THREE-PHASE AC/DC CONVERTER, PHOTOCHEMICAL REACTION DEVICE AND METHOD USING SAME, AND METHOD FOR PRODUCING LACTAM
20170238381 · 2017-08-17
Assignee
Inventors
- Fumikatsu Ohno (Otsu-Shi, JP)
- Toru Takahashi (Otsu-shi, JP)
- Hiroyasu Ito (Nagoya-Shi, JP)
- Kazuki Sugawara (Tokai-shi, JP)
Cpc classification
C07C249/06
CHEMISTRY; METALLURGY
H02M7/12
ELECTRICITY
C07C251/44
CHEMISTRY; METALLURGY
H01L33/00
ELECTRICITY
H02M1/084
ELECTRICITY
Y02B20/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B01J19/12
PERFORMING OPERATIONS; TRANSPORTING
H02M1/084
ELECTRICITY
C07C251/44
CHEMISTRY; METALLURGY
C07C249/06
CHEMISTRY; METALLURGY
Abstract
Provided are a three-phase AC/DC converter disposed between a three-phase AC power supply and a light emitting diode group, the converter including a three-phase full bridge circuit in which pairs of switching elements are connected in parallel between DC buses for the three phases of the three-phase AC power supply; reactors connecting connection portions between the switching elements and corresponding phases of the three-phase AC power supply; a smoothing capacitor on the output side of the three-phase full bridge circuit; a DC voltage detection means; a power supply voltage phase detection means; and a pulse width modulation means for outputting pulse width modulation signals of the switching elements, wherein the pulse width modulation means outputs the pulse width modulation signals based on a power supply voltage phase and an output voltage between the DC buses.
Claims
1. A three-phase AC/DC converter incorporated into a power supply circuit disposed between a three-phase AC power supply and a light emitting diode group, in order to drive said light emitting diode group of 3 kw or more with a single unit, said converter comprising: DC buses connected to said light emitting diode group; a three-phase full bridge circuit in which pairs of switching elements, in each of which a pair of switching elements are connected in series, are connected in parallel between said DC buses by pairs for three phases of said three-phase AC power supply, and each switching element has a reverse-blocking diode connected thereto in parallel; a reactor provided between said three-phase full bridge circuit and said three-phase AC power supply for connecting a connection portion between switching elements in said each pair of switching elements and a corresponding phase of said three-phase AC power supply; a smoothing capacitor connected between said DC buses on an output side of said three-phase full bridge circuit; a DC voltage detection means for detecting an output voltage between said DC buses; a power supply voltage phase detection means for detecting a power supply voltage phase of said three-phase AC power supply; and a pulse width modulation means for outputting a pulse width modulation signal for controlling each of said switching elements, wherein said pulse width modulation means outputs said pulse width modulation signal based on said power supply voltage phase and said output voltage between said DC buses.
2. The three-phase AC/DC converter according to claim 1, wherein a plurality of constant current circuits each for controlling a current to said light emitting diode group constant are provided in parallel on an output side of said three-phase full bridge circuit.
3. The three-phase AC/DC converter according to claim 1, wherein said output voltage between said DC buses is 100V or more, and a voltage drop thereof is controlled to 10% or less.
4. The three-phase AC/DC converter according to claim 2, wherein one constant current circuit controls a constant current of 1 ampere or more.
5. A photochemical reaction device having a photoirradiation device comprising a light emitting diode group connected to the three-phase AC/DC converter according to claim 1.
6. A photochemical reaction method comprising using the photochemical reaction device according to claim 5.
7. The photochemical reaction method according to claim 6, wherein the destination of photoirradiation is a liquid, and the composition of said liquid contains at least a carbon atom.
8. The photochemical reaction method according to claim 7, wherein said liquid as the destination of photoirradiation is a cycloalkane.
9. The photochemical reaction method according to claim 8, wherein said cycloalkane is cyclohexane or cyclododecane.
10. The photochemical reaction method according to claim 8, wherein a cycloalkanone oxime is produced by performing photoirradiation to said cycloalkane and a photo nitrosating agent.
11. The photochemical reaction method according to claim 10, wherein said photo nitrosating agent is nitrosyl chloride or trichloronitrosomethane.
12. A method for producing a lactam comprising using a cycloalkanone oxime produced by the photochemical reaction method according to claim 10.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030]
[0031]
[0032]
[0033]
[0034]
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0035] Hereinafter, embodiments of the present invention will be explained referring to figures.
[0036]
[0037] In this embodiment, the output voltage between the DC buses 3 detected by the DC voltage detection means 9 and fed back and a preset output voltage command 12 are compared, and adjusted by a voltage adjuster 13. The current based on the phase of the adjusted voltage and the power supply voltage phase detected by the power supply voltage phase detection means 10 is compared with the input current fed back from the input side of the three-phase full bridge circuit 6, and after the current is adjusted by a current adjustor 14, it is subjected to the pulse width modulation control due to the pulse width modulation means 11.
[0038] Further, in this embodiment, a plurality of light emitting diodes 15 are combined and connected to form one light emitting diode group 2, a plurality of light emitting diode groups 2 are provided in parallel, and a large-scale light-emitting body 16 is constituted. A device having this light-emitting body 16 is configured as a photoirradiation device 17 used in, for example, a photochemical reaction device. In this photoirradiation device 17, a plurality of constant current circuits 18 for controlling the currents to the respective light emitting diode groups 2 to be constant are provided in parallel relatively to the output side of the three-phase full bridge circuits 6.
