This patent application is based on a Taiwan, R.O.C. patent application No. 097147460 filed on Dec. 5, 2008.
The present invention relates to a phase locked loop (PLL), and more particularly, to a band selecting method applied to a voltage controlled oscillator (VCO) of a PLL circuit, and an associated apparatus.
Referring to
The VCO 40 typically has two types including an LC oscillator and a ring oscillator. To allow the VCO 40 with a higher adjustable frequency range, the VCO includes a varactor bank or a switched capacitance bank in which capacitance varies with the voltage applied, such that the VCO 40 is facilitated to provide a plurality of bands for adjusting the voltage controlled frequency Fvco of the voltage controlled signal. Refer to
With reference to
In order to maintain a stable voltage controlled frequency Fvco when operating the PLL in an environment where the ambient temperature varies drastically, the control voltage Vctrl also needs to vary with the temperature variance. For example,
Therefore, the coarse band selection procedure of a VCO is extremely important. Coarse band selection is applied to select an appropriate band so that the control voltage Vctrl of the VCO does not easily exceed from the linear control range. In general, before a PLL starts to operate, i.e., when power is switched on or a circuit is reset, the PLL starts to operate provided that the VCO undergoes coarse band selection for selecting a specific band.
Coarse selection includes closed-loop coarse selection and open-loop coarse selection. For closed-loop coarse selection, the selection of a band appears rather less important. The reason behind is that, a monitor circuit is provided for continuously monitoring the control voltage Vctrl in PLL operations, and the monitor circuit changes the band of the VCO to have the control voltage Vctrl return within the linear control range whenever the control voltage Vctrl exceeds the linear control range.
More specifically, at the temperature 3T, the monitor circuit selects the band 2 of the VCO for operations when having detected that the control voltage Vctrl exceeds the linear control range, as shown in
However, the monitor circuit need continuously monitor the control voltage Vctrl, meaning that the monitor circuit continuously consumes power—such monitor circuit is inappropriate for a PLL to monitor the control voltage Vctrl in a circuit that requires low power consumption.
Further, band selection for an open-loop coarse selection procedure is performed during power on or when the circuit is reset, and the band is stays unchanged thereafter without causing the foregoing issue of continuous power consumption. Therefore, the open-loop coarse selection procedure is crucial for normal operations of the PLL, or the PLL may become unlocked if the open-loop coarse selection is not performed appropriately.
Suppose the linear control range of the PLL is between VL and VH, an open-loop control voltage of 1/2(VL+VH) is set for performing coarse band selection. Further, connection between the loop filter 30 and the VCO 40 is opened to form an open loop. Different bands of the VCO 40 are sequentially selected and the voltage inputted into the VCO 40 is controlled using the open loop to enable the VCO 40 to output voltage controlled output signals corresponding to different voltage controlled frequencies Fvco. The voltage controlled output signals of different voltage controlled frequencies Fvco using the frequency divider 45, have the voltage controlled frequencies Fvco divided by N to generate different frequency divided signals. All the frequencies of the frequency divided signals are compared with the reference frequency Fref of the reference signal, and a band, of the VCO 40, corresponding to divided frequency signal with a frequency closest to the reference frequency Fref is selected as the coarse band.
Refer to
Four situations of four bands in
The third divided frequency FD3 of the third frequency divided signal is 40.3 MHz, which is the closest to 40 MHz of the reference frequency Fref. Therefore, the PLL coarsely selects the third band (3) of the VCO for operations. Further, as shown in
According to the prior art, coarse band selection in a closed PLL is aimed to identify a specific band so that the control voltage Vctrl is maintained around a central area of the linear control range when the PLL is closed. However, the conventional coarse band selection in an open loop, when implemented to an environment where the ambient temperature varies drastically, causes the PLL to become unlocked. With reference to
On the contrary, suppose the PLL undergoes open-loop coarse band selection at a high temperature, e.g., 125° C., and completes coarse selection of the third band. Again, it is apparent that, when the PLL operates at a low temperature, in order to keep locking the PLL at 4 GHz, the control voltage Vctrl gradually decreases from 1.4V in response to the extreme drop in temperature. As a result of being merely 0.4V from the lower boundary of the linear control range, the control voltage Vctrl can easily exceed the linear control range when the PLL is at a low temperature, e.g. 0° C., such that the PLL becomes unlocked.
It is an objective of the invention to provide a band selecting method applied to a voltage controlled oscillator (VCO) of a phase locked loop (PLL), so that the PLL does not become unlocked when being operated in an environment where ambient operating temperature varies with a large range.
