Ultraviolet irradiation device

The ultraviolet irradiation device addresses the size issue of existing devices by using metal components to transfer heat from the light source to the fluid, ensuring effective temperature control and compact design.

JP7841922B2Active Publication Date: 2026-04-07ENPLAS CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-29
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing fluid sterilization devices are large in size due to the need for a heat dissipation fan and a device to drive it, which is necessary to suppress the rise in temperature of the light source.

Method used

An ultraviolet irradiation device design that includes a metal support member and metal supply or discharge pipes to efficiently transfer heat generated by the light source to the fluid, without increasing the device's size.

Benefits of technology

The device effectively suppresses the rise in temperature of the light source by dissipating heat through metal components, maintaining compact size and efficient sterilization performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an ultraviolet lamp capable of suppressing a rise in a temperature of a light source without increasing a size of a device.SOLUTION: An ultraviolet lamp has a space containing fluid to be irradiated with ultraviolet light, a light source for irradiating ultraviolet light toward the space, a metal support member for supporting the light source, a supply pipe defining a supply channel for supplying fluid to the space, and a discharge pipe defining a discharge channel for discharging the fluid in the space. At least one of the supply pipe and the discharge pipe is made of metal. The support member is in contact with the metallic supply pipe or the metallic discharge pipe.SELECTED DRAWING: Figure 2
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Description

Technical Field

[0005]

[0001] The present invention relates to an ultraviolet irradiation device for irradiating a fluid with ultraviolet light.

Background Art

[0002] It is widely known that fluids such as liquids can be sterilized using ultraviolet light. For example, Patent Document 1 describes a fluid sterilization device that irradiates a fluid flowing in a flow path extending in the axial direction with ultraviolet light in the axial direction.

[0003] Specifically, the fluid sterilization device described in Patent Document 1 includes a light source including a semiconductor light emitting element that emits ultraviolet light, and a housing having a flow path through which the fluid to be sterilized flows in the axial direction. The light source is housed in a case disposed at one end portion in the axial direction of the housing. The housing is made of stainless steel and has a tapered structure in which the cross-sectional area of the flow path gradually increases from one end portion to the other end portion. The tapered structure has an inclination that matches the orientation angle of the semiconductor light emitting element. Further, at the other end portion of the housing, a rectifying means for adjusting the flow of the fluid is provided. Furthermore, it is described that a heat radiation fan may be disposed in the case.

[0004] In Patent Document 1, by having a tapered structure in which the housing has an inclination that matches the orientation angle of the semiconductor light emitting element, ultraviolet light can reach a position far from the light source, and by irradiating the fluid with the flow adjusted by the rectifying means with ultraviolet light, the fluid is evenly irradiated with ultraviolet light, so that the sterilization effect can be enhanced. In addition, the rise in the temperature of the light source due to the use of the light source is suppressed by using a heat radiation fan.

Prior Art Documents

Patent Documents

[0005]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0006] However, the fluid sterilization device described in Patent Document 1 had the problem of being large in size because it required a heat dissipation fan and a device to drive the heat dissipation fan in order to suppress the rise in temperature of the light source.

[0007] Therefore, the object of the present invention is to provide an ultraviolet irradiation device that can suppress the rise in temperature of the light source without increasing the size of the device. [Means for solving the problem]

[0008] An ultraviolet irradiation device according to one embodiment of the present invention is an ultraviolet irradiation device for irradiating a fluid with ultraviolet light, comprising: a space containing the fluid to be irradiated with ultraviolet light; a light source for irradiating ultraviolet light toward the space; a metal support member for supporting the light source; a supply pipe defining a supply channel for supplying the fluid to the space; and a discharge pipe defining a discharge channel for discharging the fluid from the space, wherein at least one of the supply pipe and the discharge pipe is made of metal, and the support member is in contact with the metal supply pipe or the metal discharge pipe. [Effects of the Invention]

[0009] According to the present invention, it is possible to provide an ultraviolet irradiation device that can suppress the rise in temperature of the light source without increasing the size of the device. [Brief explanation of the drawing]

[0010] [Figure 1] Figures 1A and 1B show the configuration of an ultraviolet irradiation device according to an embodiment. [Figure 2] Figure 2 is a cross-sectional perspective view of the ultraviolet irradiation device. [Figure 3] Figure 3 is a cross-sectional view of the ultraviolet irradiation device. [Figure 4] Figures 4A and 4B are graphs showing the change in light source temperature due to differences in the material of the exhaust pipe. [Modes for carrying out the invention]

[0011] Hereinafter, an ultraviolet irradiation device according to one embodiment of the present invention will be described in detail with reference to the attached drawings. In the following description, an example will be given in which the ultraviolet irradiation device is applied to a sterilization device for sterilizing fluids.

