UVC DECONTAMINATION AND DETOXIFICATION DEVICE
20200282091 ยท 2020-09-10
Inventors
Cpc classification
A23L5/36
HUMAN NECESSITIES
A61L2202/14
HUMAN NECESSITIES
A23B7/015
HUMAN NECESSITIES
H01J61/52
ELECTRICITY
A23V2002/00
HUMAN NECESSITIES
A61L2202/11
HUMAN NECESSITIES
International classification
A23B7/015
HUMAN NECESSITIES
H01J61/52
ELECTRICITY
Abstract
A device for decontamination and detoxification by emitting light flashes rich in UV radiation, particularly UVC. The device includes: a flash lamp; a reflector, preferably placed behind the flash lamp, so as to reflect the light emitted by the lamp towards an output window; and a UV detector for measuring the UV radiation emitted by the lamp.
Claims
1. A method for destroying pathogenic agents present on the surfaces of fruits or vegetables, and notably for destroying patulin, comprising the steps of: causing rotation of objects to be treated through more than 360, subjecting surfaces of the objects thus rotated to a UVC-rich light emitted by one or more flash lamps, the energy density of the flash or flashes being such that the surfaces of the objects are exposed to an energy density of at least 1 J/cm.sup.2 and to a power density of at least 2 kW/cm.sup.2, and that at least 20% of the received energy is between 200 and 315 nm.
2. The method according to claim 1, wherein the fruits or vegetables are apples.
3. The method according to claim 1, wherein the objects rest on a conveyer comprising rollers moving with the objects, the rollers being made to rotate, at least when passing under the light emission windows.
4. The method according to claim 3, wherein the rollers come into contact with a friction strip which causes the rollers to revolve thereon, or being fixed to toothed wheels which engage with a toothed belt or a chain extending under the emission window or windows.
5. The method according to claim 3, wherein a surface which causes the rollers to rotate is stationary, in which case the rotation speed of the rollers is governed by their speed of movement.
6. The method according to claim 3, wherein a surface which causes the rollers to rotate is movable.
7. The method according to claim 1, wherein the one or more flash lamps are in an enclosure and the process comprises a step of absorption of oxygen by an oxygen absorber placed in the enclosure, to purge the oxygen from the air and reduce the ozone formation.
Description
[0067] The invention will be made clearer by the perusal of the following detailed description of non-limiting exemplary embodiments thereof, and the examination of the attached drawing, in which:
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[0079] Food or other products to be decontaminated is moved under the optical units 20, using any suitable conveyer. In a variant, the installation is arranged to emit the UV radiation toward a surface to be decontaminated, which is, for example, the floor or the wall of a room.
[0080] The installation 10 comprises an electrical power supply (not shown), for supplying power to each optical unit 20.
[0081] The installation 10 also comprises means for cooling by circulation of a liquid, preferably water.
[0082] Each of the optical units 20 advantageously has, as shown in
[0083] If reference is made to
[0084] The lamp 21 extends inside an envelope 23 in the form of a quartz sleeve, which defines a space around the lamp in which the cooling liquid may circulate.
[0085] As is shown in greater detail in
[0086] The reflector 110 may be formed by an aluminum sheet polished on the face turned toward the lamp 21, and coated on this face with a layer of quartz which protects it from oxidation. The reflector may be polished electrolytically.
[0087] A sheet 115 of a highly thermally conductive material, preferably a ceramic filled film, having a thermal conductivity greater than or equal to 2 W/m.Math.K, is interposed between the reflector 110 and the radiator 40.
[0088] The tubes 41 are accommodated in grooves 42 formed between the fins 43 of the radiator 40, the semi-circular cross sections of the bottoms of the grooves being adapted to the diameter of the tubes.
[0089] Preferably, the tubes 41 are held in the radiator 40 without adhesive, thus facilitating assembly and maintenance.
[0090] In particular, the absence of adhesive permits higher assembly tolerances on the insertion of the tubes 41 into the manifolds 22.
[0091] A thermally conductive compound is preferably placed in the grooves 42, to improve thermal conduction between the tubes 41 and the radiator 40.
[0092] As shown in
[0093] The tubes 41 may be held in the corresponding grooves 42 by clamps 45 which bear on the fins 43. These clamps 45 may be put in place after the installation of the tubes 41 in the manifolds 22.
[0094] In operation, the cooling liquid circulates in parallel in the tubes 41 and in the enclosure 23.
