The invention relates to an optical device for reading information on a track on a surface of an optically readable record carrier to be placed therein, which device comprises:
The invention further relates to a method of determining a mass-unbalance of an optically readable record carrier which is present in an optical device which is capable of reading information on a track of the record carrier, wherein the optical device comprises:
An embodiment of this optical device is known from EP-A-0 821 356.
In this known optical device, the mass-unbalance of the record carrier is detected by using a tracking error signal or a rotation control signal. The amplitude of the tracking error signal indicates the extent to which the actual position of the radiation beam is different from a desired position in the first direction. The rotation control signal determines the speed at which the rotation means rotate the record carrier.
If the mass of the record carrier is not homogeneously distributed relative to the center of rotation, mass-unbalance will occur. If a record carrier exhibiting mass-unbalance rotates at a high speed of, for example, 6000 rpm, vibrations may develop. Said vibrations may lead to variations in the distance between the part of the track covered by the radiation beam and the center of rotation. As a result, the amplitude of the tracking error signal may be higher than that of a record carrier which does not exhibit mass-unbalance. If the absolute value of the amplitude of the tracking error signal is higher than a predetermined second threshold value, this will be detected by the detection means of the known optical device. An absolute value of the tracking error signal in excess of the second threshold value indicates that the record carrier may exhibit mass-unbalance. The absolute value of the tracking error signal may also exceed the second threshold value if the track extends eccentrically around the center of rotation of the record carrier. Hereinafter the term sub-tracks will be used, a sub-track being a portion of the track which completely surrounds the center of the record carrier.
The known optical device has a hold-state. This is a condition in which part of the track is read repeatedly as a result of the radiation beam repeatedly jumping back to a sub-track preceding the current sub-track. If the record carrier exhibits mass-unbalance, the amplitude of the rotation control signal will be higher than in the case of a record carrier which does not exhibit mass-unbalance. The reason for this is that in the case of mass-unbalance the record carrier does not rotate uniformly between the positions between which the radiation beam jumps. The rotation controller attempts to even out the disturbance in the rotational speed ω that is caused by the mass-unbalance. As a result, the amplitude of the rotation control signal may be higher. The detection means of the known optical device detects the point at which the absolute value of the amplitude of the rotation control signal exceeds a predetermined second threshold value. An absolute value of the rotation control signal in excess of the second threshold value may indicate mass-unbalance of the record carrier. The detection means of the known optical device compares the amplitude of the rotation control signal with a predetermined threshold value. A value in excess of said threshold value means that the mass-unbalance of the record carrier is too great.
It is a first object of the invention to provide an optical device of the kind referred to in the introduction in which the detection means is capable of carrying out the determination of the mass-unbalance in an alternative way.
It is a second object of the invention to provide a method of the kind referred to in the introduction in which the detection of the mass-unbalance is carried out in an alternative way.
The first object is achieved with the optical device according to the invention in that the detection means are capable of using the state of the carriage for determining the mass-unbalance.
The state of the carriage may be the position of the carriage in radial direction, the speed of the carriage, the acceleration of the carriage, or a combination thereof.
If a record carrier exhibits mass-unbalance, vibrations may occur in the optical device, especially if relatively high rotational speeds are used. This may affect the state of the carriage. The vibrations effect a change in the position, the speed, or the acceleration of the carriage. Thus, the effect caused by the mass-unbalance can also be determined by determining the state of the carriage, and the state of the carriage can accordingly be used for the detection of mass-unbalance.
After the presence of mass-unbalance has been established, a subsequent step may be to reject the record carrier. Alternative subsequent steps are also possible, however, as will appear from a specific embodiment of the optical device.
In one embodiment of the optical device, the state determining means comprise an absolute measuring system for determining a current position of the carriage in the first direction, wherein the state comprises the current position of the carriage, and wherein the optical device further comprises difference determining means for defining a position error signal by determining a difference between the current position of the carriage and a desired position of the carriage, the detection means being capable of using the position error signal of the carriage for determining the mass-unbalance.
This embodiment can be readily implemented in existing optical devices. Existing optical devices frequently comprise an absolute measuring system for determining the current position of the carriage in radial direction. Said optical devices use the position tracking signal for controlling the position of the carriage. Vibrations resulting from mass-unbalance may make it more difficult to control the position of the carriage and cause the amplitude of the position error signal to become higher.
In a further implementation of this embodiment of the optical device, the detection means comprise steps for determining a maximum rotational frequency fm at which an amplitude E derived from the position error signal is lower than a first threshold value.
