BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
FIG. 1 shows the first sectional view of the structure of the lotion pump, which is not in use.
FIG. 2 shows an enlarged view sectional view of part A of FIG. 1.
FIG. 3 shows a partial sectional and perspective view of the piston component of the present invention.
FIG. 4 shows a second sectional view of the structure of the lotion pump, when the pump and activating tube is pushed up.
FIG. 5 shows an enlarged sectional view of part B of FIG. 4.
FIG. 6 shows a third sectional view of the structure of the lotion pump when the pump and activating tube is pushed down.
FIG. 7 shows another sectional view of an embodiment of the resilient component of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
The features and the advantages of the present invention will be more readily understood upon a thoughtful deliberation of the following detailed description of a preferred embodiment of the present invention with reference to the accompanying drawings.
As shown in FIGS. 1 and 2, there is the preferred embodiment of the lotion pump disclosed in the present invention.
A piston cylinder has a containment slot 11 formed inside, and the bottom of the containment slot 11 has an opening 12 in cone shape. The top of the containment is sealed by a tip seat 13, and a through hole 14 is placed in the center of the tip seat 13. The through hole 14 is connected to the containment slot 11.
A shut-off valve 20 can be a steel ball, that can be placed at the opening 12 of the containment slot 11 of the piston cylinder 10.
A locking ring 30 is placed on the outside of the top end of the piston 10.
A pump 40 has an activating tube 41 at its bottom, and the activating tube 41 goes through the through hole 14 of the tip seat 13 mentioned above. The activating tube 41 is placed the bottom of the activating tube 41 inside the containment slot 11 of the piston cylinder 10 in a condition that can be moved up and down. A tapered section 42 is placed at the bottom of the activating tube 41, and the tapered section 42 has a flow hole 43. An upper limit ring surface 44 and a lower limit ring surface 45 are placed on the top and bottom end of the tapered section 42. A first ring groove 46 is placed on the upper limit ring surface 44, and a second ring groove 47 is placed on the lower limit surface 45.
A piston 50 is placed on the tapered section 42 of the activating tube 41 mentioned above in a sliding condition, and the piston 50 includes an inner ring wall 51 and an outer ring wall 52. The outer ring wall 52 is placed against the containment slot 11 inside the piston cylinder 10, and a protruding ring 53 is formed on the top end of the inner ring wall, which can be connected to the first ring groove 46 of the upper limit ring surface 44. The bottom edge 54 of the inner ring wall 51 can be connected to the second ring groove 46 of the lower limit surface 45.
A resilient component 60 can spring upward by pressing down on the activating tube 41.
As shown in FIG. 1, the resilient component 60 can be a spring, and it can be placed between the bottom of the activating tube 41 and a containment slot 11. A slot 48 is placed on the bottom of the activating tube 41 for the top of the resilient component to connect, and an annular shoulder 15 is placed at the bottom of the containment slot 11 for the bottom of the resilient component 60 to be placed against.
The protruding ring 53 placed on the top end of the inner ring wall 51 of the piston 50 can be at an angle that leans outward, and the bottom of the protruding ring 53 forms a limit blocking edge 531. The limit blocking edge 531 can be placed against the upper limit ring surface 44. By this structure, the protruding ring 53 mentioned above can be double sealed with the limit blocking edge 531, which makes the sealing effect between the inner ring wall of the piston 50 and the activating tube 41 better.
The bottom edge 54 of the inner ring wall 51 of the piston 50 and the second ring groove 47 placed on the lower limit ring surface 45 can be connected in a cone shaped angle. By so doing, when the bottom edge 54 touches the second ring groove, it can use the principle of guidance by the cone angle surface to connect.
Through the above structure and design, the operation of the present invention is explained herein.
As shown in FIG. 1, the pump 40 is lowered to the lowest positioned, and this position is the condition before the lotion pump is used. At this time, the pump is positioned through connecting the inner screw part 401 to the external screw part 131 placed on the outside of the tip seat 13, and the piston 50 part is as shown in FIG. 2. The protruding ring 53 at the top of the inner ring wall 51 is inserted into the first ring groove 46 at the upper limit ring surface 44 of the activating tube 41, and the limit blocking edge 531 at the bottom of the protruding ring 53 is placed against the upper limit surface 44. By so doing, the space between the piston 50 and the activating tube 41 is sealed completely.
As shown in FIGS. 4 and 5, the condition when the pump is being used is shown. After twisting the pump to disconnect the inner screw part 401 from the external screw part 131 mentioned before, the pump sprung upward because the bottom of the activating tube 41 is pushed up by the resilient component 60. Therefore, when the activating tube 41 is pushed up, the second ring groove 47 of the lower limit ring surface 45 connects to the bottom edge 54 of the inner ring wall 51 of the piston 50, which makes the space between the piston 50 and the activating tube 41 sealed tightly. A better vacuum effect is created when the piston is pushed up, and when this vacuum is created, it draws lotion from the opening 12 into the containment slot 11 inside the piston cylinder 10, and it creates a shut-off effect by shut-off valve 20.
As shown in FIG. 6, the pump 40 is pressed down to drive the activating tube 41 and piston 50 down. When the activating tube 41 slides down, because the fraction between the outer ring wall 52 of the piston 50 and the containment slot 11 of the activating tube 41 is greater than the fraction between the inner ring wall 51 and the activating tube 41, the speed for the piston 50 to go down is slower. The protruding ring 53 at the top of the inner ring wall 51 of the piston 50 is made to connect to the first ring groove 46 at the upper limit ring surface 44 of the activating tube 41. The second ring groove 47 of the lower limit ring surface 45 separates from the bottom edge 54 of the inner ring wall 51 of the piston 50 and brings the function of the flow hole 43 to its full effect. The lotion W is drawn from the space between the opening 12 and the activating tube 41 into the inside of the activating tube 41, and the lotion W comes out from the pump 40.
As shown in FIG. 7, the resilient component 60B is placed on the outside of the top of the activating tube 41, and the top of the resilient component 60B is pushed against the bottom of the pump 40. The inner casing 71 and outer casing 72 are formed between the top of the locking ring 30 and the bottom of the pump 40, which covers the resilient component 60 to create protective, anti-dust and beautifying effect.