Sterilization equipment and sterilization process
11648325 · 2023-05-16
Assignee
Inventors
Cpc classification
A61L2202/15
HUMAN NECESSITIES
International classification
Abstract
The present application relates to a field of sterilization and disinfection, and in particular, relates to a sterilization equipment and a sterilization process. A sterilization equipment includes a rotatable table, a heat transmission pipe, a suction pipe, a pretreatment gas pipe and a protective gas pipe; a plurality of working station modules are provided on the rotatable table; a heating pipe is provided inside the working station module and configured for communicating with the heat transmission pipe; a material port, a suction port, a first gas inlet, a second gas inlet and a reagent port are defined in the working station module; when the rotatable table is rotated, the working station module is moved to a feeding station, a pretreatment station, a pre-sterilization station, a reagent adding station, a sterilization station, a cleaning station and a discharging station in turn.
Claims
1. A sterilization equipment comprising a rotatable table, a heat transmission pipe, a suction pipe, a pretreatment gas pipe and a protective gas pipe; wherein a plurality of working station modules are provided on the rotatable table; a heating pipe is provided inside each of the working station modules and configured for communicating with the heat transmission pipe; and a material port, a suction port, a first gas inlet, a second gas inlet and a reagent port are defined in each of the working station modules; when the rotatable table is rotated, each of the working station modules is moved to a feeding station, a pretreatment station, a pre-sterilization station, a reagent adding station, a sterilization station, a cleaning station and a discharging station in turn; at the feeding station, a material to be sterilized is introduced into each of the working station modules through the material port; at the pretreatment station, the suction pipe communicates with an interior of each of the working station modules through the suction port, and the pretreatment gas pipe communicates with the interior of each of the working station modules through the first gas inlet; at the pre-sterilization station, the suction pipe communicates with the interior of each of the working station modules through the suction port; at the reagent adding station, a sterilant is introduced into each of the working station modules through the reagent port, the suction pipe communicates with the interior of each of the working station modules through the suction port, and the protective gas pipe communicates with each of the interior of the working station modules through the second gas inlet; at the sterilization station, the suction pipe communicates with the interior of each of the working station modules through the suction port; at the cleaning station, the suction pipe communicates with the interior of each of the working station modules through the suction port, and the protective gas pipe communicates with the interior of each of the working station modules through the second gas inlet; and at the discharging station, the material after sterilization is taken out of the material port.
2. The sterilization equipment according to claim 1, wherein each of the working station modules is configured to be further moved to a spare station when the rotatable table is rotated; the spare station is positioned between the feeding station and the discharging station; and a second material to be sterilized is introduced at the spare station or a second material after sterilization is taken out of the spare station.
3. The sterilization equipment according to claim 1, wherein the heat transmission pipe comprises an annular water inlet pipe and an annular water outlet pipe; one end of the heating pipe communicates with the annular water inlet pipe; and a second end of the heating pipe communicates with the annular water outlet pipe.
4. The sterilization equipment according to claim 1, wherein the material port and the reagent port are formed on a side of each of the working station modules facing away from a center of the rotatable table; and the suction port, the first gas inlet and the second gas inlet are formed on a side of each of the working station modules facing the center of the rotatable table.
5. The sterilization equipment according to claim 2, wherein at least three of the pretreatment stations are provided; at least three of the cleaning stations are provided; a number of the plurality of working station modules is equal to a sum of the numbers of the feeding stations, the pretreatment stations, the pre-sterilization stations, the reagent adding stations, the sterilization stations, the cleaning stations, the discharging stations and the spare stations; and the plurality of working station modules are symmetrically arranged about a center of the rotatable table.
6. The sterilization equipment according to claim 1, wherein each of the working station modules has a volume of 0.1-0.99 cubic meters.
7. The sterilization equipment according to claim 1, wherein the suction pipe, the pretreatment gas pipe and the protective gas pipe are all detachably connected to each of the working station modules, and the heat transmission pipe is detachably connected to the heating pipe.
