Fluid applicator assemblies
11135606 · 2021-10-05
Inventors
Cpc classification
B05B7/2408
PERFORMING OPERATIONS; TRANSPORTING
B05B3/022
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2437
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2491
PERFORMING OPERATIONS; TRANSPORTING
B05B7/12
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2418
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2435
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0012
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2432
PERFORMING OPERATIONS; TRANSPORTING
B05B7/2429
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B7/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Fluid applicator assemblies which can be attached to or fabricated integrally with a blowing apparatus such as a leaf blower as a source of flowing air to atomize and eject atomized liquids into spaces and/or onto surfaces may include a nozzle having a nozzle body. At least one air flow cavity may be provided in the nozzle body. An air inlet slot may extend through the nozzle body and may be disposed in fluid communication with the at least one air flow cavity. A fluid ejection portion may be carried by the nozzle body. The fluid ejection portion may include an ejection head support extending from the nozzle body. A fluid ejection head may be carried by the ejection head support. A tube opening may extend through the fluid ejection portion. A fluid ejection slot may be provided in the fluid ejection head and disposed in fluid communication with the tube opening. A liquid container may be disposed in fluid communication with the fluid ejection slot through the tube opening. Other embodiments of the fluid applicator assemblies are disclosed.
Claims
1. A fluid applicator assembly configured for mounting on a blower tube on a blowing apparatus to atomize a liquid and eject the atomized liquid, comprising: a nozzle including: a nozzle body comprising a rear nozzle body end, a front nozzle body end and a pair of opposite side nozzle body surfaces extending from the rear nozzle body end to the front nozzle body end, the side nozzle body surfaces tapering and joining at the rear nozzle body end; at least one air flow cavity in the nozzle body, the at least one air flow cavity extending into at least one of the pair of opposite side nozzle body surfaces of the nozzle body; an air inlet slot extending through the nozzle body and disposed in fluid communication with the at least one air flow cavity; a fluid ejection portion carried by the nozzle body, the fluid ejection portion including: an ejection head support extending from the nozzle body; a fluid ejection head carried by the ejection head support; a tube opening extending through the fluid ejection portion; and a fluid ejection conduit in the fluid ejection head and disposed in fluid communication with the tube opening; and a liquid container disposed in fluid communication with the fluid ejection conduit through the tube opening, the liquid container configured to contain a supply of the liquid to be atomized.
2. The fluid applicator assembly of claim 1 wherein the fluid ejection conduit comprises a fluid ejection slot.
3. The fluid applicator assembly of claim 1 wherein the fluid ejection conduit comprises fluid ejection passage and at least one fluid ejection opening terminating the fluid ejection passage.
4. The fluid applicator assembly of claim 3 wherein the fluid ejection conduit extends laterally through the fluid ejection head, and the at least one fluid ejection opening comprises a pair of fluid ejection openings terminating opposite ends of the fluid ejection conduit.
5. A fluid applicator assembly configured for mounting on a blower tube on a blowing apparatus to atomize a liquid and eject the atomized liquid, comprising: a nozzle including: a nozzle body; at least one air flow cavity in the nozzle body; an air inlet slot extending through the nozzle body and disposed in fluid communication with the at least one air flow cavity; a fluid ejection portion carried by the nozzle body, the fluid ejection portion including: an ejection head support extending from the nozzle body; a fluid ejection head carried by the ejection head support; a tube opening extending through the fluid ejection portion; and a fluid ejection conduit in the fluid ejection head and disposed in fluid communication with the tube opening; and a liquid container disposed in fluid communication with the fluid ejection conduit through the lube opening, the liquid container configured to contain a supply of the liquid to be atomized; and an adjuster screw opening in the fluid ejection head and disposed in fluid communication with the fluid ejection conduit and a spray control adjuster screw threadably disposed in the adjuster screw opening.
6. A fluid applicator assembly configured for mounting on a blower tube on a blowing apparatus to atomize a liquid and eject the atomized liquid, comprising: a nozzle including; a nozzle body; at least one air flow cavity in the nozzle body; an air inlet slot extending through the nozzle body and disposed in fluid communication with the at least one air flow cavity; a fluid ejection portion carried by the nozzle body, the fluid ejection portion including: an ejection head support extending from the nozzle body; a fluid ejection head carried by the ejection head support; a tube opening extending through the fluid ejection portion; and a fluid ejection conduit in the fluid ejection head and disposed in fluid communication with the tube opening; and a liquid container disposed in fluid communication with the fluid ejection conduit through the tube opening, the liquid container configured to contain a supply of the liquid to be atomized; and wherein the ejection head support comprises a sloped or angled and tapered rear edge.