[0012] (Configuration of the UV irradiation device) Figures 1A, 1B, 2, and 3 show the configuration of the ultraviolet irradiation device 100 according to this embodiment. Figure 1A is a perspective view of the ultraviolet irradiation device 100, and Figure 1B is a plan view. Figure 2 is a cross-sectional perspective view of the ultraviolet irradiation device 100. Figure 3 is a cross-sectional view of the ultraviolet irradiation device 100.

[0013] As shown in Figures 1A, B, 2, and 3, the ultraviolet irradiation device 100 is a device for irradiating a flowing fluid with ultraviolet light, and comprises a space S1 in which the fluid to be irradiated with ultraviolet light is contained, a light source 120 for irradiating ultraviolet light toward the space S1, a metal support member 130 for supporting the light source 120, a supply pipe 140 defining a supply channel S2 for supplying fluid to the space S1, and a discharge pipe 150 defining a discharge channel S3 for discharging the fluid from the space S1. In this embodiment, the ultraviolet irradiation device 100 further comprises a cover 160 that mainly covers the first wall 111 of the storage wall 110.

[0014] The space S1 is defined by the reservoir wall 110. The reservoir wall 110 defines the space S1 for containing the fluid and reflects ultraviolet light emitted from the light source 120. The reservoir wall 110 may be a single member or may be two or more members. In this embodiment, the reservoir wall 110 has two members: a first wall 111 and a second wall 112. Examples of the shape of the space S1 defined by the reservoir wall 110 (first wall 111 and second wall 112) include a spherical shape, a cylindrical shape, a prismatic shape, and other shapes. In this embodiment, the shape of the space S1 defined by the reservoir wall 110 (first wall 111 and second wall 112) is approximately spherical. The first wall 111 defines one approximately hemispherical shape of the space S1, and the second wall 112 defines the other approximately hemispherical shape of the space S1. In this embodiment, the first wall 111 also defines a part of the supply channel S2 described later, and the second wall 112 also defines a part of the discharge channel S3 described later. In this embodiment, the first wall 111 is located on the upstream side in the direction of fluid flow, and the second wall 112 is located on the downstream side in the direction of fluid flow. The substantially spherical space S1 is formed by joining the first wall 111 and the second wall 112.

[0015] The materials of the first wall 111 and the second wall 112 are not particularly limited as long as they perform the above functions. The materials of the first wall 111 and the second wall 112 may be the same or different. In this embodiment, the materials of the first wall 111 and the second wall 112 are the same. From the viewpoint of efficiently reflecting ultraviolet light, polytetrafluoroethylene (PTFE) is preferred for the materials of the first wall 111 and the second wall 112. The inner diameter of the storage wall 110 is not particularly limited, but is, for example, about 20 to 60 mm. By setting the inner diameter of the storage wall 110 to about 20 to 60 mm, the fluid inside the storage wall 110 can be sufficiently sterilized even when only one UV-C LED is used as the light source 120. A supply channel S2 and a discharge channel S3 are connected to the space S1.

[0016] The supply pipe 140 defines a supply channel S2 for supplying fluid to space S1. Downstream of the supply pipe 140, a first sealing member (not shown), such as an O-ring, is placed in a portion of the area between the supply pipe 140 and the first wall 111 to prevent leakage. In this decimal embodiment, the supply pipe 140 is in contact with the cover 160 by screwing it in (not shown). The material of the supply pipe 140 is not particularly limited as long as it can perform the above functions. Examples of materials for the supply pipe 140 include nickel-plated brass, polypropylene (PP), acrylonitrile-butadiene rubber-styrene copolymer (ABS resin), polystyrene, acrylonitrile-styrene copolymer (AS resin), polyacetal (POM), and polyvinyl chloride (PVC). In this embodiment, the material of the supply pipe 140 is polypropylene.

[0017] The supply channel S2 supplies fluid to the interior (space S1) of the storage wall 110. One end of the supply channel S2 opens to space S1. That is, the opening of the supply channel S2 to space S1 is the supply port 141. Preferably, the supply channel S2 is arranged so as to smoothly supply fluid to the interior (space S1) of the storage wall 110 along the inner surface of the storage wall 110. In this embodiment, along the direction of fluid flow in the supply channel S2 and in a cross-section including the center of gravity of space S1, at the connection point between the inner surface of the supply channel S2 and the inner surface of the storage wall 110, a part of the inner surface of the supply channel S2 is arranged to smoothly continue with the inner surface of the storage wall 110 so as to coincide with the tangent to the inner surface of the storage wall 110 at the connection point. In this embodiment, the supply channel S2 is composed of a part of the storage wall 110 (first wall 111) and a supply pipe 140.

