Photopolymerization reaction system including air injection module for preventing contamination of ultraviolet-transmitting plate
12065520 ยท 2024-08-20
Assignee
Inventors
- Hyo Jung KIM (Daejeon, KR)
- Kyung Hoon Min (Daejeon, KR)
- Eun Jung Joo (Daejeon, KR)
- Ye Hoon Im (Daejeon, KR)
Cpc classification
C08F2/01
CHEMISTRY; METALLURGY
B01J2219/0869
PERFORMING OPERATIONS; TRANSPORTING
B01J4/008
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J19/00
PERFORMING OPERATIONS; TRANSPORTING
B01J19/12
PERFORMING OPERATIONS; TRANSPORTING
B01J4/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A photopolymerization reaction system according to an embodiment of the present disclosure may include: a housing; a UV lamp disposed within the housing; a UV light-transmitting plate disposed below the UV lamp; a ventilation part configured to receive supply and discharge therethrough of a first flow of air for heat removal from the UV lamp; and an air injection module configured to inject a second flow of air into the housing between the UV light-transmitting plate and the reactant, the air injection module being configured to prevent the UV light-transmitting plate from being contaminated by by-products generated by a photopolymerization reaction in which a reactant is supplied below the UV light-transmitting plate.
Claims
1. A photopolymerization reaction system comprising: a housing; a UV lamp disposed within the housing; a UV light-transmitting plate disposed below the UV lamp; a frame accommodating the UV light-transmitting plate therein; a substrate disposed below and spaced apart from the UV light-transmitting plate in a height direction of the frame such that a top surface of the substrate faces a bottom surface of the UV light-transmitting plate, the substrate oriented parallel to the UV light-transmitting plate such that a plate-shaped space extends between the substrate and the UV light-transmitting plate, the substrate disposed below the frame; a ventilation part configured to receive supply and discharge therethrough of a first flow of air for heat removal from the UV lamp; and an air injection module configured to inject a second flow of air into the housing between the UV light-transmitting plate and a reactant disposed on the top surface of the substrate, the second flow of air being a portion of the first flow of air, the air injection module configured to inject the second flow of air through the plate-shaped space in a width direction of the frame perpendicular to the height direction and parallel to the top surface of the substrate and the bottom surface of the UV light-transmitting plate, the air injection module being configured to prevent the UV light-transmitting plate from being contaminated by by-products generated by a photopolymerization reaction in which the reactant is disposed on the top surface of the substrate below the UV light-transmitting plate, wherein the air injection module comprises: a plurality of air holes each extending through upper and lower surfaces of one side of the frame in the height direction, the plurality of air holes being spaced apart from one another along a length direction of the frame perpendicular to the height direction and the width direction; and a guide unit disposed below the plurality of air holes and configured to guide an injection direction of the second flow of air that is discharged through the plurality of air holes, so as to guide the second flow of air to be injected in the width direction from the one side of the frame to another side of the frame, the guide unit comprising a guide portion spaced apart in the height direction from the lower surface of the one side of the frame and extending parallel to the UV light-transmitting plate in the width direction from the one side of the frame to the another side of the frame.
2. The photopolymerization reaction system of claim 1, wherein the guide unit comprises a deviation preventing portion connecting the guide portion to the lower surface of the one side of the frame so as to prevent the second flow of air from deviating from the guide portion in directions other than the direction in which the guide portion extends.
3. The photopolymerization reaction system of claim 1, wherein the second flow of air is discharged from the photopolymerization reaction system from a location below the frame.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
BEST MODE
(7) A photopolymerization reaction system according to an embodiment of the present disclosure has the following effects. Since a portion of air introduced to remove heat from the UV lamp is injected into a space between a UV light-transmitting plate and a reactant by an air injection module and functions as an air curtain, the injected air may block photopolymerization reaction by-products from evaporating to the lower surface of the UV light-transmitting plate, and prevent the UV light-transmitting plate from being contaminated by contact with the by-products.
(8) In addition, since air supplied into the UV lamp kit to remove heat from the UV lamp is injected, energy may be saved, and the system may be simplified in that it does not require separate components that inject air to prevent contamination of the UV light-transmitting plate.
(9) Furthermore, since an air injection function can be embodied by forming an air hole in a frame that accommodates the UV light-transmitting plate and providing a guide unit below the air hole, the photopolymerization reaction system of the present disclosure may be easily applied to an existing photopolymerization reaction system.
MODE FOR INVENTION
(10) The present disclosure relates to a photopolymerization reaction system.
(11) Hereinafter, embodiments of the present disclosure will be described in more detail with reference to the accompanying drawings.