7. A fluid applicator assembly configured for mounting on a blower tube on a blowing apparatus to atomize a liquid and eject the atomized liquid, comprising: a nozzle including: a nozzle body; at least one air flow cavity in the nozzle body; an air inlet slot extending through the nozzle body and disposed in fluid communication with the at least one air flow cavity; a fluid ejection portion carried by the nozzle body, the fluid ejection portion including: an ejection head support extending from the nozzle body; a fluid ejection head carried by the ejection head support; a tube opening extending through the fluid ejection portion; and a fluid ejection conduit in the fluid ejection head and disposed in fluid communication with the tube opening; and a liquid container disposed in fluid communication with the fluid ejection conduit through the tube opening, the liquid container configured to contain a supply of the liquid to be atomized; and at least one nozzle mount flange extending in parallel, spaced-apart relationship to the nozzle body and a blower tube slot between the at least one nozzle mount flange and the nozzle body, the at least one nozzle mount flange configured to facilitate attachment of the nozzle to the blower tube of the blowing apparatus.
8. A fluid applicator assembly configured for mounting on a blower tube on a blowing apparatus to atomize a liquid and eject the atomized liquid, comprising: a nozzle including: a nozzle body comprising a rear nozzle body end, front nozzle body end and a pair of opposite side nozzle body surfaces extending from the rear nozzle body end to the front nozzle body end, the side nozzle body surfaces tapering and joining at the rear nozzle body end; at least one air flow cavity in the nozzle body, the at least one air flow cavity extending into at leas one of the pair of opposite side nozzle body surfaces of the nozzle body; an air inlet slot extending through the nozzle body and disposed in fluid communication with the at least one air flow cavity; a fluid ejection portion carried by the nozzle body, the fluid ejection portion including: an ejection head support extending from the nozzle body: a fluid ejection head carried by the ejection head support; a tube opening extending through the fluid ejection portion; a fluid ejection conduit in the fluid ejection head and disposed in fluid communication with the tube opening; and a container cap extending from the fluid ejection head of the fluid ejection portion; and a liquid container carried by the container cap and disposed in fluid communication with the fluid ejection conduit through the tube opening, the liquid container configured to contain a supply of the liquid to be atomized.
9. The fluid applicator assembly of claim 8 wherein the fluid ejection conduit comprises a fluid ejection slot.
10. The fluid applicator assembly of claim 8 wherein the fluid ejection conduit comprises fluid ejection passage and at least one fluid ejection opening terminating the fluid ejection passage.
11. The fluid applicator assembly of claim 10 wherein the fluid ejection conduit extends laterally through the fluid ejection head, and the at least one fluid ejection opening comprises a pair of fluid ejection openings terminating opposite ends of the fluid ejection conduit.
12. The fluid applicator assembly of claim 8 further comprising an adjuster screw opening in the fluid ejection head and disposed in fluid communication with the fluid ejection conduit and a spray control adjuster screw threadably disposed in the adjuster screw opening.
13. The fluid applicator assembly of claim 8 wherein the ejection head support comprises a sloped or angled and tapered rear edge.