[0018] The discharge pipe 150 defines a discharge flow path S3 for discharging the fluid inside the space S1. On the upstream side of the discharge pipe 150, the second sealing member 152 is disposed in a partial region between the supply pipe 140 and the first wall 111 to prevent liquid leakage. In the present embodiment, the second sealing member 152 is an O-ring. Also, the discharge pipe 150 is connected to the support member 130 by screwing. The material of the discharge pipe 150 is not particularly limited as long as the above functions can be exhibited. Examples of the material of the discharge pipe 150 include nickel-plated brass, brass, copper, and aluminum. In the present embodiment, the material of the discharge pipe 150 is nickel-plated brass. Nickel-plated brass as the material of the discharge pipe 150 is preferable because it is less likely to cause dissimilar metal corrosion. Therefore, at least one of the supply pipe 140 and the discharge pipe 150 is made of metal. Here, "at least one of the supply pipe 140 and the discharge pipe 150 is made of metal" means that only the supply pipe 140 may be made of metal, only the discharge pipe 150 may be made of metal, or both the supply pipe 140 and the discharge pipe 150 may be made of metal. The support member 130 and the discharge pipe 150 formed of metal are in contact by screwing.

[0019] The discharge flow path S3 discharges the fluid inside the storage wall 110 (space S1). One end of the discharge flow path S3 is open to the space S1. That is, the opening of the discharge flow path S3 to the space S1 is the discharge port 151. The discharge flow path S3 is preferably arranged so that the fluid can be smoothly discharged along the wall of the storage wall 110 inside the storage wall 110 (space S1). In the present embodiment, in a cross-section along the flow direction of the fluid in the discharge flow path S3 and including the center of gravity of the storage wall 110, a part of the inner surface of the discharge flow path S3 is smoothly continuous with the inner surface of the storage wall 110 so as to coincide with the tangent line of the inner surface of the storage wall 110 at the connection part. In the present embodiment, the discharge flow path S3 is constituted by a part of the storage wall 110 (second wall 112) and the discharge pipe 150.

[0020] The support member 130 supports the light source 120. In this embodiment, the support member 130 covers a portion of the storage wall 110 and also supports the discharge pipe 150. The support member 130 has a recess 131 in which the light source 120 is placed. The support member 130 is made of metal in order to efficiently transfer the heat generated by the light source 120 to the discharge pipe 150. The material of the support member 130 is not particularly limited as long as it can perform the above function. Examples of materials for the support member 130 include metals such as aluminum, brass, and copper. In this embodiment, the material of the support member 130 is aluminum from the viewpoint of heat dissipation and manufacturing cost. The support member 130 is also in contact with the discharge pipe 150 in order to efficiently transfer the heat generated by the light source 120 to the discharge pipe 150. The method of contact between the support member 130 and the discharge pipe 150 is not particularly limited. In this embodiment, the support member 130 and the discharge pipe 150 are in contact by screwing. This increases the contact area between the support member 130 and the discharge pipe 150, efficiently transferring the heat generated by the light source 120 to the discharge pipe 150. In this embodiment, since aluminum is prone to galvanic corrosion, the discharge pipe 150, which defines the discharge channel S3 that comes into contact with the fluid, is made of nickel-plated brass to dissipate the heat generated by the light source 120.

[0021] The cover 160 covers all of the first wall 111 and part of the second wall 112, and also supports the supply pipe 140. More specifically, the cover 160 covers the reservoir wall together with the support member 130. In this embodiment, the first wall 111 and the second wall 112 are fixed by fixing the support member 130 and the cover 160 together. The material of the cover 160 is not particularly limited as long as it can perform the above functions. Examples of materials for the cover 160 include metals such as aluminum, stainless steel, brass, and copper, and resins such as polypropylene (PP), acrylonitrile-butadiene rubber-styrene copolymer (ABS resin), polystyrene, acrylonitrile-styrene copolymer (AS resin), polyacetal (POM), and polyvinyl chloride (PVC). In this embodiment, the material of the cover 160 is polypropylene.

[0022] The light source 120 irradiates the fluid inside the storage wall 110 (space S1) with ultraviolet light. The light source 120 may directly irradiate the fluid in the space S1 with ultraviolet light, or may irradiate the fluid in the space S1 with ultraviolet light through other members such as windows and mirrors. In the present embodiment, a window 123 that transmits ultraviolet light is disposed on a part of the storage wall 110, and the light source 120 irradiates the space S1 with ultraviolet light through the window 123.