8. A sterilization process comprising the following steps: performing a feeding step, wherein a working station module is moved to a feeding station; a material to be sterilized is introduced into the working station module through a material port; and a heat transmission pipe is connected to a heating pipe for heating the working station module; performing a pretreatment step, wherein the working station module is moved to a pretreatment station; the heat transmission pipe is connected to the heating pipe for heating the working station module; a suction pipe communicates with an interior of the working station module through a suction port for vacuumizing the working station module; and a pretreatment gas pipe communicates with the interior of the working station module through a first gas inlet for introducing a pretreatment gas into the working station module; performing a pre-sterilization step, wherein the working station module is moved to a pre-sterilization station; the heat transmission pipe is connected to the heating pipe for heating the working station module; and the suction pipe communicates with the interior of the working station module through the suction port for vacuumizing the working station module; performing a reagent adding step, wherein the working station module is moved to a reagent adding station; a sterilant is introduced into the working station module through a reagent port; the heat transmission pipe is connected to the heating pipe for heating the working station module; the suction pipe communicates with the interior of the working station module through the suction port for vacuumizing the working station module; and a protective gas pipe communicates with the interior of the working station module through a second gas inlet for introducing a protective gas into the working station module; performing a sterilization step, wherein the working station module is moved to a sterilization station; the heat transmission pipe is connected to the heating pipe for heating the working station module; and the suction pipe communicates with the interior of the working station module through the suction port for vacuumizing the working station module; pulse cleaning, wherein the working station module is moved to a cleaning station; the heat transmission pipe is connected to the heating pipe for heating the working station module; the suction pipe communicates with the interior of the working station module through the suction port for vacuumizing the working station module; and the protective gas pipe communicates with the interior of the working station module through the second gas inlet for introducing a second protective gas into the working station module; and performing a discharging step, wherein the working station module is moved to a discharging station; and the material after sterilization is taken out of the material port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) The present application is further described in detail below in combination with
(5) An embodiment in the present application discloses a sterilization equipment.
(6) Referring to
(7) Referring to
(8) Referring to
(9) The hot water in the hot water tank 001 is pumped to the annular water inlet pipe 111 by a water pump, and further pumped to the working station module 200 for heating the working station module 200. The cooled water after the heat transmission may flow back to the hot water tank 001 through the annular water outlet pipe 112 for being reheated.
(10) Referring to
(11) Referring to
(12) The material to be sterilized could be introduced in the working station module 200 through the material port 201. The material after sterilization could be taken out of the material port 201. The working station module 200 may be communicated with the suction pipe 120 through the suction port 202. The working station module 200 may be communicated with the pretreatment gas pipe 130 through the first gas inlet 203. The working station module 200 may be communicated with the protective gas pipe 140 through the second gas inlet 204. The sterilant in the sterilization medicament source 004 is able to be introduced into the working station module 200 through the reagent port 205 to sterilize the material. Generally, the material port 201, the suction port 202, the first gas inlet 203, the second gas inlet 204 and the reagent port 205 are all in a closed state. When being required to be connected to the corresponding pipe, the corresponding port is opened.
(13) The following sterilization process is adopted to sterilize the material.
(14) Feeding step: any one of the empty working station modules 200 is moved to the feeding station 101. The material to be sterilized is introduced into the working station module 200 through the material port 201. The heat transmission pipe 110 is connected to the heating pipe 210 for heating the material to be sterilized up to 35-75° C.
(15) Pretreatment step: the rotatable table 100 is rotated and the working station module 200 is moved to the first pretreatment station 102. The heat transmission pipe 110 is connected to the heating pipe 210 for continuously heating the material to be sterilized. The suction pipe 120 communicates with the interior of the working station module 200 through the suction port 202. The vacuum pump 005 is started for vacuumizing the working station module 200. The pretreatment gas pipe 130 communicates with the interior of the working station module 200 through the first gas inlet 203 and the pretreatment gas is introduced into the working station module 200. In this embodiment, the pretreatment gas adopts carbon dioxide or nitrogen with a humidity between 30% RH and 90% RH. The pressure inside the working station module 200 is between −50 kPa and +200 kPa after the gas introduction.
