The present application claims priority under 35 U.S.C. ยง 119 to Japanese Patent Application No. 2022-003888, filed Jan. 13, 2022. The contents of this application are incorporated herein by reference in their entirety.
The present invention relates to a vessel sterilizer.
There is known a sterilizer that sterilizes the inside of a resin vessel by injecting sterilizing gas from a sterilizing nozzle provided on a conveying path of the vessel via the vessel mouth while holding the resin vessel with a gripper provided on a rotating wheel, see Japanese Patent No. 4978706 and Japanese Patent No. 5892206.
For example, in Japanese Patent No. 4978706 and Japanese Patent No. 5892206, a mist of hydrogen peroxide solution (sterilizing gas) is injected from a nozzle fixedly arranged above a vessel being transported, and the sterilizing gas is supplied into the vessel while the mouth of the vessel passes directly below the nozzle.
However, when the rotation speed of the rotating wheel (vessel conveying speed) is increased to increase the process capacity, the time for the vessel to pass below the nozzle is shortened. Thereby, the amount of sterilizing gas supplied to the inside of the vessel is reduced and it would result in insufficient sterilization.
According to one aspect of the present invention, a vessel sterilizer includes a gripper which is configured to hold a vessel having an opening facing upward, the endless conveyor being configured to move the gripper in a conveyance direction along a conveyance rout; a nozzle provided on the conveyance rout and configured to inject sterilizing gas from a spout provided at a bottom end of the nozzle toward the opening of the vessel to supply the sterilizing gas into the vessel; and a swing mechanism configured to horizontally swing the gripper forward in the conveyance direction when the vessel held by the gripper approaches the nozzle along the conveyance rout and configured to horizontally swing the gripper rearward in the conveyance direction when the vessel held by the gripper moves away from the nozzle.
The objects and advantages of the present invention will be better understood from the following description with references to the accompanying drawings in which:
The present invention is described below with references to the embodiments shown in the drawings.
The vessel sterilizer of the present embodiment includes a sterilizing gas injecting wheel (an endless conveying means) 12 and a rotary type hot water rinser, which is not shown. Empty vessels V are supplied to the sterilizing gas injecting wheel 12 from an inlet wheel 14 and sterilizing gas, such as hydrogen peroxide gas, is entirely sprayed on both outside and inside of the vessels V. A vessel V subjected to sprayed sterilizing gas is transported to a dry air injecting wheel and the rotary type hot water rinser on the down stream side via an outlet wheel 16.
In this embodiment, the vessel V may be a resin bottle provided with a screw thread on the outer periphery of the mouth portion Vm and a flange Vf protruding outward below the mouth portion Vm (see
As shown in
As shown in
As illustrated in
Next, the configuration of the gripper 18 of the present embodiment will be described with reference to
The gripper 18 includes a pair of gripping members 18A for gripping the neck of the vessel V below the flange Vf. The base end side of each gripping member 18A is supported by flat springs 28 attached to the right and left sides of a base 26. A biasing member 28A such as a spring is disposed between the flat springs 28, and both ends of the biasing member 28A are attached to each flat spring 28. As a result, the flat spring 28 or the gripping members 18A are biased toward each other.
A side support member 30 is integrally provided above the base end of each gripping member 18A to contact the side surface of the mouth portion Vm of the vessel V and support the mouth portion Vm from the side. When the vessel V is pushed into between the gripping members 18A, the lower portion of the flange Vf of the vessel V is gripped by the gripping members 18A and the side support member 30 abuts against the side of the mouth portion Vm. As a result, the rotating vessel V is stably held by the gripping members 18A and the side support members 30.