[0023] The type of the light source 120 is not particularly limited as long as it can emit ultraviolet light. Examples of the light source 120 include a light-emitting diode (LED), a mercury lamp, a metal halide lamp, a xenon lamp, and a laser diode (LD). In the present embodiment, the light source 120 is a light-emitting diode (LED). The wavelength of the ultraviolet light irradiated by the light source 120 is not particularly limited. From the viewpoint of effectively sterilizing, the wavelength of the ultraviolet light emitted by the light source 120 is preferably 200 nm or more and 350 nm or less, and more preferably 200 nm or more and 280 nm or less. That is, the ultraviolet light emitted from the light source 120 is preferably ultraviolet C wave (UVC). Examples of commercially available light sources 120 include NCSU334A (Nichia Chemical Industries, Ltd.), which is an ultraviolet light-emitting diode with a peak wavelength of 280 nm. Other examples of ultraviolet light-emitting diodes with a peak wavelength of 280 nm include KLARAN (Asahi Kasei Corporation) and ZEU110BEAE (Stanley Electric Co., Ltd.).

[0024] The position of the light source 120 is not particularly limited as long as it can irradiate the fluid in the space S1 with ultraviolet light. The light source 120 may be disposed on the first wall 111 or may be disposed on the second wall 112. In the present embodiment, the light source 120 is disposed on the side of the second wall 112. More specifically, the light source 120 is disposed inside a recess 131 provided in the support member 130 so that the generated heat easily transfers to the support member 130. Further, the light source 120 is disposed so that its optical axis does not intersect either the supply port 141 or the discharge port 151.

[0025] The window 123 is positioned as part of the wall surface of the storage wall 110 (second wall 112) and transmits ultraviolet light emitted from the light source 120 into the interior of the storage wall 110 (space S1). The material of the window 123 is not particularly limited as long as it can transmit ultraviolet light and has the necessary strength. From the viewpoint of improving sterilization performance, the material of the window 123 is preferably a material that transmits ultraviolet light with a wavelength of 200 nm to 830 nm. Examples of materials for the window 123 include quartz glass, sapphire glass, barium fluoride, and calcium fluoride.

[0026] Furthermore, the shape of the window 123 is not particularly limited as long as it can allow ultraviolet light emitted from the light source 120 to reach the space S1, and may be flat or shaped to match the inner surface of the storage wall 110. In this embodiment, the window 123 is flat and is positioned to cover a recess provided in the second wall 112. The outer diameter of the window 123 is not particularly limited as long as it can allow ultraviolet light emitted from the light source 120 to reach the space S1. For example, the outer diameter of the window 123 is preferably 20 to 50% of the inner diameter of the storage wall 110. By increasing the outer diameter of the window 123, ultraviolet light can be directly irradiated over a wide area of ​​the space S1. On the other hand, by decreasing the outer diameter of the window 123, the proportion of the ultraviolet reflective surface on the inner surface of the space S1 can be increased. In addition, in this embodiment, the third sealing member 124 is positioned in a part of the area between the window 123 and the second wall 112 to prevent liquid leakage.

[0027] (Method of using an ultraviolet irradiation device and method of cooling the light source) Next, the method of using the ultraviolet irradiation device 100 and the method of cooling the light source 120 according to this embodiment will be described.

[0028] With ultraviolet light emitted from the light source 120, the fluid to be sterilized (e.g., water) is introduced into space S1 from the supply port 141, and the fluid in space S1 is removed from the discharge port 151. At this time, the fluid introduced from the supply port 141 does not move directly to the discharge port 151, but circulates in a spiral and remains in space S1. The fluid may be moved by pressurizing the supply port 141 (supply channel S2) side, or by depressurizing the discharge port 151 (discharge channel S3) side. The ultraviolet light emitted from the light source 120 is reflected from the inner surface of the storage wall 110.

[0029] Here, the light source 120 is positioned on a metal support member 130. A metal discharge pipe 150 defines a discharge channel S3. The metal support member 30 and the metal discharge pipe 150 are in contact. Furthermore, a fluid flows through the discharge channel S3 defined by the discharge pipe 150. Therefore, the heat generated by the light source 120 is transferred in the order of support member 130, discharge pipe 150, and then the fluid. In this embodiment, since the support member 130 and the discharge pipe 150 are made of metal, the heat generated by the light source 120 is quickly transferred to the fluid via the discharge pipe 150. As a result, the heat generated by the light source 120 is quickly removed, and the temperature rise of the light source 120 can be suppressed.

