Claims
- 1. A cathode ray tube apparatus comprising:
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam, each of said horizontal and vertical electrode pieces being in platelike form elongated along the respective electron beams; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure.
- 2. The apparatus as claimed in claim 1, wherein the quadrupole electrode structure comprises a first base plate having apertures defined therein being equal in number to the electron beams and a second base plate having apertures defined therein being equal in number to the electron beams, said first base plate having a pair of horizontal pieces spaced from each other and protruding perpendicular to the first base plate from the peripheral lip region of each of the apertures in the first base plate thereby constituting the pair of the horizontal electrode pieces, said second base plate having a pair of vertical pieces spaced from each other and protruding perpendicular to the second base plate from the peripheral lip region of each of the apertures in the second base plate thereby constituting the pair of the vertical electrode pieces.
- 3. The apparatus as claimed in claim 2, wherein each of the horizontal and vertical electrode pieces of all of the quadrupole electrodes is in the form of a flat plate.
- 4. The apparatus as claimed in claim 2, wherein the first and second base plates are positioned with their apertures aligned with the perforations in the focusing electrode, respectively, and each of the apertures in all of the first and second base plates being of a square shape having each side equal in length to the diameter of each aperture in the focusing electrode.
- 5. The apparatus as claimed in claim 2, wherein the angle formed between a first plane passing through one of diagonal pairs of corners delimited by the respective pairs of the horizontal and vertical electrode pieces in each quadrupole electrode and a second plane passing through the other of the diagonal pairs of such corners is selected to be within the range of 85 to 95 degrees, and the line of intersection of these first and second planes being aligned with the trajectory of the respective electron beam.
- 6. The apparatus as claimed in claim 2, wherein a plurality of the quadrupole electrode structures are employed and arranged one after another in a direction conforming to the direction of travel of the electron beams.
- 7. The apparatus as claimed in claim 1, wherein the focusing electrode comprises a pre-focusing electrode unit and a post-focusing unit and wherein said quadrupole electrode structure is interposed between the pre-focusing and post-focusing electrode units.
- 8. The apparatus as claimed in claim 7, wherein the pre-focusing and post-focusing electrode units are electrically connected together.
- 9. The apparatus as claimed in claim 8, wherein one of the horizontal and vertical electrode pieces of the quadrupole electrodes are electrically connected with one of the pre-focusing and post-focusing electrode units.
- 10. The apparatus as claimed in claim 1, wherein the power source means comprises a modulating voltage source for generating a modulating voltage synchronized with a deflection period of the electron beams.
- 11. The apparatus as claimed in claim 10, wherein the modulating voltage generated from the modulating voltage source is a voltage having a parabolic waveform required to correct a deflection aberration of the electron beams.
- 12. The apparatus as claimed in claim 11, wherein the modulating voltage from the modulating voltage source is applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure.
- 13. The apparatus as claimed in claim 12, wherein one of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is electrically connected with the focusing electrode and the other of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is electrically connected with the modulation voltage source.
- 14. The apparatus as claimed in claim 13, wherein the modulating voltage is superimposed with a direct current voltage to be applied to the focusing electrode.
- 15. The apparatus as claimed in claim 14, wherein the modulating voltage is of a value within the range of 0.8 to 1.2 times the direct current voltage.
- 16. The apparatus as claimed in claim 12, wherein one of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is electrically connected with the focusing electrode and adapted to receive a first modulating voltage from the power source circuit and the other of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is adapted to receive a second modulating voltage from the power source means.
- 17. The apparatus as claimed in claim 16, wherein the first and second modulating voltages are superimposed with a direct current voltage to be applied to the focusing electrode.
- 18. The apparatus as claimed in claim 12, wherein the vertical electrode pieces of the quadrupole electrode structure are electrically connected with the focusing electrode and the horizontal electrode pieces of the same quadrupole electrode structure are applied with the modulating voltage, to form a uni-potential focusing lens.
- 19. The apparatus as claimed in claim 18, wherein the modulating voltage is superimposed with a direct current voltage to be applied to the focusing electrode.
- 20. The apparatus as claimed in claim 18, wherein electrode pieces for forming the uni-potential focusing lens extend from one end of the horizontal electrode pieces on respective sides of the associated electron beam.
- 21. The apparatus as claimed in claim 12, wherein the horizontal electrode pieces of the quadrupole electrode structure are electrically connected with the focusing electrode and adapted to receive the modulating voltage, and the vertical electrode pieces of the quadrupole electrode structure are adapted to receive a predetermined direct current voltage.
- 22. The apparatus as claimed in claim 21, wherein the modulating voltage is superimposed with a direct current voltage to be applied to the focusing electrode.