[0039] In the three-phase AC/DC converter 100 thus constructed, since a converter comprising the three-phase full bridge circuit 6 combined with switching elements 4 capable of being performed with PWM control is formed on the converting section from three-phase AC to DC, it becomes possible to correct the high frequency and noise on the secondary side, that is, the output side (DC buses 3 side) of the three-phase full bridge circuit 6, and the high frequency generated on the primary side, and make it a power supply waveform having no distortion, and the voltage drop on the primary side, that is, on the input side (reactor 7 side) of the 3-phase full bridge circuit 6 is suppressed. Further, since the smoothing capacitor 8 is also added, the DC voltage on the side of the DC buses 3 is controlled at a constant voltage with a smooth waveform, and by applying the PWM control to the three-phase full bridge circuit 6, a stable voltage supply with less fluctuation becomes possible. In case where the output voltage between the DC buses 3 is 100 V or more, it becomes possible to easily suppress the voltage drop at 10% or less, and it becomes possible to eliminate the possibility of turning off or flashing phenomenon of the LED accompanying the voltage drop, and to stably and continuously illuminate a large-sized LED module (light-emitting body 16) of, for example, 10 kw or more. Furthermore, since the constant current circuit 18 (for example, a constant current circuit capable of controlling a constant current of 1 ampere or more) is provided for each light emitting diode group 2, the current supplied to each light emitting diode group 2 is stabilized, ultimately, the power supply to the entire light-emitting body 16 is stabilized, and a stable and continuous illumination becomes possible even in a large-capacity light-emitting body 16.
[0040] The photoirradiation device 17 including the light emitting diode group 2 connected to the above-described three-phase AC/DC converter 100 can be applied to various kinds of photochemical reaction devices, and with a single three-phase AC/DC converter 100, even in case of large-capacity light emitting diode groups 2, it becomes possible to stably and continuously illuminate the whole of the light emitting diode groups 2, and it becomes possible to stably perform a desirable photochemical reaction by the photoirradiation device 17.
[0041] Such a photochemical reaction device can be used for various kinds of photochemical reaction methods, and in particular, can be applied to any photochemical reaction which is required to stably and continuously illuminate the large-capacity light emitting diode group 2. For example, in the photochemical reaction method, the destination of the photoirradiation can be set to be a liquid which contains carbon atoms. Namely, in the photochemical reaction method according to the present invention, at least one destination of the photoirradiation may be a raw material system composed of a liquid. The liquid served as a raw material is not particularly restricted as long as it is a liquid containing carbon atoms, and as a reaction liquid, a flammable liquid, for example, hydrocarbons such as alkane and cycloalkane can be exemplified.
[0042] In the present invention, although the cycloalkane is not particularly limited in the number of carbon atoms, for example, preferred are cyclopropane, cyclobutane, cyclopentane, cyclohexane, cycloheptane, cyclooctane, cyclononane, cyclodecane, cycloundecane, and cyclododecane. In particular, cyclohexane as a raw material of caprolactam and cyclododecane as a raw material of lauryllactam are preferred.
[0043] Using the above-described cycloalkane and a photo nitrosating agent, cycloalkanone oxime is obtained by photochemical reaction due to the photo irradiation from the photoirradiation device 17 as a light source. As the photo nitrosating agent, for example, nitrosyl chloride or a mixed gas of nitrosyl chloride and hydrogen chloride is preferable. Besides, since any of the mixed gas of nitric monoxide and chlorine, the mixed gas of nitric monoxide, chlorine and hydrogen chloride, the mixed gas of nitrose gas and chlorine, etc. acts as nitrosyl chloride in the photochemical reaction system, it is not limited to these supply forms of the nitrosating agent. Further, trichloronitrosomethane obtained by photochemical reaction of nitrosyl chloride and chloroform may be used as a nitrosating agent. When the photochemical reaction is carried out in the presence of hydrogen chloride, the cycloalkanone oxime becomes its hydrochloride, but it may be in the form of hydrochloride as it is.
[0044] By the above-described photochemical reaction, it is possible to obtain cycloalkanone oxime which depends upon the carbon number of the cycloalkane. For example, cyclohexanone oxime is obtained by photo nitrosating reaction with nitrosyl chloride using cyclohexane. Further, cyclododecanone oxime is obtained by photo nitrosating reaction with nitrosyl chloride using cyclododecane.
[0045] A lactam can be obtained by Beckmann rearrangement of the cycloalkanone oxime obtained by the photochemical reaction. For example, in the reaction of Beckmann rearrangement of cyclohexanone oxime, e-caprolactam is obtained as shown by the following reaction formula [Chemical formula 1]. Further, ω-laurolactam is obtained in the reaction of Beckmann rearrangement of cyclododecanone oxime.
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[0046] In the above description, although the embodiment of the present invention has been explained with reference to
[0047] The present invention can be applied to a three-phase AC/DC converter in any field where stable power supply to a large-capacity light emitting diode group is required, and in particular, can be applied to any photochemical reaction using a large-scale photoirradiation device, and particularly, it is useful to be applied for production of cycloalkanone oxime and production of lactam.
EXPLANATION OF SYMBOLS
[0048] 1: three-phase AC power supply [0049] 2: light emitting diode group [0050] 3: DC bus [0051] 4: switching element [0052] 5: reverse blocking diode [0053] 6: three-phase full bridge circuit [0054] 7: reactor [0055] 8: smoothing capacitor [0056] 9: DC voltage detection means [0057] 10: power supply voltage phase detection means [0058] 11: pulse width modulation means [0059] 12: output voltage command [0060] 13: voltage adjustor [0061] 14: current adjustor [0062] 15: light emitting diode [0063] 16: light-emitting body [0064] 17: photoirradiation device [0065] 18: constant current circuit [0066] 100: three-phase AC/DC converter