Field of the Invention
The present invention relates to optical disk recorders and more particularly to an objective lens mount.
Background of the Invention
Optical disk recorders use an objective lens to focus a laser beam onto a record medium and for transmitting a reflected laser beam from the medium to the detector apparatus for use in controlling the focusing, track seeking and following and data readback for the optical disk player. Such objective lens supports have taken various shapes, forms, and designs. These supports enable the laser beam to be tracked along a record track of a disk or plate medium as well as for moving the beam from one track to an adjacent track. Axial motion of the actuator is used for focusing control. An important aspect of any of these actuators is that they exhibit a sufficiently high resonant frequency such that parasitic vibrations do not interfere with either the focusing or the so-called track following or seeking operations.
The present invention concerns an objective lens holder which provides the track following and seeking functions through rotary motions and the focusing control through actual motions. This general type of objective lens holder is known in the art. For example: in Tsurushima et al., U.S. Pat. No. 4,482,988 shows such an actuator wherein an objective lens is supported on a radially extending beam which is rotatable about an axis and is axially movable parallel to such axis. This patent also shows a tubular cylinder supporting an objective lens having a slightly different arrangement wherein the support is a series of concentric cylinders with the objective lens being off center from the center of rotation of the cylinder. It is desired to provide a higher performance objective lens support not shown in this reference by reducing the inertia of the actuator i.e., reducing the mass at a radially extremity from the center of rotation.
Kasahara et al., in U.S. Pat. No. 4,679,903 shows such a rotary objective lens support having a peripheral vibration damper. It is desired to provide vibration elimination without increasing the inertia of rotation of the objective lens support. The objective lens support shown in this reference includes a cup-shaped cylinder with radially extending arms for supporting an objective lens. It is desired to provide a simpler support which is moldable and yet provides high resonant frequency for high performance operations.
Musha in U.S. Pat. No. 4,715,024 shows a rotary axially-moveable objective lens support in which the objective lens is mounted on a radially extending arm which results in an imbalance in the rotation i.e., all of the inertia is on one radius of the objective lens support; it is desired to provide a balanced lens support holder which is of simple construction.
Gijzen et al., in U.S. Pat. No. 4,767,187 shows a balance objective lens support of the rotary type which is also axially slidable. The balancing is achieved through a complex construction which is desired to be avoided.
Nanno et al., U.S. Pat. No. 4,790,628 shows a rotary objective lens support in which the lens is mounted on an extending radially arm. FIG. 9 of this reference shows a gain and phase chart wherein no vibrations are induced into the rotary lens support up to 10,000 Hertz. It is noted that the center support is a relatively large cylinder which adds to the rotational inertia of the objective lens holder. It is desired to provide a more compact objective lens holder which will facilitate higher frequencies of operation such as above 20,000 Hertz.
Ozaki et al., in U.S. Pat. No. 4,796,248 shows another cylindrical actuator wherein the objective lens is mounted offset from the center of rotation of the cylindrical or tubular assembly. Pan Sluys et al., in US Patent 4,817,076 shows another actuator having a large number of products in the assembly which is desired to be avoided.
Japan published unexamined patent application 60-38738 is another showing of the actuator of Musha et al. supra.
Summary of the Invention
In accordance with the invention, a rotary axially slidable objective lens support or rotary actuator has a beam-shaped frame with a central pivot axis transfers to the length of the beam. An objective lens is positioned at one distal end of the beam and a rotary position sensor is positioned at the opposite distal end of the beam. The elongated beam is axially off-set along the length such that the objective lens is in a different plane than the rotary position sensor for facilitating accessing optical disks contained in a cartridge. In the transition between the planes, tapered walls at the lateral outward wall edges of the beam join the beam portions in the two different planes in a matter for enhancing the resonant frequency characteristics of the rotary actuator in both the rotary and axially slidable directions and motions. Resonant frequency of the assembly is increased in both the rotary and focusing motion directions.
The foregoing and other objects, features and advantages of the invention will be apparent from the following more particular description of preferred embodiments of the invention, as illustrated in the accompanying drawings.
Description of the Drawings
FIG. 1 is a showing of a prior art actuator which has similar constructional features as the actuator of the present invention.
FIG. 2 shows the actuator of the present invention in isometric metric form.
FIG. 3 shows an assemblage of the rotary actuator and its base support for providing an objective lens support assembly having both focusing and tracking directions of motion.
FIG. 4 shows an improved actuator made after testing the FIG. 1 and FIG. 2 illustrated actuators.
