Drive device and drive method for vacuum fluorescent display
09576521 ยท 2017-02-21
Assignee
Inventors
Cpc classification
G09G2320/0233
PHYSICS
G09G2300/08
PHYSICS
G09G2330/028
PHYSICS
G09G2310/0254
PHYSICS
International classification
Abstract
Provided are a drive device and drive method for a vacuum fluorescent display that can suppress brightness variations in display images and improve display quality. A drive device for a vacuum fluorescent display is provided with a positive electrode unit in which a plurality of positive electrodes to which a phosphor is applied are disposed in a matrix shape and a negative electrode filament that discharges electrons toward the positive electrode unit. The device is provided with: a first magnetic field generating means that generates a first magnetic field perpendicular to the direction in which the positive electrode unit and the negative electrode filament face each other and that can periodically switch polarity; and a second magnetic field generating means that generates a second magnetic field that is perpendicular to the direction in which the positive electrode unit and the negative electrode filament face each other and crosses the first magnetic field and that can periodically switch polarity.
Claims
1. A driving device for a vacuum fluorescent display which includes an anode unit constituted by a plurality of fluorescent substance-coated anodes arranged in a matrix pattern, and a cathode filament that emits electrons toward the anode unit, the device comprising: a first magnetic field generating means configured to generate a first magnetic field vertical to a direction in which the anode unit and the cathode filament face each other, and of which polarity is switchable periodically; and a second magnetic field generating means configured to generate a second magnetic field vertical to a direction in which the anode unit and the cathode filament face each other and vertically crossing the first magnetic field, and of which polarity is switchable periodically.
2. The driving device of the vacuum fluorescent display according to claim 1, wherein a first and a second alternating currents different in at least any one of amplitude value, frequency, and phase are respectively supplied to the first and the second magnetic field generating means.
3. A driving method for a vacuum fluorescent display which includes an anode unit constituted by a plurality of fluorescent substance-coated anodes arranged in a matrix pattern, and a cathode filament that emits electrons toward the anode unit, the method comprising generating a first magnetic field vertical to a direction in which the anode unit and the cathode filament face each other and a second magnetic field vertical to a direction in which the anode unit and the cathode filament face each other and vertically crossing the first magnetic field, with the directions switched periodically.
4. The driving method for the vacuum fluorescent display according to claim 3, wherein the first and the second magnetic fields are generated respectively by the first and the second alternating currents different in at least any one of amplitude value, frequency, and phase.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODE FOR CARRYING OUT THE INVENTION
(7) A driving device for a vacuum fluorescent display according to an embodiment of the present invention will be described with reference to the drawings.
(8)
(9) The vacuum fluorescent display 10 includes an anode unit 11, cathode filaments 12, and a sealing case 13 as illustrated in
(10) The anode unit 11 is constituted by a plurality of fluorescent substance-coated anodes 11a arranged in a matrix pattern on an unillustrated circuit board. A positive voltage (e.g., 5V) or a negative voltage (e.g., 35V; a filament voltage) is selectively applied to each anode 11a by a controller 60 and the anode 11a is switchable between an ON state in which the positive voltage is applied and an OFF state in which the negative voltage is applied.
(11) A plurality of cathode filaments 12, made of thin metal wires, are disposed to face the anode unit 11 with a predetermined interval in a Z axis direction in
(12) The sealing case 13, made of a glass material, is a case that accommodates the anode unit 11 and the cathode filaments 12. Inside of the sealing case 13 is kept in vacuum. A surface of the sealing case 13 on which the cathode filaments 12 are disposed (i.e., an upper surface in
(13) The first drive circuit 20 includes a first alternating current source A1, and supplies a first alternating current of a predetermined frequency to the first magnetic field generating means 30 from the first alternating current source A1 in accordance with control signals from the controller 60. The first drive circuit 20 can adjust the magnitude of the first alternating current.
(14) The first magnetic field generating means 30 is constituted by a pair of coils each having a magnetic substance material as a core and disposed to face each other in an X axis direction in
(15) The second drive circuit 40 includes a second alternating current source A2, and supplies a second alternating current of a predetermined frequency to the second magnetic field generating means 50 from the second alternating current source A2 in accordance with control signals from the controller 60. The second drive circuit 40 can adjust the magnitude of the second alternating current.
(16) The second magnetic field generating means 50 is constituted by a pair of coils each having a magnetic substance material as a core and disposed to face each other in a Y axis direction in
(17) The controller 60 is constituted by, for example, a microcomputer that includes a central processing unit (CPU) and a storage, such as read only memory (ROM), and a graphic display controller (GDC). The controller 60 applies a negative voltage to the cathode filaments 12 and supplies a current to cause the thermoelectrons E to be emitted, and selectively switches the ON state and the OFF state of each anode 11a in accordance with input image data. Thus, the controller 60 selectively causes the fluorescent substance coated on arbitrary anodes 11a to emit light and output display light L, and causes a display image, such as characters and figures, to be displayed on the vacuum fluorescent display 10. Further, the controller 60 outputs control signals to the first and the second drive circuits 20 and 40 in synchronization with the above-described display control, and causes the first and the second magnetic field generating means 30 and 50 to generate the first and the second magnetic fields M1 and M2.
(18) Next, an effect of the first and the second electric fields M1 and M2 in the driving method of the present embodiment will be described.
