hilton Dec 1999 A
6019295 McKenzie Feb 2000 A
6029907 McKenzie Feb 2000 A
6042021 Clark Mar 2000 A
6050502 Clark Apr 2000 A
6076744 O'Brien Jun 2000 A
6076747 Ming-Yuan Jun 2000 A
6085995 Kah, Jr. et al. Jul 2000 A
6102308 Steingrass Aug 2000 A
6109545 Kah Aug 2000 A
6138924 Hunter Oct 2000 A
6145758 Ogi Nov 2000 A
6155493 Kearby et al. Dec 2000 A
6158675 Ogi Dec 2000 A
6186413 Lawson Feb 2001 B1
6223999 Lemelshtrich May 2001 B1
6227455 Scott May 2001 B1
6230988 Chao May 2001 B1
6230989 Haverstraw May 2001 B1
6237862 Kah, III et al. May 2001 B1
6241158 Clark Jun 2001 B1
6244521 Sesser Jun 2001 B1
6264117 Roman Jul 2001 B1
6286767 Hui-Chen Sep 2001 B1
6332581 Chin Dec 2001 B1
6336597 Kah Jan 2002 B1
6341733 Sweet Jan 2002 B1
6345541 Hendey Feb 2002 B1
6367708 Olson Apr 2002 B1
D458342 Johnson Jun 2002 S
6443372 Hsu Sep 2002 B1
6454186 Haverstraw Sep 2002 B2
6457656 Scott Oct 2002 B1
6464151 Cordua Oct 2002 B1
6478237 Kearby et al. Nov 2002 B2
6488218 Townsend Dec 2002 B1
6491235 Scott Dec 2002 B1
6494384 Meyer Dec 2002 B1
6499672 Sesser Dec 2002 B1
6530531 Butler Mar 2003 B2
6601781 Kah Aug 2003 B2
6607147 Schneider Aug 2003 B2
6622940 Huang Sep 2003 B2
6637672 Cordua Oct 2003 B2
6651904 Roman Nov 2003 B2
6651905 Sesser Nov 2003 B2
6688539 Vander Griend Feb 2004 B2
6695223 Beutler Feb 2004 B2
6715699 Greenberg Apr 2004 B1
6719218 Cool et al. Apr 2004 B2
6732952 Kah May 2004 B2
6736332 Sesser May 2004 B2
6736336 Wong May 2004 B2
6769633 Huang Aug 2004 B1
6814304 Onofrio Nov 2004 B2
6814305 Townsend Nov 2004 B2
6817543 Clark Nov 2004 B2
6820825 Wang Nov 2004 B1
6827291 Townsend Dec 2004 B2
6834816 Kah, Jr. Dec 2004 B2
6840460 Clark Jan 2005 B2
6848632 Clark Feb 2005 B2
6854664 Smith Feb 2005 B2
6869026 McKenzie Mar 2005 B2
6871795 Anuskiewicz Mar 2005 B2
6880768 Lau Apr 2005 B2
6883727 De Los Santos Apr 2005 B2
6921030 Renquist Jul 2005 B2
6942164 Walker Sep 2005 B2
6945471 McKenzie Sep 2005 B2
6957782 Clark Oct 2005 B2
6997393 Angold Feb 2006 B1
7017831 Santiago Mar 2006 B2
7017837 Taketomi Mar 2006 B2
7028920 Hekman Apr 2006 B2
7028927 Mermet Apr 2006 B2
7032836 Sesser et al. Apr 2006 B2
7032844 Cordua Apr 2006 B2
7040553 Clark May 2006 B2
7044403 Kah, III May 2006 B2
7070122 Burcham Jul 2006 B2
7090146 Ericksen Aug 2006 B1
7100842 Meyer Sep 2006 B2
7104472 Renquist Sep 2006 B2
7111795 Thong Sep 2006 B2
7143957 Nelson Dec 2006 B2
7143962 Kah, Jr. Dec 2006 B2
7152814 Schapper Dec 2006 B1
7156322 Heitzman Jan 2007 B1
7159795 Sesser Jan 2007 B2
7168634 Onofrio Jan 2007 B2
7232081 Kah, Jr. Jun 2007 B2
7234651 Mousavi Jun 2007 B2
7240860 Griend Jul 2007 B2
7287711 Crooks Oct 2007 B2
7293721 Roberts Nov 2007 B2
7303147 Danner Dec 2007 B1
7303153 Han Dec 2007 B2
7322533 Grizzle Jan 2008 B2
7337988 McCormick et al. Mar 2008 B2
7389942 Kenyon Jun 2008 B2