14. The fluid applicator assembly of claim 8 further comprising at least one nozzle mount flange extending in parallel, spaced-apart relationship to the nozzle body and a blower tube slot between the at least one nozzle mount flange and the nozzle body, the at least one nozzle mount flange configured to facilitate attachment of the nozzle to the blower tube of the blowing apparatus.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Illustrative embodiments of the disclosure will now be described, by way of example, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
(22) The following detailed description is merely exemplary in nature and is not intended to limit the described embodiments or the application and uses of the described embodiments. As used herein, the word “exemplary” or “illustrative” means “serving as an example, instance, or illustration.” Any implementation described herein as “exemplary” or “illustrative” is not necessarily to be construed as preferred or advantageous over other implementations. All of the implementations described below are exemplary implementations provided to enable persons skilled in the art to make or use the embodiments of the disclosure and are not intended to limit the scope of the disclosure, which is defined by the claims. For purposes of description herein, the terms “upper”, “lower”, “left”, “rear”, “right”, “front”, “vertical”, “horizontal”, and derivatives thereof shall relate to the invention as oriented in
(23) Referring initially to
(24) Referring next to
(25) At least one, and typically, a pair of air flow cavities 8 (one of which is illustrated in
(26) The nozzle 2 may include a fluid ejection portion 12. The fluid ejection portion 12 may include an ejection head support 13 which extends forwardly and upwardly from the nozzle body 3. The ejection head support 13 may have a sloped or angled and tapered rear edge 14. A fluid ejection head 18 may be supported by the ejection head support 13. As illustrated in
(27) As illustrated in
(28) A tube opening 26 may extend vertically through the fluid ejection head 18. The upper end of the tube opening 26 may terminate in fluid communication with the fluid ejection slot 19 for purposes which will be hereinafter described. As further illustrated in
(29) A container cap 30 may extend downwardly from the fluid ejection head 18 of the fluid ejection portion 12. The container cap 30 may facilitate attachment of the nozzle 2 to a liquid container 36 which contains a supply of the liquid 42 to be atomized in operation of the assembly 1, which will be hereinafter described. As illustrated in
(30) A liquid tubing 38 may extend upwardly from the interior of the liquid container 36 through the container neck 37. As illustrated in
(31) As further illustrated in
(32) In typical application of the assembly 1, a selected liquid 42 which is to be atomized and ejected as the atomized liquid droplets 46 may be placed in the liquid container 36. The liquid 42 may include any type of liquid which is to be atomized and dispersed into fine atomized liquid droplets 46 into one or more spaces or onto one or more surfaces. For example and without limitation, as illustrated in
(33) The nozzle 2 may be attached to the liquid container 36 by attaching the container cap 30 on the nozzle 2 to the container neck 37 on the liquid container 36. For example and without limitation, in some embodiments, interior cap threads (not illustrated) in the container cap 30 may be engaged with companion exterior neck threads (not illustrated) on the container neck 37. As the container cap 30 is lowered in place onto the container neck 37, the liquid tubing 38 may insert through the container neck 37 into the liquid 42 in the liquid container 36.
(34) In some applications, the nozzle 2 may next be attached to the blower tube 56 of the blowing apparatus 50. This may be accomplished by initially inserting the lower edge portion of the blower tube discharge end 58 of the blower tube 56 into the blower tube slot 16 between the nozzle body 3 and the nozzle mount flange 32 on the nozzle 2. The clamp tie or ties 48 may be extended through the respective nozzle mount flange opening or openings 33 in the nozzle mount flange 32 and extended around the blower tube 56 and secured. Accordingly, as illustrated in
(35) An operator (not illustrated) may next grasp and aim the blowing apparatus 50 at the target space into which the atomized liquid droplets 46 are to be ejected and/or the target surface or surfaces onto which the atomized liquid droplets 46 are to be applied, as illustrated in
(36) As illustrated in
(37) Referring again to
(38) Referring next to
(39) The fluid tank wall 172 of the fluid tank 171 may encircle and may be concentric with the blowing apparatus 50. Accordingly, as illustrated in
(40) An atomizer assembly 178 may be disposed in the blower tube interior 57 of the blowing apparatus 50 and the fluid tank interior 173 of the fluid tank 171. The atomizer assembly 178 may facilitate contact between the liquid 42 to be atomized and the air 40 flowing through the blower tube interior 57 of the blower tube 56. In some embodiments, the atomizer assembly 178 may include an atomizer assembly block 179. The atomizer assembly block 179 may be sealingly mounted to the fluid tank wall 172 of the fluid tank 171 and the blower tube 56 of the blowing apparatus 50 according to the knowledge of those skilled in the art. The blower tube 56 of the blowing apparatus 50 and the fluid tank wall 172 of the fluid tank 171 may include slots or openings and seals (not numbered) which are suitable for this purpose.
(41) The atomizer assembly block 179 may have at least one interior impeller cavity 180. At least one atomizing impeller 190 may be mounted for rotation in the impeller cavity 180 typically on an impeller shaft 191. At least one fluid flow passage 181 may extend into the atomizer assembly block 179. The fluid flow passage 181 may be disposed in fluid communication with the fluid tank interior 173 of the fluid tank 171. An interior passage 182 in the atomizer assembly block 179 may be disposed in fluid communication with the fluid flow passage 181. The impeller cavity 180 may be disposed in fluid communication with the interior passage 182 typically through an atomizing impeller port 183. An atomizer outlet port 184 may establish fluid communication between the impeller cavity 180 and the blower tube interior 57 of the blowing apparatus 50 at the downstream surface of the atomizer assembly block 179.