- 23. The apparatus as claimed in claim 12, wherein the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure are electrically connected with each other through a resistor, and wherein one of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is adapted to receive a first direct current voltage and the other of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is adapted to receive a second direct current voltage through said resistor, said modulating voltage being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure through a capacitor.
- 24. The apparatus as claimed in claim 23, wherein the first and second direct current voltages are substantially equal to each other.
- 25. The apparatus as claimed in claim 23, wherein the first and second direct current voltages have a predetermined difference in voltage therebetween.
- 26. The apparatus as claimed in claim 23, wherein the resistor, the capacitor and a resistor circuit for setting both of the first and second direct current voltages are molded together into a unitary structure with the use of an electrically insulating material.
- 27. The apparatus as claimed in claim 1, wherein the second quadrupole electrode positioned intermediately between the first and third quadrupole electrodes has a shape different from that of any one of the first and third quadrupole electrodes.
- 28. The apparatus as claimed in claim 27, wherein each of the first and third quadrupole electrodes is of an asymmetrical configuration with respect to a vertical plane perpendicular to the first direction and containing the associated electron beam.
- 29. The apparatus as claimed in claim 28, wherein the horizontal electrode pieces of each of the first and third quadrupole electrodes are displaced laterally outwardly of the trajectory of the associated electrode beam.
- 30. The apparatus as claimed in claim 29, wherein the horizontal electrode pieces of each of the first and third quadrupole electrodes have a width smaller than that of the horizontal electrode pieces of the second quadrupole electrode.
- 31. The apparatus as claimed in claim 28, wherein one of the vertical electrode pieces of each of the first and third quadrupole electrodes which is located remotest from the second quadrupole electrode has a width smaller than the other of the vertical electrode pieces of each of the first and third quadrupole electrodes which is located closest to the second quadrupole electrode.
- 32. The apparatus as claimed in claim 28, wherein the horizontal electrode pieces of each of the first and third quadrupole electrodes are displaced laterally inwardly of the trajectory of the associated electron beam.
- 33. The apparatus as claimed in claim 32, wherein one of the vertical electrode pieces of each of the first and third quadrupole electrodes which is located remotest from the second quadrupole electrode has a width greater than the other of the vertical electrode pieces of each of the first and third quadrupole electrodes which is located closest to the second quadrupole electrode, and each of the horizontal electrode pieces of each of the first and third quadrupole electrodes has a width greater than the width of said other of the vertical electrode pieces and smaller than the width of said one of the vertical electrode pieces.
- 34. The apparatus as claimed in claim 33, wherein each of the horizontal and vertical electrode pieces of the second quadrupole electrode has a width equal to said one of the vertical electrode pieces of each of the first and third quadrupole electrodes.
- 35. The apparatus as claimed in claim 28, wherein one of the vertical electrode pieces of each of the first and third quadrupole electrodes which is located remotest from the second quadrupole electrode has a width greater than the other of the vertical electrode pieces of each of the first and third quadrupole electrodes which is located closest to the second quadrupole electrode.
- 36. The apparatus as claimed in claim 35, wherein each of the horizontal electrode pieces of each of the first and second quadrupole electrodes has a width greater than that of each of the horizontal electrode pieces of the second quadrupole electrode.
- 37. The apparatus as claimed in claim 36, wherein each of the vertical electrode pieces of the second quadrupole electrode has a width greater than said other of the vertical electrode pieces of each of the first and third quadrupole electrodes and smaller than that of said one of the vertical electrode pieces of each of the first and third quadrupole electrodes.
- 38. The apparatus as claimed in claim 1, wherein each of the apertures defined in the focusing electrode is of a generally elliptical shape.
- 39. The apparatus as claimed in claim 38, wherein each of the generally elliptical apertures in the focusing electrode has its long axis lying in the second direction, and wherein the radius of curvature of each of the apertures in the focusing electrode which are aligned with the first and third quadrupole electrodes is greater than that of the aperture in the focusing electrode which is aligned with the second quadrupole electrode.
- 40. The apparatus as claimed in claim 39, wherein each of the apertures in the focusing electrode which are aligned with the first and third quadrupole electrodes has a straight edge portion extending perpendicular to the first direction and located remotest from the aperture in the focusing electrode which is aligned with the second quadrupole electrode.
- 41. The apparatus as claimed in claim 39, wherein each of the apertures in the focusing electrode which are aligned with the first and third quadrupole electrodes has a generally semicircular edge portion located remotest from the aperture in the focusing electrode which is aligned with the second quadrupole electrode.