RE40440 Sesser Jul 2008 E
7392956 McKenzie Jul 2008 B2
7429005 Schapper Sep 2008 B2
7478526 McAfee et al. Jan 2009 B2
7533833 Wang May 2009 B2
7581687 Feith Sep 2009 B2
7584906 Lev Sep 2009 B2
7597273 McAfee et al. Oct 2009 B2
7607588 Nobili Oct 2009 B2
7611077 Sesser Nov 2009 B2
7621467 Garcia Nov 2009 B1
7654474 Cordua Feb 2010 B2
7686235 Roberts Mar 2010 B2
7686236 Alexander Mar 2010 B2
7703706 Walker Apr 2010 B2
7766259 Feith Aug 2010 B2
D628272 Kah, Jr. et al. Nov 2010 S
7828229 Kah, Jr. Nov 2010 B2
7850094 Richmond Dec 2010 B2
7861948 Crooks Jan 2011 B1
D636459 Kah, Jr. et al. Apr 2011 S
7926746 Melton Apr 2011 B2
7971804 Roberts Jul 2011 B2
8006919 Renquist Aug 2011 B2
8047456 Kah Nov 2011 B2
8056829 Gregory Nov 2011 B2
8074897 Hunnicutt Dec 2011 B2
8205811 Cordua Jun 2012 B2
8272583 Hunnicutt Sep 2012 B2
8651400 Walker Feb 2014 B2
8672242 Hunnicutt Mar 2014 B2
8695900 Hunnicutt Apr 2014 B2
8783582 Robertson Jul 2014 B2
8789768 Hunnicutt Jul 2014 B2
8925837 Walker Jan 2015 B2
9079202 Walker Jul 2015 B2
9174227 Robertson Nov 2015 B2
20010023901 Haverstraw Sep 2001 A1
20020070289 Hsu Jun 2002 A1
20020130202 Kah, Jr. Sep 2002 A1
20020153434 Cordua Oct 2002 A1
20030006304 Cool et al. Jan 2003 A1
20030015606 Cordua Jan 2003 A1
20030042327 Beutler et al. Mar 2003 A1
20030071140 Roman Apr 2003 A1
20030075620 Kah, Jr. Apr 2003 A1
20040108391 Onofrio Jun 2004 A1
20050006501 Englefield Jan 2005 A1
20050161534 Kah Jul 2005 A1
20050194464 Bruninga Sep 2005 A1
20050194479 Curtis Sep 2005 A1
20060038046 Curtis Feb 2006 A1
20060086832 Roberts Apr 2006 A1
20060086833 Roberts Apr 2006 A1
20060108445 Pinch May 2006 A1
20060144968 Lev Jul 2006 A1
20060237198 Crampton Oct 2006 A1
20060273202 Su Dec 2006 A1
20060281375 Jordan Dec 2006 A1
20070012800 McAfee et al. Jan 2007 A1
20070034711 Kah Feb 2007 A1
20070034712 Kah Feb 2007 A1
20070181711 Sesser Aug 2007 A1
20070235565 Kah Oct 2007 A1
20070246567 Roberts Oct 2007 A1
20080169363 Walker Jul 2008 A1
20080217427 Wang et al. Sep 2008 A1
20080257982 Kah Oct 2008 A1
20080276391 Jung Nov 2008 A1
20080277499 McAfee et al. Nov 2008 A1
20090008484 Feith Jan 2009 A1
20090014559 Marino Jan 2009 A1
20090072048 Renquist Mar 2009 A1
20090078788 Holmes Mar 2009 A1
20090108099 Porter Apr 2009 A1
20090140076 Cordua Jun 2009 A1
20090173803 Kah, Jr. Jul 2009 A1
20090173904 Roberts Jul 2009 A1
20090188988 Walker Jul 2009 A1
20090224070 Clark Sep 2009 A1
20100090024 Hunnicutt Apr 2010 A1
20100108787 Walker May 2010 A1
20100176217 Richmond Jul 2010 A1
20100257670 Hodel Oct 2010 A1
20100276512 Nies Nov 2010 A1
20100301135 Hunnicutt Dec 2010 A1
20100301142 Hunnicutt Dec 2010 A1
20110024522 Anuskiewicz Feb 2011 A1
20110024526 Feith et al. Feb 2011 A1
20110089250 Zhao Apr 2011 A1
20110147484 Walker Jun 2011 A1
20110248093 Kim Oct 2011 A1