[0095] The casing 30 is closed by a cover plate 50 on its lower part.
[0096] The plate comprises a panel 52 and a support frame 53 of opaque material, for example metal. The panel 52 is preferably made of synthetic quartz, and its thickness may be between 1.5 and 5 mm, for example 2 mm.
[0097] The frame 53 defines a window delimited by an edge of reduced thickness 55, on which the panel 52 is fixed by means of an adhesive 56.
[0098] A seal 60 may, as shown in
[0099] In order to protect the adhesive from the UV radiation emitted by the flash lamp, the panel 52 carries a first metallic track 70 which forms a screen against this radiation. The first track 70 is located on the face of the panel 52 which is turned toward the outside. The metal of the first track is preferably aluminum, preferably with a thickness of at least 100 nm. The first track is sufficiently wide to protect the whole of the adhesive, having a width of several mm for example, notably between 4 mm and 6 mm, and extends along the whole periphery of the panel. The adhesive 56 extends between the first track 70 and the edge 55.
[0100] In the illustrated example, the panel 52 also carries a second metallic track which forms an open loop on the periphery of the inner face, turned toward the flash lamp.
[0101] Contacts 80 may be soldered onto the second track 76. This track is preferably coated, except in the contact soldering area, with a layer of an electrical insulator such as silica, to prevent any soiling or other contact with any metal covering the second track from falsifying the conductivity measurement.
[0102] The second track 76 is, for example, narrower than the first, with a width of 4.5 mm, for example.
[0103] In the example considered here, the first and second tracks are located on opposite faces of the panel 52, but in a variant both tracks may be located on the same side if the first is electrically insulated from the second.
[0104] If there is a crack in the panel 52, the conduction of the second track 76 between the contacts 80 is interrupted, and this may be detected electrically by a suitable electronic circuit.
[0105] It is then possible to interrupt the emission of the flashes and/or to indicate the anomaly.
[0106] The optical unit 20 comprises a UV radiation detector 100, mounted on a printed circuit 101 which is fixed relative to the radiator 40.
[0107] The detector 100 receives the radiation emitted by the lamp 21 through an opening 105 which passes through the radiator 40 and the reflector 110. The opening 105 is, for example, 1 mm in diameter.
[0108] The distance between the entry to the opening 105 on the side of the lamp 21 and the detector 100 is, for example, between 1.5 and 2.5 cm.
[0109] The detector 100 can be used in order to discover the amount of UVC emitted at each flash and to check that the optical unit 20 is actually emitting the desired dose.
[0110] The detector 100 is preferably based on a photodiode, preferably made of AlGaN (aluminum gallium nitride), to obtain a significant gain in the UVC band.
[0111] The installation 10 may comprise an electronic circuit which adjusts the supply parameters of the lamp 21 in order to compensate for the deterioration of the lamp. For example, if the lamp tends to become obscured, the current strength may be increased in order to emit more UV radiation.
[0112] The installation may be arranged to store the amount of UVC emitted at each flash, to enable any failure to be detected, and to provide traceability of the decontamination performed.
[0113] The installation may comprise a system for cleaning the outer side of the panel 52 by a pressurized water spray.
[0114] The invention is not limited to the example described above. In particular, the shape of the reflector or of the radiator may be modified without departing from the scope of the present invention.
[0115] The invention is advantageously applicable to the treatment of fruit or vegetables, notably apples, for example in order to eliminate patulin or other mycotoxins present on their surfaces.
[0116] The installation according to the invention advantageously comprises means for treating the whole surfaces of the fruit or vegetables, by making the fruit or vegetables perform at least one rotation about themselves during their passage under the treatment heads which emit the UVC-rich flashes.
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[0118] The conveyer 200 comprises rollers 210 on which the products to be treated rest.
[0119] A friction strip 215 extends at the position of the treatment heads and slightly upstream and downstream of them, and the rollers 210 come into contact with this strip. The friction strip 215 causes the rollers 210 to revolve about themselves at the position of the treatment heads, thereby causing the products to rotate. The diameter of the rollers is chosen so that the products perform at least one rotation about themselves during their passage under the treatment heads 20, thus receiving a plurality of UVC-rich flashes, which in combination reach substantially the whole surface of the products.
[0120] In the example shown in
[0121] In the variant of
[0122] Advantageously, as mentioned above, an oxygen absorber is placed in the enclosure containing the lamp.
[0123] The expression comprising a is to be understood as being synonymous with comprising at least one, unless specified otherwise.