Hereinafter, an optical pick-ups according to embodiments of the invention will be described with reference to the accompanying drawings.
Further, according to the embodiment, in order to make the entire optical disc drive 100 thin, major components such as a spindle 3 and a carriage 4 to perform essential functions of the optical disc drive 100 are mounted on the tray 2. It should be noted that some thin-type optical disc drives adopted for so-called note-type personal computers may be configured such that the spindle and the carriage may be mounted on a casing and a upper plate thereof may be configured as an openable/closable lid. The present invention can also be applied to such devices.
In the optical disc drive 100 shown in
The carriage 4 has an optical pick-up which is built in the carriage. The optical pick-up is provided in a rectangular opening 2b, which is formed on a bottom surface of the disc mounting part 2a, and held slidably by two rails 5 and 6 extending so that the carriage 4 slides in the radial direction. That is, both the rails 5 and 6 are built over the opening 2b, parallel to a transition trajectory of an objective lens 7, which extends in the radial direction from the spindle 3. The rail 6 penetrates a pair of guide followers 4a which protrude from one of edges of the carriage 4. A fork 4b protrudes from the other edge, and the other rail 5 is nipped by a pair of arms of the fork 4b. As a result, the carriage 4 slides within the opening 2b so that the objective lens 7 moves along the direction of a radius which extends from the spindle 3 (i.e., the objective lens moves in the tracking direction of the optical disc D). Since it is a well-known structure, it is not shown in the figure but a rack is formed at the tip of the guide follower 4a, while a worm gear engaging with the rack is provided to extend parallelly to the rail 6 inside the corresponding opening 2b. Therefore, the worm gear (not shown) is driven to rotate by the motor (not shown), and the position of the carriage 4 is controlled.
An window 4d is bored to expose the objective lens 7 included in the optical pick-up on the upper surface of the carriage 4. A cavity to store the carriage 4 is formed inside the optical pick-up.
Optical parts include a laser beam source 8, a beam splitter 9, a collimating lens 22, an objective lens 7, a sensor lens 25, and a light receiving device 26.
The laser beam source 8 emits a laser beam of blue-violet bandwidth (405 nm) conforming to the Blu-ray Disc standard.
The beam splitter 9 is provided in the light path of the laser beam emitted from the laser beam source 8. The beam splitter is a prism (polarization beam splitter) which transmits the laser beam emitted by the laser beam source 8 and reflects the light reflected by the optical disc D toward the sensor lens 25.
The collimating lens 22 is a positive lens which collimates the incident laser beam, which is emitted from the laser beam source 8 and transmitted through the beam splitter 9.
The objective lens 7 is a converging lens (positive lens) which converges the laser beam transmitted through the collimating lens 22 onto a recording layer R of the optical disc D. The objective lens 7 is a plastic single-element lens. The numerical aperture (NA) thereof at a design temperature is 0.85, conforming to the Blu-ray disc standard.
The laser beam converged onto the recording layer R and reflected thereby proceeds toward the objective lens 7 as a diverging modulation light carrying information recorded on the recording layer R. The modulation light incident on the objective lens 7 is emerged therefrom as parallel light if the temperature is equal to a setting temperature. The light emerged from the objective lens 7 is then incident on the collimating lens 22. Since the incident light is parallel light, the laser beam is converged by the collimating lens 22 and enters the beam splitter 9. A part of the laser beam is reflected by the beam splitter 9 and enters a sensor lens (cylindrical lens) 25. The sensor lens 25 converges the entered beam on a light receiving device 26 (the incident beam being converged in one direction). It should be noted that the setting temperature of the objective lens 7 is a temperature of the objective lens 7 in the carriage 4 after the temperature thereof has been raised with a continuously incident laser beam and the temperature is in a steady state. The setting temperature is dependent on heat conductance of materials of components of the carriage 4 and condition of ventilation around the carriage 4.
The objective lens 7 is designed so that the lens achieves prescribed performance at such a setting temperature and converges the laser beam without generating spherical aberration. Therefore, at a room temperature (around 25 degrees Celsius), positive spherical aberration is exhibited on a beam spot formed by the objective lens 7.
The above described light receiving device 26 detects an overall light amount of the received light, transmits the amount as a regeneration signal to an output circuit (not shown). Further, the light receiving device 26 detects an amount of spherical aberration in the received light. In order to realize such a function, the light receiving device 26 has a publicly known configuration. That is, the light receiving device 26 may include hologram and a plurality of light receiving elements as is described in United States Patent Application Publication No. US 2004/0264341 A1, teachings of which are incorporated herein by reference, filed by the assignee of the present invention. Then, each of the light receiving elements forming the light receiving device 26 inputs an analog signal representing a light amount of light which is received by the individual element into an SA (spherical aberration) detection circuit 27.