20110248094 Robertston et al. Oct 2011 A1
20110248097 Kim Oct 2011 A1
20110309161 Renquist Dec 2011 A1
20120012670 Kah Jan 2012 A1
20120061489 Hunnicutt Mar 2012 A1
20120153051 Kah Jun 2012 A1
20120292403 Hunnicutt Nov 2012 A1
20130334340 Walker et al. Dec 2013 A1
20140027526 Shadbolt Jan 2014 A1
20140027527 Walker Jan 2014 A1
Foreign Referenced Citations (53)
Number Date Country
783999 Jan 2006 AU
2427450 Jun 2004 CA
2794646 Jul 2006 CN
2805823 Aug 2006 CN
1283591 Nov 1968 DE
3335805 Feb 1985 DE
463742 Jan 1992 EP
489679 Jun 1992 EP
518579 Dec 1992 EP
572747 Dec 1993 EP
646417 Apr 1995 EP
724913 Aug 1996 EP
0761312 Dec 1997 EP
1016463 Jul 2000 EP
1043075 Oct 2000 EP
1043077 Oct 2000 EP
1173286 Jan 2002 EP
1250958 Oct 2002 EP
1270082 Jan 2003 EP
1289673 Mar 2003 EP
1426112 Jun 2004 EP
1440735 Jul 2004 EP
1452234 Sep 2004 EP
1502660 Feb 2005 EP
1508378 Feb 2005 EP
1818104 Aug 2007 EP
1944090 Jul 2008 EP
2255884 Jan 2010 EP
2251090 Nov 2010 EP
1234723 Jun 1971 GB
2330783 May 1999 GB
WO 9520988 Aug 1995 WO
WO 9727951 Aug 1997 WO
9735668 Oct 1997 WO
WO 0007428 Dec 2000 WO
0131996 May 2001 WO
WO 0131996 May 2001 WO
0162395 Aug 2001 WO
WO 0162395 Aug 2001 WO
WO 02078857 Oct 2002 WO
WO 02098570 Dec 2002 WO
WO 03086643 Oct 2003 WO
WO 2004052721 Jun 2004 WO
2005099905 Oct 2005 WO
2005115554 Dec 2005 WO
2005123263 Dec 2005 WO
WO 2006108298 Oct 2006 WO
WO 2007131270 Nov 2007 WO
2008130393 Oct 2008 WO
2009036382 Mar 2009 WO
2010036241 Apr 2010 WO
2010126769 Nov 2010 WO
2011075690 Jun 2011 WO
Non-Patent Literature Citations (49)
Entry
Advisory Action mailed Jul. 14, 2011 for U.S. Appl. No. 11/947,571 (3 pgs.).
Applicant-Initiated Interview Summary and Final Office Action mailed Mar. 5, 2014 for U.S. Appl. No. 12/972,271 (12 pgs.).
Applicant-Initiated Interview Summary mailed Mar. 5, 2014 for U.S. Appl. No. 12/859,159 (3 pgs.).
European Patent Office Search Report and Opinion dated Aug. 5, 2010 for Application No. 10164085.2 (5 pgs.).
Final Office Action mailed Apr. 5, 2011 for U.S. Appl. No. 11/947,571 (11 pgs.).
Final Office Action mailed Dec. 4, 2013 for U.S. Appl. No. 12/859,159 (12 pgs.).
Final Office Action mailed Dec. 5, 2013 for U.S. Appl. No. 12/972,271 (9 pgs.).
Interview Summary mailed Sep. 26, 2011 for U.S. Appl. No. 12/475,242 (3 pgs.).
Issue Notification mailed Jul. 2, 2014 for U.S. Appl. No. 12/859,159 (1 pg.).
Non-Final Office Action dated Jan. 10, 2014 for U.S. Appl. No. 13/069,334 (6 pgs.).
Non-Final Office Action mailed Apr. 10, 2013 for U.S. Appl. No. 13/562,825 (22 pgs.).
Non-Final Office Action mailed Aug. 24, 2010 for U.S. Appl. No. 11/947,571 (11 pgs.).
Non-Final Office Action mailed Dec. 4, 2012 for U.S. Appl. No. 12/686,895 (29 pgs.).
Non-Final Office Action mailed Jan. 5, 2011 for U.S. Appl. No. 12/248,644 (20 pgs.).