(12) In the present specification, the UV lamp kit may be construed to mean a structure including a housing, a UV light-transmitting plate, a frame for accommodating the UV light-transmitting plate, and components included in a space formed by the housing and the UV light-transmitting plate or the frame for accommodating the UV light-transmitting plate, which will be described below.
(13) In the present disclosure, the photopolymerization reaction system may be construed to include all components for a photopolymerization reaction, including a polymerization reactor, UV lamp kits disposed on top of the front portion of the polymerization reactor, and a reactant supplied to the polymerization reactor (or a substrate supplied with the reactant).
(14)
(15) Referring to
(16) First, referring to
(17) Below the UV lamp 130, the UV light-transmitting plate P may be disposed, which is capable of transmitting light emitted from the UV lamp 130 while protecting the UV lamp 130 from contamination. The UV light-transmitting plate P is not particularly limited as long as it is capable of transmitting UV light, emitted from the UV lamp 130, with high transmittance. For example, it may be made of a quartz plate.
(18) In addition, the photopolymerization reaction system 1000 may include a frame F for accommodating the UV light-transmitting plate P. For example, as shown in
(19) Meanwhile, referring to
(20) In addition, in the photopolymerization reaction system 1000, a reactant R is supplied below the UV light-transmitting plate P and a photopolymerization reaction may occur. For example, the reactant R may be supplied onto a substrate 300, and provided and placed below the UV light-transmitting plate P or the frame F that accommodates the UV light-transmitting plate P. Meanwhile, although a polymerization reactor, one component of the photopolymerization reaction system 1000, is not separately shown in
(21) Meanwhile, referring to
(22) As shown in
(23) Hence, referring to
(24) The air injection module may include an air hole 210 and a guide unit 220, and may inject air, supplied through the air inlet 111, between the UV light-transmitting plate P and the reactant.
(25) The air hole 210 may be formed to pass through the upper and lower surfaces of one side (a) of the frame F accommodating the UV light-transmitting plate P, and may discharge a portion of air, introduced into the housing 120 through the air inlet 11, to the bottom of the frame F. In addition, the plurality of air holes 210 may also be formed through the frame F, and the amount and rate of air that is injected between the UV light-transmitting plate P and the reactant R may be controlled by changing the width of the air hole 210.
(26) The guide unit 220 is disposed under the air hole 210 and may guide the injection direction of discharged air. Specifically, the guide unit 220 may be disposed under one side of the frame F having the air hole 210 formed therein, and may guide the injection direction of discharged air so that the air discharged through the air hole 210 may be injected in a direction from the one side (a) to the other side of the frame F.
(27) Here, the one side (a) of the frame F having the air hole 210 formed therein may refer to a portion adjacent to any one of the lateral sides of the frame F, and the other side (b) may refer to a portion opposite to the one side (a) of the frame F.
(28) As shown in
(29) The guide portion 221 may be spaced apart from the lower surface of the frame F and may extend in a direction from the one side (a) to the other side (b) of the frame F. Specifically, the guide portion 221 may be disposed below the air hole 210 formed through the one side (a) of the frame F, and may be disposed in parallel with the frame F having the air hole 210 formed therein, so that it may inject air in a direction parallel with the frame F and the UV light-transmitting plate P accommodated in the frame F. In addition, the guide portion 221 may be inclined in a direction which becomes close to the frame (F) or away from the frame (F). The direction in which the guide portion 221 extends may be a direction in which air is injected, and may be the width or length direction of the frame F depending on the formation position of the air hole 210.
(30) Referring to
(31) Meanwhile, referring to
(32) As described above, the photopolymerization reaction system 1000 according to the embodiment of the present disclosure has the following effects. Since a portion of air introduced to remove heat from the UV lamp 130 is injected into a space between the UV light-transmitting plate P and the reactant R by the air injection module 200 and functions as an air curtain, the injected air may block photopolymerization reaction by-products from evaporating to the lower surface of the UV light-transmitting plate P, and prevent the UV light-transmitting plate P from being contaminated by contact with the by-products.
(33) In addition, since air supplied into the UV lamp kit to remove heat from the UV lamp is injected, energy can be saved, and the system can be simplified in that it does not require separate components that inject air to prevent contamination of the UV light-transmitting plate, for example, an air pump, a nozzle and the like.
(34) Furthermore, since an air injection function can be embodied by forming the air hole in the frame for accommodating the UV light-transmitting plate and providing the guide unit below the air hole, the photopolymerization reaction system of the present disclosure may be easily applied to an existing photopolymerization reaction system.
(35) Although the present disclosure has been described in connection with the preferred embodiments mentioned above, various modifications or variations are possible without departing from the subject matter and scope of the present disclosure. Therefore, the appended claims will cover such modifications and variations as fall within the subject matter of the present disclosure.