The present invention relates to a light detector attached on an optical fiber for an imaging head and a light detector at a distal tip of the optical fiber to provide feedback to a light source controller.
Optical heads for imaging emit a plurality of light spots on a light sensitive medium. The optical imaging head may be configured from an array of pigtailed laser diodes. Each laser diode is optically coupled to a proximal tip of a multi-mode optical fiber. The distal tips of the optical fibers are supported in a linear array by opto-mechanical means and imaged onto a printing plate.
The power calibration of the optical head is traditionally done as follows, the optical head is moved and adjusted in front of a light detector situated externally to the imaging head; and the power of each laser diode is then adjusted to emit the desired power intensity. This calibration is usually performed before each print.
Prior art techniques currently monitor power from back reflected light at the proximal tip of the fiber. See, for example, U.S. Pat. No. 6,061,374 (Nightingale et al.). It would be desirable to measure the light along the distal tips of the fiber, which would detect different parameters, such as the loss of optical power along the fiber.
Briefly, according to one aspect of the present invention a fiber optic imaging apparatus includes a light source; at least one optical fiber for transmitting light from the light source; a mechanical assembly for supporting at least one optical fiber; a detector which measures light transmitted by at least one optical fiber; and a controller for adjusting light intensity emitted from the light source according to a level of light detected by the light detector.
The present invention provides a hybrid structure of a light detector and an optical fiber assembly. The optical fibers are densely assembled in a linear array. A light detector measures the light from this array and the measured results are used to adjust and monitor the optical power in real time by deploying a feedback mechanism. Additionally, improper measurement results can invoke an alarm to notify of hazardous safety situations.
The present invention provides few unique features to the optical head. The combined structure of the optical head and the light detection means enable real time monitoring of the power and the shape of the pulse emitted from the distal tip of each fiber.
Additionally, the light detector is placed within the same structure of the imaging head. This hybrid configuration enables instant alarm of hazardous situations. For example, a fault, such as a break along one of the fibers that can cause a fire in the machine, can be immediately identified. To avoid such situations, an interlock configured to sense the light detection measurements is automatically activated to shutdown the diode laser thus avoiding any damage or harm. This feature is important when it is used in conjunction with high power diode lasers.
According to the present invention light is measured, along the distal tips of the fibers. The optical power measured along the distal tip of the fiber is proportional to the power emitted from the distal tip of the fiber.
These and other objects, features, and advantages of the present invention will become apparent to those skilled in the art upon a reading of the following detailed description when taken in conjunction with the drawings wherein there is shown and described an illustrative embodiment of the invention.
Reflective coating 46 may be applied on the internal surfaces of fibers mechanical housing structure 43 and/or fibers v-groove housing structure 53, this is done in order to intensify the power of the light that will reach to internal light detector 41.
Measurements conducted in the lab showed a correlation between the power levels emitted from the distal tips of the fibers and the measured light 45 emitted along the fibers 47.
The hybrid structure of an internal light detector 41 and an optical fiber assembly 14 for the imaging head is described in
Referring to
The fibers 47 are attached to a transparent fiber structure slab 42. A transparent optical glue 50 with a suitable index of refraction may be used. An internal light detector 41 is attached to the top of transparent fiber structure slab 42 to measure the power of the light 45 formed along distal tips of the fibers 47.
Internal light detector 41 measures one or more of the following light phenomena:
For this specific measurement, regular stepped indexed multimode silica fibers were used, but other types of optical fibers can be used as well, and the intensity of the light can be controlled by constructing fibers in various ways. For example, by adjusting the roughness 493 of the core 47a and clad 47b interface, the intensity of the scattered rays 491 can be controlled. The distal tips of the fibers can be angled, cleaved, or polished in order to control the light that is back reflected from these tips. The distal tips of the fibers can be coated using optical filters of various types in order to control the power of the transmitted and back reflected light. Scattering particles 490 may be formed within core 47a in order to control the amount of the scattered light. Grating formed within the core can be used to reflect part of the guided radiation toward internal light detector 41.
In the case where more then one wavelength is guided within the optical fiber, several detectors, each sensitive to a specific wavelength, can be aligned along the fiber in order to monitor each light source.
This hybrid structure configuration provides few advantages:
In order to better understand the disclosed invention, reference is made to
Light is emitted by light source 12 and is coupled utilizing micro-optics 13 into optical fiber 14. Further, along the distal tip of the optical fiber, light values are detected and measured by internal light detector 41. The measured results are communicated via the measurement results line 65 into the light source intensity control device 64. Light source intensity control device 64 will set the intensity of light source 12 via intensity control line 66 to conform with to the measured results in order to form a well balanced imaged spot 67 on printing plate 16.
The use of an internal light detector 41 as well as an external detector 15 to calibrate and monitor the optical head carries few advantages. Using both light detectors 15 and 41, may lead to a more reliable and precise laser calibration and laser monitoring procedure. For example, reading different results from the detectors may indicate a malfunction in one of them, thus alerting detectors service event.
For laser safety applications more than one light detector such as internal light detector 41 can be used. For example, a second light detector 48 can be placed along the proximal tip of the fiber and or at some other place along the fiber. Sensing emitted light from additional internal light detector 48 without any light sensed from internal light detector 41 may indicate a cut or a break somewhere along the fiber between the two adjacent detectors.
Additionally, the readings from internal light detectors 41 and 48 can also be compared to the readings of light detector 11, that measures the back reflected light, or to electrical signals such as the current and voltage of the light source. The reading of external light detector 15 can be also used in comparison to the current and voltage of the light source or to the reading of internal light detectors 41. Reading more than one light detector and using an adequate algorithm to analyze the results will help identifying malfunction and will improve the optical head reliability in respect with laser safety aspects.
It will be appreciated that the examples shown in