The SA detection circuit 27 generates a digital signal which represents an amount of spherical aberration generated in the beam spot which is formed by the objective lens 7 as a numerical value based on the input analog signals and inputs the digital signal into a controller 28.
Further, the light receiving device 26 is also configured to transmit an analog signal representing the amount of the light received by each of the light elements received as a tracking signal and a focusing signal to an objective lens driving circuit 30.
The objective lens driving circuit 30 calculates a moving amount of the objective lens 7 to cancel deviance of the spot of the laser beam (beam waist) on the recording surface R of the optical disc D based on a status of laser beam indicated by the focusing signal transmitted from the light receiving device 26. By controlling the objective lens actuator 10 based on the calculated moving amount, the objective lens driving circuit 30 adjusts the position (focusing) of the objective lens 7 in the direction of the optical axis so that a spot of the laser beam (beam waist) is formed on the recording surface R of the optical disc D. Further, the objective lens driving circuit 30 precisely adjusts the position of the objective lens 7 in the tracking direction (the radial direction of the optical disc D clamped by the spindle 3) based on the tracking signal transmitted from the light receiving device 26 by controlling the objective lens actuator 10, in order to realize a high-precision tracking by fine adjustment of tracking error (i.e., by canceling remaining error by the low precision due to above described movement of the entire carriage 4).
As shown in
a wire-securing mount 11 fixed inside of the carriage 4, the mount 11 having a shape of a substantially rectangular column of which longitudinal direction extends in the x-direction;
a lens holder 12 which has a shape of a substantially rectangular column of which length is almost the same of the length of the wire-securing mount 11 and is swingably held by the wire-securing mount 11 via 4 wires W, longitudinal direction of the lens holder extending in the x-direction;
a pair of focusing magnets (permanent magnets) 18 and 18 respectively fixed on side surfaces opposing in the y-direction, at the central portions thereof;
four tracking magnets (permanent magnets) 20, each two tracking magnets 20 being fixedly provided at both sides, in the x-direction, of each focusing magnet 18 and 18;
a base 30 having a shape of a cross of which two opposing arms are bended so as to have a U-shape cross-section and is fixed inside the carriage 4 so as to surround the lens holder 12 from the tray 2 side;
focusing coils 15 and 16 fixed on the inner sides of bent portions of the base 30 (i.e., portions of the base 30 extending in the z-direction), the focusing coils 15 and 16 facing the focusing magnets 18 and 18, respectively;
four (4) tracking coils 13, 13, 14 and 14 fixed on side surfaces, which extend in the y-direction and z-direction, of the bent portions of the base 30 such that the tracking coils 13, 13 face the tracking magnets 20, respectively, and the tracking coils 14 and 14 also face the tracking magnets 20, respectively; and
a heater 21 fixed on the upper surface of the lens holder 12.
It is noted that among the above described parts, the wire-securing mount 11, the lens holder 12 and the base 30 are resin molded products.
The both ends of the wire-securing mount 11 are formed as lobes of which thickness in the y-direction is smaller than the other portion so that effective length of the wire W is sufficient.
Similarly, both ends of the lens holder 12 in the x-direction are also formed as lobes of which thickness in the y-direction is smaller so that effective length of the wire is obtained. Four wires W, of which axial directions are the y-direction (each two (a pair of) wires W being spaced in z-direction and parallelly arranged, the two pairs of parallelly arranged wires W being spaced in x-direction and parallelly arranged), are penetrated and fixed between the lobes 11a and 12a facing each of the wire-securing mount 11 and the lens holder 12. As a result, the lens holder 12 can be substantially translated both in the x-direction and the z-direction, while maintaining the position of optical axis of the objective lens 7 in the z-direction. It is noted that the four wires W are also serve as electric power supply lines for supplying electric power to the heater 21.
The objective lens 7 is fitted in an optical disc side of a penetrated opening 12b which is penetrated along the z-direction at the center of the lens holder 12. The flange 7a of the objective lens contacts the end of the portion of the lens holder 12 defining the penetrated opening 12b and the position in the optical axis direction is adjusted. As shown in
Based on an amount of spherical aberration input by the SA detection circuit 27, the above described controller 28 refers to a reference table (not shown) and reads out an electrical current value corresponding to the amount of spherical aberration. The reference table relates the amount of spherical aberration to the current value such that the current value is larger as the amount of spherical aberration is larger in positive side, and if the amount of spherical aberration is zero or in negative side, the current value is zero. Then, the controller 28 controls the heater power supply circuit 29 to supply the electrical current to the heater 21 so that the electrical current of which value is the current value read out from the reference table is supplied (or the current supply is stopped).