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(20) However, when the first magnetic field M1 is generated by the first magnetic field generating means 30 in the positive direction of the X axis in
(21) Further, when the first magnetic field M1 is generated by the first magnetic field generating means 30 in the negative direction of the X axis in
(22) As described above, by supplying the first alternating current of a predetermined frequency to the first magnetic field generating means 30 and periodically switching the direction of the first magnetic field M1 to the reverse direction, the deviation of the thermoelectrons E in one direction vertical to the direction in which the anode unit 11 and the cathode filament 12 face each other (i.e., the Y axis direction) can be moved.
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(24) However, when the second magnetic field M2 is generated by the second magnetic field generating means 50 in the positive direction of the Y axis in
(25) Further, when the second magnetic field M2 is generated by the second magnetic field generating means 50 in the negative direction of the Y axis in
(26) As described above, by supplying the second alternating current of a predetermined frequency to the second magnetic field generating means 50 and periodically switching the direction of the second magnetic field M1 to the reverse direction, the deviation of the thermoelectrons E in one direction vertical to the direction in which the anode unit 11 and the cathode filament 12 face each other (i.e., the X axis direction) is moved. Therefore, by periodically switching each of the directions of the first and the second magnetic fields M1 and M2 to the reverse direction, the deviation of the thermoelectrons E in two directions vertical to the direction in which the anode unit 11 and the cathode filament 12 face each other (i.e., the X axis direction and the Y axis direction) is moved and, whereby luminance unevenness can be reduced about the entire display image.
(27) Next, prescription of the first and the second alternating currents for reducing the luminance unevenness about the entire display image of the vacuum fluorescent display 10 will be described. The first alternating current acts on the first magnetic field generating means 30 to generate the first magnetic field M1, and the second alternating current acts on the second magnetic field generating means 50 to generate the second magnetic field M2. Since the first magnetic field M1 and the second magnetic field M2 cross vertically each other, the first and the second Lorentz forces F1 and F2 acting on the thermoelectrons E also cross vertically each other. Further, since both the first and the second magnetic fields M1 and M2 are alternating current magnetic fields of which direction is periodically switchable, the direction of the Lorentz force that the thermoelectrons E actually receive when the first and the second magnetic fields M1 and M2 are synthesized, i.e., a path traced by the deviation of the thermoelectrons E, can be represented by a Lissajous's waveform (Lissajou's figure) in which the first magnetic field M1 is plotted on the Y axis and the second magnetic field M2 is plotted on the X axis. For example, a case in which sinusoidal currents having a phase difference of 90 degrees as illustrated in
(28) The driving device 1 for the vacuum fluorescent display which is the present embodiment is the driving device for the vacuum fluorescent display 10 that includes the anode unit 11 constituted by a plurality of fluorescent substance-coated anodes 11a arranged in a matrix pattern, and the cathode filaments 12 that emit electrons toward the anode unit 11, the device including: a first magnetic field generating means 30 that generates a first magnetic field M1 vertical to a direction in which the anode unit 11 and the cathode filaments 12 face each other, and of which polarity is switchable periodically; and a second magnetic field generating means 50 that generates the second magnetic field M2 vertical to a direction in which the anode unit 11 and the cathode filaments 12 face each other and crossing the first magnetic field M1, and of which polarity is switched periodically.
(29) According to this, the deviation of the thermoelectrons E can be moved in two directions vertical to the direction in which the anode unit 11 and the cathode filaments 12 face each other (i.e., the X axis direction and the Y axis direction), luminance unevenness can be reduced about the entire display image, and display quality can be improved.
(30) The first and the second alternating currents different in at least any one of amplitude value, frequency, and phase are respectively supplied to the second magnetic field generating means 30 and 50.
(31) According to this, the deviation of the thermoelectrons E can be moved to the entire peripheral region of the collection of the luminous dots, the luminance unevenness can be reduced about the entire display image, and display quality can be improved.
(32) The driving method for the vacuum fluorescent display which is the present embodiment is the driving method for the vacuum fluorescent display 10 that includes the anode unit 11 constituted by a plurality of fluorescent substance-coated anodes 11a arranged in a matrix pattern, and the cathode filaments 12 that emit electrons toward the anode unit 11, the method including generating, the first magnetic field M1 vertical to a direction in which the anode unit 11 and the cathode filaments 12 face each other and the second magnetic field M2 vertical to a direction in which the anode unit 11 and the cathode filaments 12 face each other and crossing the first magnetic field M1, with the directions switched periodically.
(33) According to this, the deviation of the thermoelectrons E can be moved in two directions vertical to the direction in which the anode unit 11 and the cathode filaments 12 face each other (i.e., the X axis direction and the Y axis direction), luminance unevenness can be reduced about the entire display image, and display quality can be improved.
(34) Further, the first and the second magnetic fields M1 and M2 are generated by the first and the second alternating currents different in at least any one of amplitude value, frequency, and phase.
(35) According to this, the deviation of the thermoelectrons E can be moved to the entire peripheral region of the collection of the luminous dots, the luminance unevenness can be reduced about the entire display image, and display quality can be improved.
(36) In the above description, for the ease of understanding of the present invention, description of publicly known technical matters that are not important is omitted as necessary. The present invention is not limited to the above-described embodiment and may be modified (including deletion of components) as necessary without departing from the scope of the present invention.
INDUSTRIAL APPLICABILITY
(37) The present invention is suitably applicable to a driving device and a driving method for a vacuum fluorescent display.
REFERENCE NUMERALS
(38) 1 driving device for vacuum fluorescent display 10 vacuum fluorescent display 11 anode unit 11a anode 12 cathode filament 13 sealing case 20 first drive circuit 30 first magnetic field generating means 40 second drive circuit 50 second magnetic field generating means A1 first alternating current source A2 second alternating current source