Since the amount of vibrations is greater at relatively high rotational speeds than at relatively low rotational speeds, said vibrations have a greater influence on the performance of the optical device as regards track following at higher rotational speeds. In addition, sound is produced in the optical device as a result of said vibrations, which is undesirable. The rotational frequency cannot be increased without limitation, therefore. There will be a maximum rotational frequency at which the optical device is still capable of functioning properly. The amplitude E may be an absolute value of the amplitude of the position error signal, for example. Since the amplitude of the position error signal depends in part on the vibrations caused by mass-unbalance, it is possible to determine the maximum rotational frequency fm by comparing the amplitude E with the first threshold value. If a record carrier exhibiting relatively little mass-unbalance, or none at all, is present in the device, there is a possibility that the aforesaid effect will not occur even if the record carrier is rotated at the maximally attainable rotational frequency fmax. The maximum rotational frequency fm is equal to the maximally attainable rotational frequency fmax in that case. The determination of the maximum rotational frequency fm may take place by starting from a relatively low rotational frequency and subsequently increasing said frequency to a maximum rotational frequency fm at which the amplitude E is lower yet than the first threshold value. It is alternatively possible to start with a relatively high rotational frequency and subsequently decrease it to a maximum rotational frequency at which the amplitude E is lower than the first threshold value.
In a modification of this embodiment of the optical device, the detection means comprises:
The position error signal may contain a DC component. If the amplitude E is directly the amplitude of the position error signal, as in the aforesaid embodiment, and said amplitude is compared with the first threshold value, the detection of the mass-unbalance will not function optimally as a result of the presence of the DC component. The fact is that the vibrations caused by mass-unbalance have relatively little influence on the DC component. An improved detection is obtained when the position error signal is filtered first, as a result of which the DC component will be suppressed. The amplitude determining means subsequently determine the amplitude of the first filtered signal. This amplitude is thus the aforesaid amplitude E derived from the position error signal, which is compared with the first threshold value by the detection means. The amplitude determining means can determine the amplitude E by determining a maximum value and a minimum value of the amplitude of the filtered signal and subsequently subtracting the minimum value from the maximum value. It is alternatively possible to determine the absolute value of the amplitude of the first filtered signal and subsequently determine the average of said absolute value so as to obtain the amplitude E.
The second objective is achieved with the method according to the invention in that the method uses the state for determining the mass-unbalance.
In one embodiment of this method, the optical device further comprises an absolute measuring system for determining a current position of the carriage, in which the state comprises the position of the carriage in the first direction, which method comprises a further step of determining a position error signal of the carriage by determining a difference between the current position of the carriage and a desired position of the carriage, the method using the position error signal for determining the mass unbalance.
In one implementation of this embodiment, the method comprises further steps for determining the maximum rotational frequency fm at which an amplitude E derived from the position error signal is lower than a first threshold value. If the amplitude E has a value lower than the first threshold value, the influence of the disturbances will be limited. In the case of rotational frequencies at which the amplitude E is lower than the first threshold value, the optical device will experience little difficulty in reading the information on the record carrier and, in addition, the extent to which sound is produced will be limited. It is advantageous to determine the maximum rotational frequency fm at which the amplitude E is lower than the first threshold value and at which accordingly the influence of the disturbances is limited.
In a modification of this embodiment, the method comprises farther steps of:
The above and further aspects of the optical device according to the invention will be explained in more detail hereinafter with reference to the drawings, in which
In an experiment, four record carriers 2 exhibiting different degrees of mass-unbalance were tested. In the diagram of
An example of the steps which the detection means 20 can carry out so as to determine the maximum rotational frequency fm at which the amplitude E is lower than the first threshold value is shown in
In
Step 2 comprises the determination of the amplitude Pe.
In step 3, the amplitude Pe is compared with the first threshold value. If the amplitude Pe is higher than said threshold value, the next step will be step 6, if it is not, the next step will be step 4.
In step 4, the current rotational frequency fr is compared with the maximally attainable rotational frequency fmax. The rotation means 3 is not capable of realizing rotational speeds fr higher than the maximally attainable rotational frequency fmax.
In step 5, the rotational frequency fr is increased by a value delta, and the detection means 20 causes the radiation beam to follow the track 1, using the actuator 7 and the carriage 5. The next step is step 2.
In step 6, the rotational frequency fr is decreased by said value delta.
In the steps that are shown in
The diagram of
Number | Date | Country | Kind |
---|---|---|---|
01205008.4 | Dec 2001 | EP | regional |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/IB02/05457 | 12/16/2002 | WO |