According to the optical drive device of the embodiment of the invention, when each of the coils 13-16 is not supplied with a driving current just after the laser beam source 8 begins to emit laser beam, a temperature of the objective lens 7 is substantially the same as the room temperature, which is much lower than the setting temperature. Therefore, inevitability, spherical aberration on the positive side is generated in the laser beam converged by the objective lens 7. The spherical aberration thus generated is detected by the SA detection circuit 27 via the light receiving sensor 26, and amount of the spherical aberration is input to the controller 28. Then, the controller 28 controls the heater power supply circuit 29 so that the current corresponding to the amount of the spherical aberration is supplied to the heater 21. As a result, the heater 21 to which the current is supplied generates heat, and the temperature of the objective lens 7 rises. Then, the amount of the spherical aberration caused by the objective lens 7 is reduced. Through the above-described cycle, the temperature of the objective lens 7 reaches the setting temperature in due time, and the amount of the spherical aberration caused by the objective lens becomes zero. Once, as described above, the amount of the spherical aberration becomes zero, the controller 28 controls so that the current supply to the heater 21 is stopped. Although the heater 21 stops generating the heat, the temperature of the objective lens 7 is maintained at the setting temperature by heat generated by the laser beam itself, heat generated by the laser beam source 8, and heat generated by each of the coils 13-16. Therefore, after that, spherical aberration will not be caused by the objective lens 7.
(Modification)
Next, a second embodiment according to the invention will be described. Compared to the first embodiment, the second embodiment is different in that the heater 21 is divided into four heater elements 40-43, and each of the four elements is configured to generated heat individually. Each of
Layouts of the heater elements 40-43 on the upper surface of the lens holder 12 in the second embodiment are shown in
The four heaters 40-43 separated from each other as described above are individually supplied with driving currents from the heater power supply circuit 29 shown in
The heater power supply circuit 29 determines an heat amount of each of the heater 40-43 suitable to compensate for spherical aberration corresponding to the value of spherical aberration input from the controller 28 and supplies currents corresponding to the determined heat amount to each of the heater elements.
According to the second embodiment, comparing to the first embodiment, more suitable management of the temperature of the objective lens 7 is possible.
Since the other configurations and the effects thereof in the second embodiment are the same as the configurations and the effects in the first embodiment, the explanation is omitted for brevity.
(Modification 1)
(Modification 2)
A third embodiment according to the invention will be described. Compared to the first embodiment, the configuration of the third embodiment is different in that the heater 21 is installed inside the penetrated opening 12b and the light source side end of the penetrated opening 12b is closed with a cover glass 44. Each of
As shown in
The heater 21 is configured with Nichrome wire which is coiled in an annular shape that has an outside diameter which is nearly the same as a large inner diameter of the penetrated opening 12b of the lens holder 12 and a little larger than a beam diameter of the laser beam. The heater 21 is fixed by being intruded into the inner diameter portion 12d of the penetrated hole 12b.
The cover glass 44 is a disk-shaped parallel plane glass which has an outside diameter nearly equal to the inner diameter of the counterbore portion 12e of the penetrated hole 12b of the lens holder 12. The cover glass 44 is intruded into the counterbore portion 12e and is fixed. A space within the penetrated hole is sealed.
According to the third embodiment configured as described above, since the inner space of the penetration opening 12b is sealed by the objective lens 7 and the cover glass 44, heat generated by the heater 21 is transferred to the objective lens 7 also by convective flow and radiation of heat besides thermal conduction which is a heat transfer type in the first embodiment and the second embodiment.
Therefore, according to the third embodiment, since heating efficiency of the objective lens 7 is improved in comparison with cases of the first embodiment and the second embodiment, the temperature rising of the objective lens 7 to the setting temperature is completed faster.
Further, as described above, since the temperature rising of the objective lens is completed faster, using the change of refraction index of the medium due to the temperature change, it is possible to switch focal length of the objective lens 7, and switch a playing layer of a single-side dual-layer disc. That is, in the case, two kinds of setting temperatures are prepared. The objective lens is designed so that in the first setting temperature which is relatively low, as shown in
Since the other configurations and the effects of the third embodiment are the same as the configurations and the effects in the first embodiment, the explanation is skipped.
The present disclosure relates to the subject matter contained in Japanese Patent Application No. 2006-262639, filed on Sep. 27, 2006, which is expressly incorporated herein by reference in its entirety.
Number | Date | Country | Kind |
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2006-262639 | Sep 2006 | JP | national |