According to the present invention, a band selecting method applied to a VCO of a PLL in an open-loop. The VCO provides a plurality of frequency bands for selection. The band selecting method comprises steps of: generating an open-loop control voltage according to a temperature signal; inputting the open-loop control voltage into the VCO; switching sequentially between the frequency bands of the VCO so that the VCO sequentially generates a plurality of voltage controlled signal having different voltage controlled frequencies; and selecting one of the plurality of bands as an initial band so as to provide the corresponding voltage controlled voltage for the PLL in a closed-loop.
According to the present invention, a PLL comprises a loop filter, for outputting a first control voltage; an open-loop control voltage generator, for outputting a second control voltage associated with an ambient temperature; a selector, e.g., a multiplexer or a switch, for selecting either the first control voltage or the second control voltage to output as a third control voltage according to an open-loop control signal; a VCO, for generating a voltage controlled output signal according to the third control voltage; a frequency divider, for receiving the voltage controlled output signal and dividing the same to generate a frequency divided signal; a phase frequency detector, for generating a phase difference signal according to the frequency divided signal and a reference signal; a charge pump, for generating an output current to the loop filter according to the phase difference signal to generate the first control voltage; a frequency comparator, for generating a frequency difference signal according to the frequency divided signal and the reference signal; and a band selector, for switching between a plurality of frequency bands of the VCO when an open-loop control signal is asserted to further select an operating band from the bands of the VCO according to a plurality of frequency difference signals outputted by the frequency comparator, and for controlling the VCO when the open-loop control signal is deasserted to generate the voltage controlled output signal according to the operating band and the third control voltage. For example, the open-loop control voltage generator comprises a temperature detecting circuit for providing a temperature signal to associate the second control voltage with the temperature signal. Alternatively, the temperature detecting circuit is a proportional-to-absolute-temperature (PTAT) current generating circuit, and the temperature signal is a current signal generated by the PTAT current generating circuit. Alternatively, the temperature detecting circuit is a PTAT current generating circuit, and the temperature signal is generated by flowing a PTAT current through a resistor.
The present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
Please refer to
The input circuit 70 comprises a first resistor R1 and two bipolar transistors Q1 and Q2. Q1 has an area of m times that of Q2. Both Q1 and Q2 have their bases and collectors connected to ground to form a diode connection. Q2 has its emitter connected to the negative input end of the operational amplifier 65, while Q1 has its emitter connected to the first resistor R1 further connected to the positive input end of the operational amplifier 65. It should be noted that the input circuit 70 may also be realized using FETs in conjunction with resistors.
As observed from the PTAT current generating circuit in
Ix=Iy=Iptat (1)
Since the operational amplifier 65 has infinite gain, a negative input end voltage Vy and a positive input end voltage Vx of the operational amplifier 65 are equal. Therefore,
R
I
I
x
+V
EB1
=V
EB2 (2)
Further, Q1 and Q2 form a diode connection and Q1 has an area of m times of that of Q2. Hence,
It is then inferred that,
V
BE1
=V
T 1n(Ix/mIs) (3)
V
BE2
=V
T 1n(Iy/Is) (4)
wherein, Is is a saturation current and VT is a thermal voltage of Q1.
By combining equations (1), (2), (3) and (4), it is concluded that,
I
ptat=(1/R1)VT 1n m (5)
From equation (5), the PTAT current Iptat varies only along with temperature change for that the thermal voltage VT varies along with temperature change. More specifically, the amplitude of the PTAT current Iptat may be regarded as a temperature signal for deducing the operating temperature of a circuit. Alternatively, the PTAT current Iptat may flow through a resistor; and the operating temperature of a circuit may also be obtained according to the amplitude of the voltage across the resistor.
Therefore, the band selecting method according to the invention uses a temperature signal outputted by a temperature detecting circuit, e.g., a PTAT current generating circuit, for performing band selection of a VCO.
According to one embodiment of the invention, an open-loop control voltage is determined by a temperature signal provided by a temperature detecting circuit. When a PLL performs coarse band selection, an ambient temperature of the PLL is obtained utilizing the temperature signal, and the open-loop control voltage is determined based on the temperature variance trend during operations of the PLL.
For example, suppose the PLL performs coarse selection at a low temperature. The temperature increases when operating the PLL at the low temperature. Preferably, the open-loop control voltage selects a voltage near VL in the linear control range. Thus, as the PLL is closed, the range that the control voltage Vctrl increases within the linear control range expands.