Non-Final Office Action mailed Jul. 20, 2011 for U.S. Appl. No. 12/475,242 (17 pgs.).
Non-Final Office Action mailed Jun. 5, 2013 for U.S. Appl. No. 12/972,271 (25 pgs.).
Non-Final Office Action mailed Jun. 7, 2012 for U.S. Appl. No. 13/300,946 (9 pgs.).
Non-Final Office Action mailed Mar. 29, 2011 for U.S. Appl. No. 12/475,242 (7 pgs.).
Non-Final Office Action mailed May 24, 2013 U.S. Appl. No. 12/720,261 (67 pgs.).
Non-Final Office Action mailed May 29, 2013 for U.S. Appl. No. 12/859,159 (19 pgs.).
Non-Final Office Action mailed Oct. 12, 2012 for U.S. Appl. No. 13/300,946 (7 pgs.).
Non-Final Office Action mailed Oct. 15, 2012 for U.S. Appl. No. 13/562,825 (10 pgs.).
Non-Final Office Action mailed Sep. 3, 2013 for U.S. Appl. No. 13/300,946. (5 pgs.).
Non-Final Office Action mailed Sep. 30, 2010 for U.S. Appl. No. 12/248,644 (7 pgs.).
Notice of Allowability mailed Jun. 23, 2014 for U.S. Appl. No. 12/859,159 (6 pgs.).
Notice of Allowance and Fees Due mailed Mar. 14, 2014 for U.S. Appl. No. 12/859,159 (12 pgs.).
Response dated Apr. 29, 2011 to Office Action mailed Mar. 29, 2011 for U.S. Appl. No. 12/475,242 (13 pgs.).
Response dated Feb. 10, 2014 to Office Action mailed Jan. 10, 2014 for U.S. Appl. No. 13/069,334 (3 pgs.).
Response dated Jun. 25, 2012 to Office Action mailed Jun. 7, 2012 for U.S. Appl. No. 13/300,946 (12 pgs.).
Response dated Mar. 4, 2014 to Final Office Action mailed Dec. 4, 2013 for U.S. Appl. No. 12/859,159 (19 pgs.).
Response dated Nov. 24, 2010 to Office Action mailed Aug. 24, 2010 for U.S. Appl. No. 11/947,571 (19 pgs.).
Response dated Oct. 18, 2011 to Office Action mailed Jul. 20, 2011 for U.S. Appl. No. 12/475,242 (17 pgs.).
Response dated Oct. 29, 2013 to Non-Final Office Action mailed May 29, 2013 for U.S. Appl. No. 12/859,159 (13 pgs.).
Response dated Sep. 16, 2013 to Office Action mailed Jun. 5, 2013 for U.S. Appl. No. 12/972,271 (15 pgs.).
U.S. Appl. No. 61/681,798, filed Aug. 10, 2012. (27 pgs.).
U.S. Appl. No. 61/681,802, filed Aug. 10, 2012. (23 pgs.).
Written Opinion of the International Searching Authority and International Search Report date of mailing Apr. 19, 2011 for Application No. PCT/US10/61132 (12 pgs.).
Office Action dated Apr. 1, 2014 for U.S. Appl. No. 13/069,334 (9 pgs.).
Office Action dated Oct. 7, 2014 for U.S. Appl. No. 13/523,846 (5 pgs.).
Office Action mailed Oct. 30, 2014 for U.S. Appl. No. 13/069,334 (15 pgs.).
Office Action mailed Apr. 27, 2015 for U.S. Appl. No. 13/069,334 (16 pgs.).
Notice of Allowance mailed Feb. 23, 2015 for U.S. Appl. No. 13/523,846 (5 pgs.).
Amendment dated Aug. 27, 2015 for U.S. Appl. No. 13/069,334 (9 pgs.).
Office Action mailed Sep. 3, 2015 for U.S. Appl. No. 13/069,334 (16 pgs.).
Amendment dated Jan. 4, 2016 for U.S. Appl. No. 13/069,334 (13 pgs.).
Notice of Allowance mailed Jun. 19, 2015 for U.S. Appl. No. 13/523,846 (25 pgs.).
Amendment dated Feb. 9, 2015 for U.S. Appl. No. 13/523,846 (12 pgs.).
Office Action mailed Oct. 7, 2014 for U.S. Appl. No. 13/523,846 (5 pgs.).
USPTO; U.S. Appl. No. 13/069,334; Office Action mailed May 26, 2016.
Related Publications (1)
Number Date Country
20110248093 A1 Oct 2011 US