(42) At least one fluid flow valve opening 187 may extend into the atomizer assembly block 179 of the atomizer assembly 178. The fluid flow passage 181 may be disposed in fluid communication with the fluid flow valve opening 187. A fluid flow valve 195 may be threaded into the fluid flow valve opening 187. Accordingly, the fluid flow valve 195 can be bidirectionally threaded in the fluid flow valve opening 187 to vary the size or width of the opening between the fluid flow passage 181 and the interior passage 182 to correspondingly control the rate of flow of the liquid 42 as the liquid 42 flows from the fluid tank interior 173 of the fluid tank 171 through the fluid flow passage 181 and into the interior passage 182 and the impeller cavity 180, respectively.
(43) A pressure port 188 may be provided in the atomizer assembly block 179 of the atomizer assembly 178. The pressure port 188 may open to the blower tube interior 57 of the blower tube 56 at the upstream surface of the atomizer assembly block 179. At least one pressure port fluid passage 185 may extend into the atomizer assembly block 179. The pressure port fluid passage 185 may be disposed in fluid communication with the fluid tank interior 173 of the fluid tank 171 and with the pressure port 188. At least one tank pressure valve opening 186 may extend into the atomizer assembly block 179. The tank pressure valve opening 186 may be disposed in fluid communication with and between the pressure port fluid passage 185 and the pressure port 188. A tank pressure valve 194 may be threaded into the tank pressure valve opening 186. Accordingly, the tank pressure valve 194 can be bidirectionally threaded in the tank pressure valve opening 186 to vary the size or width of the communicative opening between the pressure port fluid passage 185 and the pressure port 188 to bleed off a selected quantity of the liquid 42 from the fluid tank interior 173 of the fluid tank 171 into the blower tube interior 57 of the blower tube 56 to correspondingly control the pressure of the liquid 42 as it flows from the fluid tank interior 173 of the fluid tank 171 through the fluid flow passage 181 into the interior passage 182 and through the impeller cavity 180. The rotational speed of the atomizing impeller 190 may thus be selectively increased or decreased by increasing or decreasing, respectively, the pressure of the liquid 42 by manipulation of the tank pressure valve 194.
(44) In typical application of the fluid applicator assembly 170, a supply of the liquid 42 may be placed in the fluid tank interior 173 of the fluid tank 171. In some embodiments, this may be accomplished by removing the fill neck cap 175 from the fill neck 174, pouring the liquid 42 into the fluid tank interior 173 through the fill neck 174 and replacing the fill neck cap 175 on the fill neck 174. The blowing apparatus 50 may be aimed at the target space and/or surface, as was heretofore described with respect to the apparatus 1 in
(45) As the air 40 flows around the sides of the atomizer assembly block 179 of the atomizer assembly 178 and past the atomizer outlet port 184, the resulting pressure drop in the impeller cavity 180 may draw the liquid 42 from the fluid tank interior 173 of the fluid tank 171 through the fluid passage 181 and the interior passage 182, respectively, and into the impeller cavity 180 typically through the atomizing impeller port 183. The pressurized liquid 42 may rotate the atomizing impeller 190, which may in turn atomize the liquid 42 and eject the resulting atomized liquid droplets 46 through the atomizer outlet port 184 into the blower tube interior 57. The atomized liquid droplets 46 may be ejected from the blower tube discharge end 58 of the blower tube 56 and uniformly fill the target space and/or coat and dry on the target surface or surfaces, thus forming uniform dispersal of the liquid 42 in the target space and/or coverage of the liquid 42 on the target surface or surfaces.
(46) Referring next to
(47) An atomizer assembly 208 may be disposed in the blower tube interior 57 of the blowing apparatus 50 and the fluid tank interior 203 of the fluid tank 201. The atomizer assembly 208 may facilitate contact between the liquid 42 to be atomized and the air 40 flowing through the blower tube interior 57 of the blower tube 56. In some embodiments, the atomizer assembly 208 may include an atomizer assembly block 209. The atomizer assembly block 209 may be sealingly mounted to the fluid tank wall 202 of the fluid tank 201 and the blower tube 56 of the blowing apparatus 50 according to the knowledge of those skilled in the art. The blower tube 56 of the blowing apparatus 50 and the fluid tank wall 202 of the fluid tank 201 may include slots or openings and suitable seals (not numbered) which are suitable for this purpose. The atomizer assembly block 209 may have an upstream surface 209a which faces the upstream portion (relative to the direction of flow of the air 40) of the blower tube interior 57 and a downstream surface 209b which faces the downstream portion of the blower tube interior 57.
(48) At least one atomizing impeller 216 may be mounted at the downstream surface 209b of the atomizer assembly block 209. In some embodiments, the atomizing impeller 216 may be mounted on an impeller shaft 217 which extends from the atomizer assembly block 209.