- 42. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction;
- a first focusing electrode positioned in alignment with the cathode;
- A second focusing electrode positioned on one side of the first focusing electrode remote from the cathode in alignment with the first focusing electrode;
- a quadrupole electrode structure positioned between the first and second focusing electrodes in alignment therewith and including first, second and third quadrupole electrodes, one for each electron beam, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to the associated electron beam, each of said horizontal and vertical electrode pieces being in platelike form elongated along the respective electron beams; and
- power source means for applying a predetermined focusing voltage to both of the first and second focusing electrodes and also for applying a modulating voltage between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode, said modulating voltage being synchronized with a deflection period.
- 43. The apparatus as claimed in claim 42, wherein the power source means comprises a high voltage generating circuit for generating an anode voltage, a divider circuit for dividing the anode voltage, a first output terminal from which a first direct current voltage drawn from the divider circuit is extracted, a second output terminal from which a second direct current voltage drawn from the divider circuit through a resistor of high resistance value is extracted, a modulating voltage source for generating the modulating voltage synchronized with the deflection period, and a capacitor connected between the modulating voltage source and the resistor of high resistance value.
- 44. The apparatus as claimed in claim 43, wherein the divider circuit includes a first variable resistor connected electrically with the first output terminal.
- 45. The apparatus as claimed in claim 44, wherein the divider circuit includes a second variable resistor connected electrically with the resistor of high resistance value.
- 46. The apparatus as claimed in claim 45, wherein the first and second variable resistors are connected parallel to each other.
- 47. The apparatus as claimed in claim 42, wherein the modulating voltage is a voltage of generally parabolic waveform.
- 48. The apparatus as claimed in claim 42, wherein one of the horizontal and vertical electrode members of the quadrupole electrode is electrically connected with one of the first and second focusing electrode.
- 49. The apparatus as claimed in claim 48, wherein the first and second focusing electrodes are electrically connected with each other.
- 50. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes being comprised of a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, said power source means including a modulating voltage source for generating a modulating voltage synchronized with a deflection period of the electron beams, the modulating voltage generated from the modulating voltage source being a voltage having a parabolic waveform required to correct a deflection aberration of the electron beams, the modulating voltage from the modulating voltage source being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure, one of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure being electrically connected with the focusing electrode and the other of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure being electrically connected with the modulation voltage source.
- 51. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, said power source means including a modulating voltage source for generating a modulating voltage synchronized with a deflection period of the electron beams, the modulating voltage generated from the modulating voltage source being a voltage having a parabolic waveform required to correct a deflection aberration of the electron beams, the modulating voltage from the modulating voltage source being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure, one of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure being electrically connected with the focusing electrode and adapted to receive a first modulating voltage from the power source means and the other of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure being adapted to receive a second modulating voltage from the power source means.
- 52. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, said power source means including a modulating voltage source for generating a modulating voltage synchronized with a deflection period of the electron beams, the modulating voltage generated from the modulating voltage source being a voltage having a parabolic waveform required to correct a deflection aberration of the electron beams, the modulating voltage from the modulating voltage source being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure, the vertical electrode pieces of the quadrupole electrode structure are electrically connected with the focusing electrode and the horizontal electrode pieces of the same quadrupole electrode structure are applied with the modulating voltage to form a uni-potential focusing lens.
- 53. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, said power source means including a modulating voltage source for generating a modulating voltage synchronized with a deflection period of the electron beams, the modulating voltage generated from the modulating voltage source being a voltage having a parabolic waveform required to correct a deflection aberration of the electron beams, the modulating voltage from the modulating voltage source being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure, the horizontal electrode pieces of the quadrupole electrode structure are electrically connected with the focusing electrode and adapted to receive the modulating voltage, and the vertical electrode pieces of the quadrupole electrode structure are adapted to receive a predetermined direct current voltage.
- 54. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, said power source means including a modulating voltage source for generating a modulating voltage synchronized with a deflection period of the electron beams, the modulating voltage generated from the modulating voltage source being a voltage having a parabolic waveform required to correct a deflection aberration of the electron beams, the modulating voltage from the modulating voltage source being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure, the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure are electrically connected with each other through a resistor, and wherein one of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is adapted to receive a first direct current voltage and the other of the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure is adapted to receive a second direct current voltage through said resistor, said modulating voltage being applied between the horizontal electrode pieces and the vertical electrode pieces of the quadrupole electrode structure through a capacitor.
- 55. A cathode ray tube apparatus comprising;
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough;
- a quadrupole electrode structure including first, second and third quadrupole electrodes, one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beam; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, the second quadrupole electrode positioned intermediately between the first and third quadrupole electrodes has a shape different from that of any one of the first and third quadrupole electrodes.
