Claims
- 1. An arrangement for scanning a recording material with an optical beam comprising a housing, said housing having a plurality of wall portions around the interior perimeter of which a plurality of optical scanning components are situated, said plurality of optical scanning components including a beam splitter unit mounted at a first interior wall portion of said housing, said beam splitter unit containing a sealed package enclosing a laser and a first photodetector, and further containing a beam shaping aperture, a focusing lens mounted optically downstream of said laser beam splitter structure at a second interior wall portion of said housing wall for controlling the size of the beam spot falling upon the recording medium, a galvanometer mirror scanner mounted at a third interior wall portion of said housing, and a stationary mirror mounted at a fourth interior wall portion of said housing, said stationary mirror being located so that the beam scanned by galvanometer mirror may impinge upon and scan a region of the housing in which the recording medium is supported and advanced by an associated drive unit.
- 2. An arrangement according to claim 1, wherein said focusing lens comprises a first, principal focusing lens mounted at a fifth interior wall portion of said housing and a second, adjustable focusing lens mounted at a sixth interior wall portion of said housing, said second focusing lens be mounted so as to be translatable in the direction of the beam travel path, so as to allow for vernier control over the size of the beam spot falling upon said recording medium.
- 3. An arrangement according to claim 1, further including a laser drive unit for controlling the operation of said laser, said laser drive unit being operative to modulate the amplitude of said laser beam in accordance with an amplitude modulation control signal, and wherein said laser has a light output characteristic that is nonlinear with respect to an input signal applied thereto, said laser drive unit including a first amplifier circuit having an input to which a signal representative of said input signal for controlling the operation of said laser is coupled and an output, and wherein said first photodetector which is coupled to receive light produced by said laser and has an output coupled in a first feedback loop to said first amplifier circuit, so as to reduce the non-linear light output characteristic of said laser, and wherein said laser drive unit comprises a second feedback loop for further reducing the non-linear light output characteristic of said laser, said second feedback loop containing a second amplifier circuit having an input coupled to receive said amplitude modulation signal, and an output coupled to said first amplifier circuit, and a second photodetector which is coupled to a portion of the laser beam emitted by said laser and having an output coupled to said second amplifier circuit.
- 4. An arrangement according to claim 3, wherein a blanking signal is coupled to said first amplifier circuit for controllably interrupting the production of light by said laser, and wherein said first amplifier circuit includes a drive current control circuit for adjusting the level of drive current to said laser to a prescribed level in response to the application of said blanking signal to said first amplifier circuit.
- 5. An arrangement according to claim 3, wherein said second photodetector is supported externally of said sealed package in which said first photodetector device is integrally mounted with said laser, such that the feedback path from said second opto-electronic detector device which is coupled to said second amplifier circuit effectively forms an outer loop feedback path relative to said first feedback path.
- 6. An arrangement according to claim 3, further including a housing assembly in which said laser and said second photodetector device are mounted and having an internal light coupling path through light produced by said laser is coupled to said second photodetector, so that light produced by said laser is effectively prevented from being physically interrupted, thereby protecting said laser from an overdrive condition.
- 7. An arrangement according to claim 3, wherein said first amplifier circuit further includes a bias voltage input to which a regulated bias voltage is applied to setting the operation of said laser.
CROSS-REFERENCE TO RELATED APPLICATION
This is a divisional of U.S. patent application Ser. No. 07/954,576, filed Sep. 30, 1992, now U.S. Pat. No. 5,296,695, entitled DUAL FEEDBACK PATH LINEARIZATION OF CURRENT MODULATED LASER, by Andrew M. Bardos et al, and assigned to Harris Corporation, assignee of the present application.
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4034230 |
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Divisions (1)
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Number |
Date |
Country |
Parent |
954576 |
Sep 1992 |
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