(49) At least one upstream fluid passage 211 may extend through the atomizer assembly block 209 of the atomizer assembly 208. At least one upstream fluid outlet port 212 may open to the upstream surface 209a of the atomizer assembly block 209 in fluid communication with the blower tube interior 57. The upstream fluid passage 211 may establish fluid communication between the fluid tank interior 203 of the fluid tank 201 and the blower tube interior 57 at the upstream fluid outlet port 212. At least one through passage 228 may extend through the atomizer assembly block 209 from the upstream surface 209a at the upstream fluid outlet port 212 to the downstream surface 209b. The through passage 228 may be disposed adjacent to the atomizing impeller 216.
(50) At least one downstream fluid passage 213 may extend at least partially through the atomizer assembly block 209 of the atomizer assembly 208. At least one downstream fluid outlet port 214 may open to the downstream surface 209b of the atomizer assembly block 209 in fluid communication with the blower tube interior 57. The downstream fluid passage 213 may establish fluid communication between the fluid tank interior 203 of the fluid tank 201 and the blower tube interior 57 at the downstream fluid outlet port 214.
(51) In some embodiments, a port cavity 215 may extend into the downstream surface 209b of the atomizer block assembly 209 typically behind or upstream with respect to the atomizing impeller 216. The downstream fluid outlet port 214 may open into the port cavity 215.
(52) In some embodiments, an upstream port access opening 220 may extend through fluid tank wall 202 of the fluid tank 201. The upstream port access opening 220 may be disposed in communication with the upstream fluid passage 211. A removable port cap 221 may close the upstream port access opening 220. The port cap 221 may be removed from the upstream port access opening 220 to facilitate access to the upstream fluid passage 211 such as for the purpose of removing blockages in the upstream fluid passage 211 and/or for other purposes which may be deemed necessary.
(53) A downstream port access opening 224 may extend through fluid tank wall 202 of the fluid tank 201. The downstream port access opening 224 may be disposed in communication with the downstream fluid passage 213. A removable port cap 225 may open the downstream port access opening 224. The port cap 225 may be removed from the downstream port access opening 224 such as for the purpose of removing blockages in the downstream fluid passage 213 and/or for other purposes which may be deemed necessary.
(54) In typical application of the apparatus 200, a supply of the liquid 42 may be placed in the fluid tank interior 203 of the fluid tank 201 such as by removing the fill neck cap 205 from the fill neck 204 and pouring the liquid 42 into the fluid tank interior 203 through the fill neck 204. The blowing apparatus 50 may be aimed at the target space and/or surface, as was heretofore described with respect to the apparatus 1 in
(55) As the air 40 flows past the upstream fluid outlet port 212 in the upstream surface 209a and through the through passage 228 in the atomizer assembly block 209 of the atomizer assembly 208, the resulting pressure drop at the upstream fluid outlet port 212 may draw the liquid 42 from the fluid tank interior 203 of the fluid tank 201 through the upstream fluid passage 211 and into the blower tube interior 57 through the upstream fluid outlet port 212. The liquid 42 may travel with the flowing air 40 through the through passage 228 and contact and rotate the atomizing impeller 216, which may atomize the liquid 42 and eject the resulting atomized liquid droplets 46 from the blower tube discharge end 58 of the blower tube 56.
(56) Simultaneously, the rotating atomizing impeller 216 may create a pressure drop at the downstream fluid outlet port 214 in the port cavity 215 and through the downstream fluid passage 213. This pressure drop may draw the liquid 42 from the fluid tank interior 203 through the downstream fluid passage 213 and from the downstream fluid outlet port 214. The atomizing impeller 216 may atomize the liquid 42 and eject the resulting atomized liquid droplets 46 from the blower tube discharge end 58 of the blower tube 56. The atomized liquid droplets 46 may uniformly fill the target space and/or coat and dry on the target surface or surfaces, thus facilitating uniform dispersal of the liquid 42 in the target space and/or coverage of the liquid 42 on the target surface or surfaces.
(57) Referring next to
(58) The fluid ejection conduit of the fluid applicator assembly 301 may include a fluid ejection passage 319 which is disposed in fluid communication with the tube opening 326 (
(59) Application of the fluid applicator assembly 101 may be as was heretofore described with respect to the fluid applicator assembly 1 in
(60) As illustrated in
(61) While certain illustrative embodiments of the disclosure have been described above, it will be recognized and understood that various modifications can be made to the embodiments and the appended claims are intended to cover all such modifications which may fall within the spirit and scope of the disclosure.