(16) The rotatable table 100 is rotated, the working station module 200 is moved to the other two pretreatment station 102 and the above pretreatment operation is repeated.
(17) Pre-sterilization step: the rotatable table 100 is rotated and the working station module 200 is moved to the pre-sterilization station 103. The heat transmission pipe 110 is connected to the heating pipe 210 for continuously heating the material to be sterilized. The suction pipe 120 communicates with the interior of the working station module 200 through the suction port 202. The vacuum pump 005 is started for vacuumizing the working station module 200.
(18) Reagent adding step: the rotatable table 100 is rotated and the working station module 200 is moved to the reagent adding station 104. The sterilization medicament source 004 communicates with the working station module 200 through the reagent port 205, and the sterilant is introduced. The heat transmission pipe 110 is connected to the heating pipe 210 for continuously heating the material to be sterilized. The suction pipe 120 communicates with the interior of the working station module 200 through the suction port 202. The vacuum pump 005 is started for vacuumizing the working station module 200. The protective gas pipe 140 communicates with the interior of the working station module 200 through the second gas inlet 204. The protective gas is introduced into the working station module 200. In this embodiment, the protective gas adopts carbon dioxide or nitrogen.
(19) Sterilization step: the rotatable table 100 is rotated and the working station module 200 is moved to the sterilization station 105. The heat transmission pipe 110 is connected to the heating pipe 210 for continuously heating the material to be sterilized. The suction pipe 120 communicates with the interior of the working station module 200 through the suction port 202. The vacuum pump 005 is started for vacuumizing the working station module 200.
(20) Pulse cleaning: the rotatable table 100 is rotated and the working station module 200 is moved to the first cleaning station. The heat transmission pipe 110 is connected to the heating pipe 210 for continuously heating the material to be sterilized. The suction pipe 120 communicates with the interior of the working station module 200 through the suction port 202. The vacuum pump 005 is started for vacuumizing the working station module 200. The protective gas pipe 140 communicates with the interior of the working station module 200 through the second gas inlet 204. The protective gas is introduced into the working station module 200.
(21) The rotatable table 100 is rotated, the working station module 200 is moved to the other two cleaning station 106 and the above pulse cleaning operation is repeated.
(22) Discharging step: the rotatable table 100 is rotated and the working station module 200 is moved to the discharging station 107. The material after sterilization is taken out of the material port 201.
(23) The sterilization equipment in the present application has the following advantages.
(24) The operation mode is designed to be a rotatory sterilization structure, realizing the continuous flow-line sterilization. The sterilization equipment of the present application has high sterilization capacity, small occupied area, and low cost.
(25) The working station module 200 has a small volume, so that the penetration rate is high, and the average use amount of the sterilant is small. In addition, a part of the sterilant that needs to be discarded may be used for pre-sterilizing the product, effectively improving the using rate of the sterilant, reducing the injection amount of the sterilant in the next station, so as to save the sterilant, and reduce the pollution of the sterilant to the environment.
(26) The rotatory sterilization equipment shares the heating system, the vacuum system, the protective gas system. These common systems may all stay in a constant pressure, constant temperature or constant humidity state, improving the stability of the equipment and reducing the failure rate of the equipment.
(27) The pretreatment gas source used in the sterilization process may be compounded outside the cabinet. The compounded gas source may be introduced into the cabinet quickly when required, effectively shortening the operation time of the whole sterilization process and improving the operation efficiency.
(28) The sterilant in the sterilization process may be formulated outside the cabinet and be directly introduced into the cabinet quickly, which improves the efficiency and effectively controls the concentration of the sterilant.
(29) The above are the preferred embodiments of the present application, which are not intended to limit the protection scope of the present application. Therefore, all equivalent changes made according to the structure, shape and principle of the present application should fall within the protection scope of the present application.