1. Field of the Invention
The present invention relates to a nozzle assembly, and more particularly, to a push-type nozzle assembly for liquid.
2. Description of Prior Art
A conventional nozzle assembly 100 is shown in
By pushing the push mount 101 to le the air in the container escape from the outlet 101a and the lower pressure sucks the liquid in the container into the reception tube 108 via the hose 109. The spring 106 is compressed and the bottom of the tube 105 contacts the bead 107 which seals the hole 108a of the reception tube 108 such that a gap is defined between the tube 105 and the cone-shaped cap 104. The liquid in the reception tube 108 enters into the tube 105 via the hole 105a and the gap. The liquid is then sucked and escapes from the outlet 101a via the suction tube 103. When releasing the push mount 101, the liquid in the reception tube 108 flows back to the container.
Although the conventional push-type nozzle assembly 100 can suck the liquid and spray the liquid from the nozzle, the spring 106 and the bead 107 made by metal and are in contact with the liquid directly and may cause chemical change to the liquid and/or be harmful to the users. Another improved nozzle assembly 200 is disclosed in
The present invention intends to provide a push-type nozzle assembly to improve the shortcomings of the above mentioned conventional nozzle assemblies.
The present invention relates to a push-type nozzle assembly and comprises a main tube, a valve, a suction unit and a push unit. The main tube includes two sections of different diameters and a hose is connected to the main tube. The main tube has a top room and a bottom room which has a smaller diameter than that of the top room. An opening is defined in the bottom room. The valve is located in the bottom room of the main tube and movably seals the opening. The suction unit is located in the top room and has a push rod, a connection rod, a block and a seal sleeve. The push rod is a hollow rod and has a connection portion on the top thereof. The connection rod has a cylindrical portion which is inserted into the push rod. The cylindrical portion has multiple axial paths defined in the outer surface thereof. The connection rod has a disk-shaped stop on the lower section thereof. The block is movably mounted between the push rod and the connection rod. The block has a through hole through which the push rod extends. The through hole has an annular portion so as to be sealed with the stop. The seal sleeve is a hollow tube and mounted between the top room and the push rod. The seal sleeve has a contact portion at the lower end thereof. A spring is mounted between the seal sleeve and the push rod. The spring has its lower end contacting against the contact portion. The spring provides a force to move the block and the connection rod back and forth. The push unit has a cover which is secured to the open top of the container. A push mount is connected to the cover and mounted to the connection portion of the push rod and has an outlet. Because the spring is located outside of the push rod, the spring does directly contact the liquid which is avoided from being chemically changed.
The present invention will become more obvious from the following description when taken in connection with the accompanying drawings which show, for purposes of illustration only, a preferred embodiment in accordance with the present invention.
Referring to
The valve 2 is located in the bottom room 12 of the main tube 1 and movable up and down to seal the opening 13. The valve 2 is a spiral and resilient valve which has a first end 21 on the top thereof and a second end 22 on the bottom thereof. A hole is defined in the first end 21. The second end 22 has a head 221 which seals the opening 13 and a resilient portion 23 is connected between the first and second ends 21, 22. The valve 2 can also be a bead as shown in
The suction unit 3 is located in the top room 11 and comprises a push rod 31, a connection rod 32, a block 33 and a seal sleeve 34. The push rod 31 is a hollow rod and has a connection portion 311 on the top thereof. The push rod 31 has a protrusion 312 on the outer periphery thereof. The connection rod 32 has a cylindrical portion 321 which is inserted into the push rod 31. The cylindrical portion 321 has multiple axial paths 322 defined in the outer surface thereof. The connection rod 32 has a disk-shaped stop 323 on the lower section thereof and the block 33 is movably mounted between the push rod 31 and the connection rod 32. The block 33 has a through hole 331 through which the push rod 31 extends. The through hole 331 has an annular portion 332 at the lower end thereof so as to be sealed with the stop 323. The seal sleeve 34 is a hollow tube and mounted between the top room 11 and the push rod 31. The protrusion 312 of the push rod 31 is located within the seal sleeve 34. The seal sleeve 34 has a contact portion 341 at the lower end thereof. A spring 35 is mounted between the seal sleeve 34 and the protrusion 312 of the push rod 31. The lower end of the spring 35 contacts against the contact portion 341. The spring 35 provides a force to move the block 33 and the connection rod 32 back and forth.
As shown in
Because the spring 35 is located between the push rod 31 and the seal sleeve 34 so that the spring 35 does directly contact the liquid which is avoided from being chemically changed. The main tube 1, the valve 2, the suction unit 3 can be modularized so that the stock can be reduced while the range of application is increased.
Referring to
As shown in
While we have shown and described the embodiment in accordance with the present invention, it should be clear to those skilled in the art that further embodiments may be made without departing from the scope of the present invention.
Number | Name | Date | Kind |
---|---|---|---|
3187960 | Gorman | Jun 1965 | A |
4512501 | Foster | Apr 1985 | A |
5271530 | Uehira et al. | Dec 1993 | A |
5720419 | Li | Feb 1998 | A |
6045008 | Gonzalez Fernandez et al. | Apr 2000 | A |
6196424 | Bougamont et al. | Mar 2001 | B1 |
6415959 | Bougamont et al. | Jul 2002 | B1 |
6422425 | Tada | Jul 2002 | B1 |
7059499 | Masuda | Jun 2006 | B2 |
7281644 | Cater | Oct 2007 | B2 |
8056770 | Lompech et al. | Nov 2011 | B2 |
20080118368 | Roy et al. | May 2008 | A1 |
20080210713 | Langlois et al. | Sep 2008 | A1 |
20110278328 | Kang | Nov 2011 | A1 |
20120267399 | Moretti | Oct 2012 | A1 |
20120325862 | Kuwahara et al. | Dec 2012 | A1 |
Number | Date | Country | |
---|---|---|---|
20120292347 A1 | Nov 2012 | US |