- 56. A cathode ray tube apparatus comprising:
- three cathodes linearly arranged with each other in a first direction for emission of respective electron beams therefrom;
- a focusing electrode having first, second and third apertures defined therein for the passage of the respective electron beams therethrough, each of the apertures defined in the focusing electrode being of a generally elliptical shape;
- a quadrupole electrode including first, second and third quadrupole electrodes one for each electron beams, each of said quadrupole electrodes including,
- a pair of horizontal electrode pieces spaced a predetermined distance from each other in a second direction perpendicular to the first direction and positioned upwardly and downwardly, respectively, with respect to the associated electron beam, and
- a pair of vertical electrode pieces spaced a predetermined distance from each other in a direction aligned with the first direction and positioned leftwards and rightwards with respect to such associated electron beams; and
- power source means for applying a predetermined voltage to the quadrupole electrode structure, each of the generally elliptical apertures in the focusing electrode having a long axis lying in the second direction, and wherein the radius of curvature of each of the apertures in the focusing electrode which are aligned with the first and third quadrupole electrodes is greater than that of the aperture in the focusing electrode which is aligned with the second quadrupole electrode.
- 57. A cathode ray tube apparatus comprising:
- at least one cathode;
- a first focusing electrode positioned in alignment with the cathode;
- a second focusing electrode positioned on one side of the first focusing electrode remote from the cathode in alignment with the first focusing electrode;
- a quadrupole electrode structure positioned between the first and second focusing electrodes in alignment therewith and including at least one quadrupole electrode having a horizontal electrode member and a vertical member; and
- power source means for applying a predetermined voltage to both of the first and second focusing electrodes and also for applying a modulating voltage between the horizontal electrode member and the vertical electrode member of the quadrupole electrode, said modulating voltage being synchronized with a deflection period, the quadrupole electrode structure, the power source means comprises a high voltage generating circuit for generating an anode voltage, a divider circuit for dividing the anode voltage, a first output terminal from which a first direct current voltage drawn from the divider circuit is extracted, a second output terminal from which a second direct current voltage drawn from the divider circuit through a resistor of high resistance value is extracted, a modulating voltage source for generating the modulating voltage synchronized with the deflection period, and a capacitor connected between the modulating voltage source and the resistor of high resistance value.
- 58. A cathode ray tube apparatus comprising:
- at least one cathode;
- a first focusing electrode positioned in alignment with the cathode;
- a second focusing electrode positioned on one side of the first focusing electrode remote from the cathode in alignment with the first focusing electrode;
- a quadrupole electrode structure positioned between the first and second focusing electrodes in alignment therewith and including at least one quadrupole electrode having a horizontal electrode member and a vertical member, one of the horizontal and vertical electrode members of the quadrupole electrode being electrically connected with one of the first and second focusing electrodes; and
- power source means for applying a predetermined voltage to both of the first and second focusing electrodes and also for applying a modulating voltage between the horizontal electrode member and the vertical electrode member of the quadrupole electrode, said modulating voltage being synchronized with a deflection period.
Priority Claims (17)
Number |
Date |
Country |
Kind |
61-77057 |
Apr 1986 |
JPX |
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61-77058 |
Apr 1986 |
JPX |
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61-77056 |
Apr 1986 |
JPX |
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61-82629 |
Apr 1986 |
JPX |
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61-82625 |
Apr 1986 |
JPX |
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61-82626 |
Apr 1986 |
JPX |
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61-82627 |
Apr 1986 |
JPX |
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61-82623 |
Apr 1986 |
JPX |
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61-82624 |
Apr 1986 |
JPX |
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61-100624 |
Apr 1986 |
JPX |
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61-102793 |
Apr 1986 |
JPX |
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61-142401 |
Jun 1986 |
JPX |
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61-148941 |
Jun 1986 |
JPX |
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61-208408 |
Sep 1986 |
JPX |
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61-218582 |
Sep 1986 |
JPX |
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61-228731 |
Sep 1986 |
JPX |
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62-36271 |
Feb 1987 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 034,021, filed on Apr. 3, 1987, now abandoned.
US Referenced Citations (7)
Foreign Referenced Citations (8)
Number |
Date |
Country |
0235975 |
Feb 1987 |
EPX |
897226 |
Aug 1943 |
FRX |
53-9464 |
Jan 1978 |
JPX |
54-114175 |
Jun 1979 |
JPX |
56-128551 |
Oct 1981 |
JPX |
61-39347 |
Feb 1986 |
JPX |
61-250933 |
Feb 1986 |
JPX |
61-47040 |
Mar 1986 |
JPX |
Continuations (1)
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Number |
Date |
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Parent |
34021 |
Apr 1987 |
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