[0030] In the above example, the support member 130 was described as being in contact with the discharge pipe 150, but the support member 130 may also be in contact with a metal supply pipe 140. In this case, the supply pipe 140 is preferably made of nickel-plated brass, and the discharge pipe 150 may be made of resin. Furthermore, the supply pipe 140 and the discharge pipe 150 may be made of metal, or they may be made of nickel-plated brass.

[0031] (experiment) Here, the temperature of the light source 120 and the temperature change due to differences in the material of the discharge pipe 150 (or supply pipe 140) were investigated. In this experiment, the support member 130 is in contact with the discharge pipe 150. The material of the discharge pipe 150 is polypropylene or electroless nickel-plated brass.

[0032] Figure 4A is a graph showing the relationship between the fluid flow rate and the temperature of the light source 120 in an ultraviolet irradiation device 100 with one light source 120 lit, and Figure 4B is a graph showing the relationship between the fluid flow rate and the temperature of the light source 120 in an ultraviolet irradiation device 100 with two light sources 120 lit. In Figures 4A and B, the horizontal axis represents the fluid flow rate, and the vertical axis represents the temperature of the light source 120. In Figures 4A and B, the triangular symbols represent the results when the discharge pipe 150 is made of nickel-plated brass, and the square symbols represent the results when the discharge pipe 150 is made of polypropylene. As the light source 120, an NCSU434B ultraviolet light-emitting diode (NCSU434B, Nichia Corporation) with a peak wavelength of 280 nm was used, and the drive current of the light source was set to 500 mA.

[0033] As shown by the triangular symbols in Figures 4A and 4B, when the discharge pipe 150 was made of metal, no significant fluctuations in the temperature of the light source 120 were observed even at high flow rates. Furthermore, a comparison between the square and triangular symbols showed that, regardless of the number of light sources 120, the UV irradiation device 100 with a metal discharge pipe 150 had a lower temperature of the light source 120 than the UV irradiation device with a resin discharge pipe 150. This is thought to be because, in the UV irradiation device 100 with a metal discharge pipe 150, the heat generated by the light source 120 was dissipated to the fluid flowing through the discharge channel S3 via the support member 130 and the discharge pipe 150. In other words, it is thought that the aluminum support member 130 and the discharge pipe 150 functioned as heat sinks.

[0034] On the other hand, as shown by the square symbols in Figures 4A and 4B, the temperature of the light source 120 was high in the ultraviolet irradiation device having a resin discharge pipe 150. This is thought to be because the heat generated in the light source 120 and conducted to the support member 130 was not enveloped by the fluid flowing through the discharge channel S3 via the discharge pipe 150. In other words, it was thought that the resin discharge pipe 150 did not function as a heat sink.

[0035] Furthermore, although the results are not specifically shown, in the ultraviolet irradiation device 100 according to this embodiment, in which the discharge pipe 150 is made of nickel-plated brass, galvanic corrosion did not occur.

[0036] (effect) According to the present invention, the heat from the light source 120 is efficiently dissipated into the fluid through the metal support member 130 and the metal supply pipe 140 or discharge pipe 150, thereby suppressing the rise in temperature of the light source 120. [Industrial applicability]

[0037] The ultraviolet irradiation device according to the present invention is useful, for example, for sterilizing purified water, agricultural water, food washing water, various types of washing water, bath water, swimming pool water, etc. [Explanation of Symbols]

[0038] 100 Ultraviolet irradiation device 110 Storage wall 111 1st wall 112 Second wall 123 Window 124 Third sealing member 120 light source 130 Support member 131 Recess 140 Supply pipe 141 Supply port 150 Discharge pipe 151 Outlet 152 Second sealing member 160 Cover S1 space S2 Supply channel S3 Discharge channel

Claims

1. An ultraviolet irradiation device for irradiating a fluid with ultraviolet light, A space containing the fluid that is irradiated with ultraviolet light, A light source for irradiating ultraviolet light toward the aforementioned space, A metal support member that supports the light source, A supply pipe defining a supply channel for supplying fluid to the aforementioned space, A discharge pipe that defines a discharge channel for discharging the fluid from the aforementioned space It has, At least one of the supply pipe and the discharge pipe is made of metal. The support member is in contact with the metal supply pipe or the metal discharge pipe. Ultraviolet irradiation device.

2. The ultraviolet irradiation device according to claim 1, wherein the support member is made of aluminum.

3. The ultraviolet irradiation apparatus according to claim 1 or claim 2, wherein the metal is nickel-plated brass.

4. The ultraviolet irradiation device according to any one of claims 1 to 3, wherein the support member and the metal supply pipe or the metal discharge pipe are in contact by being screwed together.

Citation Information

Patent Citations

  • Over-current ultraviolet sterilization and disinfection unit

    CN109574130A

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