Please refer to
With reference to
Note that the second divided frequency FD2 of the second frequency divided signal is 40.1 MHz, which is the closest to 40 MHz of the reference frequency Fref. Therefore, the PLL coarsely selects the second band (2) of the VCO for operations. Further, as shown in
During normal operations of the PLL, when the temperature increases from the low temperature of T4, the control voltage Vctrl gradually increases from 1.05V to allow the PLL accurately outputting the Fvco of 4 GHz. In this embodiment, since the open-loop coarse selection selects an open-loop control voltage that is close to VL, the increasing control voltage Vctrl at this point is 0.95V away from the other boundary VH. That is to say, it is unlikely that the control voltage Vctrl exceeds the linear control range. Referring to
Referring to
With reference to
Note that the fourth divided frequency FD4 of the fourth frequency divided signal is 40.4 MHz, which is the closest to 40 MHz of the reference frequency Fref. Therefore, the PLL coarsely selects the fourth band (4) of the VCO for operations. As shown in
During normal operations of the PLL, when the temperature decreases from the high temperature of T6, the control voltage Vctrl gradually decreases from 1.9V to allow the PLL accurately outputting the Fvco of 4 GHz. In this embodiment, since the open-loop coarse selection selects an open-loop control voltage that is close to VH, the decreasing control voltage Vctrl at this point is 0.9V away from the other boundary VL. That is to say, it is unlikely that the control voltage Vctrl exceeds the linear control range. Referring to
Therefore, an advantage of the present invention lies in that, the open-loop control voltage is determined according to a temperature signal provided by the temperature detecting circuit when the PLL performs coarse band selection in an open-loop. Further, when band selection of the VCO is completed, the control voltage Vctrl is unlikely to exceed the linear control range and chances that the PLL become unlocked therefor are minimized.
Referring to
According to an open-loop control signal, the multiplexer 935 inputs the control voltage Vctrl generated by the loop filter 930 or the open-loop control voltage generator 932 into the VCO 940. The multiplexer 935 may be a selector such as a switch element. The frequency comparator 950 receives a frequency divided signal and a reference signal to generate a frequency difference signal to the band selector 960. When the open-loop control signal is asserted, the band selector 960 switches between a plurality of bands of the VCO 940, so that the band selector 960, according to a plurality of frequency difference signals from the frequency comparator 950, selects a preferred band of the VCO 940 to provide the selected band to be applied to a closed PLL.
When the PLL is open, an open-loop control signal is asserted. Thus, the multiplexer 935 outputs the control voltage Vctrl generated by the open-loop control voltage generator 932. The open-loop control voltage generator 932 further comprises a temperature detecting circuit 933, e.g., a PTAT current generating circuit, such that the control voltage Vctrl generating by the open-loop control voltage generator 932 is associated with a temperature signal provide by the temperature detecting circuit 933. For example, a PTAT current flows through a resistor to generate a voltage that is applied as the control voltage Vctrl. According to the open-loop control signal, the band selector 960 controls the VCO 940 to switch between the bands of the VCO 940. Preferably, based on a plurality of frequency difference signals, the band selector 960 selects a preferred band of the VCO 940, such as a band having the smallest frequency difference.
When the PLL is closed, a closed-loop control signal is asserted. For having already selected a frequency band, the VCO 940 generates the voltage controlled output signal according to the selected frequency band and the control voltage Vctrl from the loop filter 930. In this embodiment, the control voltage Vctrl is unlikely to exceed the linear control range since the ambient temperature changes are taken into consideration by the open-loop control voltage generator 932. Therefore, chances that the PLL become unlocked are lowered to significantly increase reliability of the PLL.
According to the present invention, a PLL comprises a loop filter, for outputting a first control voltage; an open-loop control voltage generator, for outputting a second control voltage associated with an ambient temperature; a selector, e.g., a multiplexer or a switch, for selecting either the first control voltage or the second control voltage as a third control voltage according to an open-loop control signal; a VCO, for generating a voltage controlled output signal according to the third control voltage; a frequency divider, for receiving the voltage controlled output signal and dividing the same to generate a frequency divided signal; a phase frequency detector, for generating a phase difference signal according to the frequency divided signal and a reference signal; a charge pump, for generating an output current to the loop filter according to the phase difference signal to generate the first control voltage; a frequency comparator, for generating a frequency difference signal according to the frequency divided signal and the reference signal; and a band selector, for switching between a plurality of frequency bands of the VCO when an open-loop control signal is asserted to further select an operating band from the bands of the VCO according to a plurality of frequency difference signals outputted by the frequency comparator, and for controlling the VCO when the open-loop control signal is deasserted to generate the voltage controlled output signal according to the operating band and the third control voltage. For example, the open-loop control voltage generator comprises a temperature detecting circuit for providing a temperature signal to associate the second control voltage with the temperature signal. Alternatively, the temperature detecting circuit is a PTAT current generating circuit, and the temperature signal is a current signal generated by the PTAT current generating circuit. Alternatively, the temperature detecting circuit is a PTAT current generating circuit, and the temperature signal is generated by flowing a PTAT current through a resistor. While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not to be limited to the above embodiments. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
---|---|---|---|
097147460 | Dec 2008 | TW | national |