The base end of the base 26 of the gripper 18 is integrally attached to the upper end of a vertically arranged rotating shaft 32, and the distal end of the gripper 18 can horizontally swing around the rotating shaft 32 via a swing mechanism. The rotating shaft 32 is rotatably supported on the outer peripheral portion of the rotating wheel 12A, and the lower end of the rotating shaft 32 is attached with the swing lever 34. One end of the swing lever 34 is provided with a cam follower 36 that engages a cam 38 fixedly provided on the sterilizing gas injection wheel 12. The swing lever 34 is also attached to one end of a spring 40 whose the other end is attached to the rotating wheel 12A. Thereby, the swing lever 34 is biased so that the tip of the swing lever 34 provided with the cam follower 36 is urged radially inward with respect to the rotary wheel 12A. Although the cam 38 is partially illustrated in
Outside of the internal sterilizing zones A2 and A3, the centerline of the gripper 18 is positioned along the radial direction of the rotary wheel 12A by an engagement of the cam follower 36 and the cam 38. As the cam follower 36 enters the first internal sterilization section A2, it is gradually pushed outward in the radial direction of the rotating wheel 12A by the cam 38. Thereby, the gripper 18 is rotated about the rotating shaft 32 such that its center line advances in the vessel conveying direction before the rotary shaft 32 reaches the same circumferential position as the nozzle 24 in the first internal sterilization section A2. Namely, the gripper 18 is rotated forward in the conveying direction, and the mouth portion Vm of the vessel V held by the gripper 18 is moved below the nozzle 24 of the first internal sterilization section A2.
The cam follower 36 is then moved radially inward with respect to the rotating wheel 12A along the cam 38 as the rotating wheel 12A is rotated or as the rotating shaft 32 is advanced. Thereby, the gripper 18 is rotated rearward in the conveying direction in accordance with the rotational speed of the rotary wheel 12A. This keeps the mouth Vm of the vessel V held by the gripper 18 below the nozzle 24 of the first internal sterilization section A2.
As the rotary wheel 12A is rotated or the rotating shaft 32 is advanced, the cam follower 36 is moved inward to a position where the center line C of the gripper 18 is positioned in the radial direction of the rotary wheel 12A and further moved radially inward. As a result, the gripper 18 is rotated rearward in the conveying direction in accordance with the rotational speed of the rotary wheel 12A. Thereby, the mouth portion Vm of the vessel V held by the gripper 18 is continuously maintained below the nozzle 24 of the first internal sterilization section A2.
Thereafter, as the rotary wheel 12A is further rotated or the rotating shaft 32 is further advanced, the cam follower 36 is again pushed radially outward beyond the position where the center line C of the gripper 18 is positioned in the radial direction. Thereby, the mouth portion Vm of the vessel V held by the gripper 18 is moved toward the position below the nozzle 24 of the second internal sterilization section A3. In the second internal sterilization section A3, the cam follower 36 moves along the cam 38 as in the first internal sterilization section A2. That is, the cam follower 36 is pushed out radially again. When the centerline C of the gripper 18 is positioned in the radial direction of the rotating wheel 12A, the cam follower 36 moves along the cam 38 to maintain the mouth portion Vm to stay below the nozzle 24 as much as possible.
As described above, according to the vessel sterilizing apparatus of the present embodiment, the gripper is swung forward in the rotation direction of the rotating wheel so that the mouth (opening) is pushed out below the nozzle, when the vessel held by the gripper approaches the nozzle. And when the mouth moves away from the nozzle, the gripper is swung rearward in the direction of rotation of the rotating wheel, so that the mouth of the conveyed vessel can be maintained below one nozzle for a longer period of time (for a predetermined time). Thereby, the amount of sterilizing gas supplied into the vessel from one nozzle is increased even when the vessel is conveyed at high speed.
The vessel sterilizer of the present embodiment sprayed the sterilizing gas on the vessel conveyed in the circumferential direction since the vessel is conveyed by the gripper provided on the outer circumference of the rotating wheel. However, instead of the sterilizing gas injection wheel of the present embodiment, the vessel may be conveyed and sterilized by an endless conveying system having a gripper provided on the outer periphery of an endless chain that is entrained between a pair of sprockets. In this case, the vessel is conveyed by a gripper that alternately transported between a straight section and a curved section, and the sterilizing gas is sprayed into the vessel from a fixed nozzle in either or both of the straight section and the curved section. In front of and behind the fixed nozzle, the gripper is moved forward then backward in the conveying direction respectively, and the mouth of the vessel is maintained longer time below one fixed nozzle as in the present embodiment.
Although the embodiments of the present invention have been described herein with reference to the accompanying drawings, obviously many modifications and changes may be made by those skilled in this art without departing from the scope of the invention.
Number | Date | Country | Kind |
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2022-003888 | Jan 2022 | JP | national |