Detailed Description
Referring now particularly to the drawings, like numerals indicate like structural features of the invention. A prior art actuator 10 is shown in FIG. 1. The rotary actuator 10 includes a central axially extending aperture 11 for receiving a pivot pin for enabling rotation of the actuator 10 about pivot axis 11A, as well as providing slidable focusing motions in the direction of pivot axis 11A. A central boss 12 extends transversely to the length of the actuator 10. Sets of coils 13 are mounted on the longitudinally outwardly facing walls 21 of actuator 10. Both focusing and tracking coils are suitable mounted on the actuator. A pair of apertures 18 between central boss 12 and the outer walls 21 movably receive a pair of later described magnets for co-action with the focusing and tracking coils 13. Outwardly facing walls 14 of central boss 12 are positioned to allow limited rotational motion of actuator 10 for permitting the tracking functions. An objective lens 15 having an optical axis 15A extending parallel to pivot axis 11A is mounted in an end portion 16 of the actuator 10. The objective lens 15 is in the first plane extending perpendicular to pivot axis 11A. At the opposite end portion 20 of the beam shaped actuator 10, an upstanding pin 17 provides for indication of rotary position of the actuator 10. Upstanding pin 17 is mounted on a second plane 20A axially displaced from the first plane 26A having objective lens 15. This axial offset facilitates moving lens 15 closer to a disk contained in a cartridge which is accessed through a window in the cartridge (not shown). A pair of outer walls 21 and central hub portion 12 connect the two end portions of the beam shaped actuator. Tests using the FIG. 1 illustrated actuator indicated that the resonant frequency characteristics and other parasitic vibration problems prevented the use of the actuator from providing desired high performance. Later described comparative tests between the FIG. 1 illustrated construction and the next described FIG. 2 illustrated construction will show that advantageous of using the construction of the present invention over the FIG. 1 illustrated prior art.
In accordance with the invention, connecting walls 21 were changed by inserting wall portions 25 having a smooth surface extending from the upper surface 26A of end portion 26 to upper surface 20A of end portion 20 all as seen in FIG. 2. A pair of bosses 27, which are a portion of walls 21, terminate the wall portions 25, therefore the wall portions 25 terminate in a slight axial displacement from surface 20A. This displacement from the surface 20A was found not to interfere with the reduction of undesired vibrations. Dash lined box 28 illustrates a rectangle representing a volume between the upper surface 26A and the upper portion of boss 27 on lower surface 20A. It is seen that wall portions 25 fill up one half of the rectangular area and provide a smooth surface between upper surface 26A and lower surface 20A. The axially extending aperture 22 apparently was to facilitate molding the actuator. Vibration reduction was provided by the exterior walls 25 which longitudinally extend between the end portion 26 and the end portion 20 of the beam shaped actuator.
FIG. 3 illustrates the relationship of the actuator 10A as shown in FIG. 2 with a base support 29. Base support 29 includes an E shaped upwardly-opening magnetically-permeable member 30 having upstanding arms 31, 33, 34, and 36. A pair of magnets 32 and 35 are suitable mounted on the upstanding arms 31 and 36 respectively. Upstanding arms 33 and 34 extend into apertures 18 of actuator 10A, respectively. Upstanding pivot pin 38 extends through pivot aperture 11 for providing rotary and axially slidable support to actuator 10A. The interstices 37 between the magnets 32, 35 and the upstanding arms 33, 34, respectively receive the arm 21 of the actuator. The spacing of the arms and aperture 18 is such that limited pivoting motion is permitted when actuator 10A is slidable mounted on pivot pin 38.
A rotary position sensor assembly is mounted on a frame 40 which extends generally parallel to the magnet assembly 31-36. A light emitting diode 41 is mounted to supply a light toward a pair of photo sensing diodes 42. Gap 43 between light emitting diode 41 and a photo sensing diode 42 receives position indicating pin 17. The assembly of the apparatus of FIG. 3 first places a rotary actuator 10A over pivot pin 38, then position-sensing assembly 40-44 is added such that position indicating pin 17 goes into gap 43. Note that the lower part of frame 40 is affixed to the magnet assembly with the portions of 44 supporting elements 41 and 42 are then afixed to the assemblage.
Comparative tests were performed on the FIG. 1 and FIG. 2 illustrated actuators. The FIG. 3 illustrated assembly was rigidly mounted to a twelve millimeter thick aluminum plate for analysis. This provides a well behaved and repeatable test stand so that the dynamics of the illustrated actuators could be isolated from the supporting structures shown in FIG. 3.
The above FIGURES are averages of 15 actuators for FIG. 1 and 4 actuators for FIG. 2. The FIG. 2 actuators had the walls 25 adhesively secured by an Epoxy resin. Two molded actuators using the FIG. 2 structure were used in the tests labeled "molded". The FIG. 4 line shows the test result average for 98 test specimens. Numbers are averages.
FIG. 4 shows and actuator which has a beam length shorter than the beam lengths of FIGS. 1 and 2, i.e. the distance between pivot pin receiving aperture 11, the lens 15 and pin 17 are shortened. This change provides some enhancement in performance but nothing like the performance enhancement by added walls 25A. In FIGS. 1 and 2, the walls 21 and 25, respectively, were parallel; in FIG. 4 walls 25A slant inwardly toward pin 17 (not parallel). A hardened pivot pin bearing 50 is at one end of pivot pin aperture 11, it can extend the length of the aperture or two bearings can be used, one at each end portion of the aperture. For enhancing focussing operations, a vibration damper 51 is adhesively secured to the actuator 10B adjacent lens 15. Any resilient adhesive can be used. The damper mass in one test was a lead tape; other materials less toxic may be used. While the invention has been particularly shown and described with reference to preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention.