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 ZXF36L01
VARIABLE Q FILTER
DESCRIPTION APPLICATIONS
The ZXF36L01 is a versatile analog high Q bandpass Many filter applications including: filter. The device contains two sections: * Audio bandpass and notch 1 Variable Q bandpass filter. * Micro controlled frequency 2 Mixer block. * Adaptive filtering The basic filter section requires 2 resistors and 2 * Sonar and Ultrasonic Systems capacitors to set the centre frequency. The filter * Instrumentation operates up to a frequency of 150kHz. Two external resistors control filter Q Factor. The Q can be varied up to 50. FEATURES AND BENEFITS The mixer is included to extend the frequency range up * to 700kHz and to permit the centre frequency to be * tuned. The local oscillator can be any waveform, * making microprocessor control convenient. * * Centre Frequency up to 700kHz Tuneable centre frequency Variable Q Low power Standby mode for improved battery life
ORDERING INFORMATION
PART NUMBER ZXF36L01W24 PART NUMBER ZXF36L01W24TC PACKAGE SO24W CONTAINER Reel 13" 330mm Tube PART MARK ZXF36L01 INCREMENT 1000 31
SYSTEM DIAGRAM
ZXF36L01W24
ISSUE 3 - JANUARY 2002 1
ZXF36L01
ABSOLUTE MAXIMUM RATINGS
Voltage on any pin Operating temperature range Storage temperature 7.0V (relative to Vss) 0 to 70C (de-rated for -40 to 85C) -55 to 125C
ELECTRICAL CHARACTERISTICS Test Coditions: Temperature =25C, VDD = 5.00V, VSS = 0.00V
GENERAL CHARACTERISTICS Parameter
Operating current Shutdown current IIH (PD) IIL (PD)
Conditions
PD= V DD PD = V SS VIH =5V (WRT V SS ) VIL =0V (WRT V SS )
Min.
2.2
Typical
3.4 160
Max.
4.5 300 1.0
Units
mA A A A
-1.0
FILTER CHARACTERISTICS
Max. operating frequency Q usable range Centre frequency temperature coefficient Average Q temperature coefficient Voltage noise Input impedance Max. output swing Output sink current Output source current Output load 10 k Q=30, fo = 1kHz Note 1 Q=30, fo = 1kHz Note 2 1 - 100 kHz 30 1.6 150 150 0.5 10 0.1 20 50 150 50 ppm/C % /C nV/ Hz k V pk-pk A A kHz
MIXER CHARACTERISTICS
Max. operating frequency Maximum signal input Maximum Local Oscillator input Minimum Local Oscillator input Local Oscillator input Impedance 700 300 100 5 60 kHz mV pk-pk mV pk-pk mV pk-pk
NOTE 1 Centre frequency temperature coefficient is dominated by the external R & C components. On chip drift is negligable. Note 2 Average Q temperature coefficient is dominated by the external R components.
ISSUE 3 - JANUARY 2002 2
ZXF36L01
TYPICAL ELECTRICAL CHARACTERISTICS Test Coditions:VDD = 5.00V, VSS = 0.00V
Typical Gain at Fo V Q Factor
50
(Fo = 140 KHz)
Gain at fo describes the peak gain of the notch pass filter. This gain is defined by the value of Q Factor.
45
40
Gain(dB)
35
30
25
20 10 20 30 40 50 60 70 80 90 100
Q Factor
Q Factor V Frequency
32 30 28 26
The curve shows Q Factor over frequency for a fixed loop gain (Rf/Ri).
QFactor
24 22 20 18 16 0 20 40 60 80 100 120 140 160 180 200
Frequency (kHz)
Components used: 1/8 watt metal film resistors (+/- 50 ppm). Ceramic capacitors (+/- 50 ppm).
ISSUE 3 - JANUARY 2002 3
ZXF36L01
DESCRIPTION OF PIN FUNCTIONS
VDD VSS BG BI PD FI1,Fl2 FO LO MXI MXO C1, RC1 R2, RC2 GP1,2,3 Positive supply connection (5 volts). Both pins to be connected. To be decoupled with a 100nF capacitor to VSS. Negative supply connection; system ground (0 volts). Both pins to be connected. Bias Generator output. To be decoupled with a 100nF capacitor to VSS. Bias inputs for internal circuitry, both to be connected to BG. (or external supply referenced to VSS) Active low. This feature can be used to reduce power consumption for applications that have a standby mode. Filter input, FI1 or FI2 depending on filter configuration. Filter output for all configurations. Local Oscillator signal input. Mixer signal input. Mixer signal output. Phase advance network nodes. Values R and C set centre frequency, fo. Phase retard network nodes. Values R and C set centre frequency, fo. Loop gain programming nodes.
CONNECTION DIAGRAM
1 V SS FI1 C1 RC1 R2 BI MXO RC2 GP1 GP2 GP3 V SS V DD FI2 FO MXI LO BI BG N/C N/C N/C PD V DD
ISSUE 3 - JANUARY 2002 4
ZXF36L01
FILTER CONFIGURATIONS AND RESPONSES Notch Filter
5V 1
C
V SS FI1 C1 RC1 R2 BI MXO RC2 GP1 GP2 GP3 V SS
V DD FI2 FO MXI LO BI BG N/C N/C N/C PD V DD
24
100nF Input Signal Output Signal
R R
C
R=10k C=100nF Rf=19.5k Ri=10k
Ri
100nF
5V 100nF
Rf
Filter AC Performance
Notch Filter Gain Response
5 0 -5 Gain (dB) -10 -15 -20 -25 -30 -35 10 100 Frequency (Hz) 1000 10000
1 2RC Q (Rf / Ri )
fo =
Where R, Ri and Rf 10k and C 50 pF See "Designing for a Value of Q" for more details.
Notch Filter Phase Response
270 240
Phase (Degrees)
T y p i ca l r e sp o n se s f o r t h e ci r cu i t w i t h component values shown in circuit diagram.
210 180 150 120 90 10 100 1000 Frequency (Hz) 10000
ISSUE 3 - JANUARY 2002 5
ZXF36L01
FILTER CONFIGURATIONS AND RESPONSES (continued)
5V
100nF Input Signal
C
1
V SS FI1 C1 RC1 R2 BI MXO RC2 GP1 GP2 GP3 V SS
V DD FI2 FO MXI LO BI BG N/C N/C N/C PD V DD
24 Output Signal
R R C
100nF
Ri
R=10k C=100nF Rf=19.5k Ri=10k
5V 100nF
Rf
Filter AC Performance
Notch Pass Filter Gain Response
30 25 20 Gain (dB) 15 10 5 0 -5 10 100 Frequency (Hz) 1000 10000
1 2RC Q (Rf / Ri)
fo =
Where R, Ri and Rf 10k and C 50 pF See "Designing for a Value of Q" for more details.
Notch Pass Filter Phase Response
-90 -120
T y p i ca l r e sp o n se s f o r t h e ci r cu i t w i t h component values shown in circuit diagram.
Phase (Degrees)
-150 -180 -210 -240 -270 10 100 Frequency (Hz) 1000 10000
ISSUE 3 - JANUARY 2002 6
ZXF36L01
FILTER CONFIGURATIONS AND RESPONSES (continued) Notch Filter (with attenuating skirts)
5V
100nF Input Signal
C
1
V SS FI1 C1 RC1 R2 BI MXO RC2 GP1 GP2 GP3 V SS
V DD FI2 FO MXI LO BI BG N/C N/C N/C PD V DD
24 Output Signal
R R C
100nF
Ri
R=10k C=100nF Rf=19.5k Ri=10k
5V 100nF
Rf
Filter AC Performance
Notch Pass Filter 2 Gain Response
30 20 10 Gain (dB) 0 -10 -20 -30 1 10 100 Frequency (Hz) 1000 10000
1 2RC Q (Rf / Ri)
fo =
Where R, Ri and Rf 10k and C 50 pF See "Designing for a Value of Q" for more details. The skirt `roll off' away from the peak is -20dB/decade regardless of chosen Q.
Notch Pass Filter 2 Phase Response
120 90 Phase (Degrees) 60 30 0 -30 -60 -90 -120 1 10 100 Frequency (Hz) 1000 10000
T y p i ca l r e sp o n se s f o r t h e ci r cu i t w i t h component values shown in circuit diagram.
ISSUE 3 - JANUARY 2002 7
ZXF36L01
DESIGNING FOR A VALUE OF Q
As mentioned on the configuration pages, there is a proportional, but non-linear relationship between the ratio of Rf and Ri, and Q. These resistors define the gain of an inverting amplifier that determines the peak value gain and therefore the Q of the filter,Q is defined as:
10k Pin 9
2k
22k Pin 11
Pin 10
Suggestion for gain setting component values. Below are some typical values of gain required for several example conditions: Example1 fo = 48kHz, Q=60, Example2 fo = 140kHz, Q=15, R = 10k, C = 100pF Rf/Ri = 37k / 18k => 2.055 R = 10k, C = 320pF Rf/Ri = 36.6k / 18 k => 2.033
Q=
fO -3dB Bandwidth
This value of required gain is critical. As the maximum value of Q is approached, too much gain will cause the filter to oscillate at the centre frequency, fo. A small reduction of gain will cause the value of Q to fall significantly. Therefore, for high values of Q or tight tolerances of lower values of Q, the resistor ratio must be trimmed as shown. Frequency dependant effects must be accounted for in determining the appropriate gain. As the frequency increases because of internal phase shift effects the effective circuit gain reduces and thus Q Factor reduces. The frequency effect is not a problem for circuits where the fo remains constant, as the phase shifts are accounted for permanently. For designs where Q is high and fo is to be `swept', care must be taken that a gain appropriate at the highest frequency does not cause oscillation at the lowest.
It can be seen from these examples that the higher Q example actually has a lower inverting amplifier gain. As mentioned before, the frequency will affect the value of gain. The Q Factor v Frequency graph illustrates this effect. These examples show that the gain required is nominally 2. For the specified range of Q: 0.5 to 50 (values up to 250 are obtainable), the gain values vary from 1.9 to 2.5 correspondingly. Due to internal gain errors, when the absolute value of Q is increased, the device to device variation in Q will also increase.
This diagram shows the exponential relationship between gain and Q Factor. (fo = 140 kHz)
ISSUE 3 - JANUARY 2002 8
ZXF36L01
FILTERING HIGHER FREQUENCIES USING THE MIXER
Frequencies above 150 kHz cannot be filtered directly; the mixer enables the notch pass filter to function up to 700kHz. The signal to be filtered is mixed with another frequency (local oscillator), chosen so that the difference (intermediate) frequency equals the filter's centre frequency, fo. The local oscillator signal waveform can be of any shape (sine, square, etc.) but must be approximately 50% duty cycle. Example Input frequency = 300 kHz, Local Oscillator (LO) frequency = 250 kHz, Output (IF) Frequency = 50 kHz. If the bandwidth of the 50 kHz filter were 1 kHz, the filter's Q factor would be: 50/1 = 50. The bandwidth of the filter is still 1 kHz when 300 kHz is applied to the mixer's input, but now the Q factor is: 300/1 = 300. The mixer provides a Q factor improvement equal to the ratio of the input frequency and the intermediate frequency. The effective centre frequency can also be externally controlled by changing the LO frequency. This allows frequency tuning, trimming or sweeping while employing fixed resistors and capacitors for the filter. As the LO signal can be a square wave, this allows `fo' to be controlled using a microcontroller or microprocessor.
5V 1 VR Atten
C
MIXER CONFIGURATION WITH NOTCH PASS FILTER (with attenuating skirts) The mixer can only be used with this filter configuration, as the other types have 0dB stop bands. The mixer output `MXO' becomes the input of the filter. As the gain of the notch filter changes with Q, the output of the mixer must be attenuated by some factor (VRAtten). This will prevent the filter from being overdriven and allows the user to set the required output level. Note: As the local oscillator input, LO has a low input impedance (60 ), it will often be necessary to increase it for driving circuitry. As the input voltage required is low (around 5 mV pk-pk min.), a series resistor `RMixer' can be inserted. A value of 1 k per 100mV (pk) oscillator signal input will be suitable.
V SS FI1 C1 RC1 R2 BI MXO RC2 GP1 GP2 GP3 V SS
V DD FI2 FO MXI LO BI BG N/C N/C N/C PD V DD
24 Output Signal Input Signal Oscillator Input (LO)
100nF 100nF R Mixer 100nF
R R C
Ri
5V 100nF
Rf
ISSUE 3 - JANUARY 2002 9
ZXF36L01
Application Note
An assembled evaluation PCB is available from Zetex Plc, part code: ZXF36L01-EVB. It provides a fast and easy way of testing the filter configurations mentioned in this datasheet. This board is configured for 10kHz operation.
J1 - J5 1 C1 100n INPUT INPUT GND 2 3 4 5 C R 1.5nF 10k VR2 100k ZXF36L01 1 VSS 2 FI1 3 C1 4 RC1 5 R2 R C 10k 1.5nF 6 BI 7 MXO 8 RC2 RI 10k VR1 2k RF 22k 9 GP1 10 GP2 11 GP3 12 VSS V DD 24 FI2 23 FO 22 MXI 21 LO 20 BI 19 BG 18 NC 17 NC 16 NC 15 PD 14 V DD 13 C4 100n 2 J6 3 POWER GND C3 100n 1 C5 100n R MIX 1k OUTPUT OUTPUT GND OSC. INPUT OSC. GND C2 100n +5V
JUMPER SETTINGS
1 2
NOTCH FILTER
3 4 5 1
INPUT IS FI2 FEEDBACK FO TO FI1
NOTCH PASS FILTER WITH 0dB STOPBAND
2 3 4 5 1
INPUT IS FI1 FEEDBACK FI2 TO FI1
NOTCH PASS FILTER 2 2 WITH ATTENUATING 3 SKIRTS 4
5 1
INPUT IS FI1 NO EXTERNAL FEEDBACK
MIXER CONFIGURATION WITH NOTCH PASS FILTER 2
2 3 4 5 1
INPUT IS MXI MIXED SIGNAL MXO TO FI1 NO EXTERNAL FEEDBACK
NORMAL OPERATION
2 J6 3 1
POWER DOWN
2 J6 3
ISSUE 3 - JANUARY 2002 10
ZXF36L01
Evaluation
An evaluation board (ZXF36L01-EVB) is available to assist with in-system or stand-alone performance evaluation. The board can be set, by simple jumper links, to perform any of the filter characteristic responses. The mixer can be selected in conjunction with the notch pass filter 2 functions. Evaluation boards can be purchased from our catalogue distributors. Digi-Key North America (www.digikey.com) Tel:1-800344-4539 Europe - Farnell (www.farnell.com) Tel:44-113-263-6311
ISSUE 3 - JANUARY 2002 11
ZXF36L01
PACKAGE DIMENSION
DIM Millimetres Min A B C D E F G H I J K L R a 15.20 1.27 0.66 0.36 7.40 2.44 0.10 0 0.23 10.11 0 0.51 0.63 7BSC Max 15.40 - - 0.46 7.60 2.64 0.30 7 0.28 10.51 8 1.01 0.89 Inches Min 0.598 0.05 0.026 0.014 0.291 0.096 0.004 0 0.009 0.398 0 0.02 0.025 7BSC Max 0.606 - - 0.018 0.299 0.104 0.012 7 0.011 0.414 8 0.04 0.035
PACKAGE OUTLINE
SOIC 24 LEAD
(c) Zetex plc 2001
Zetex plc Fields New Road Chadderton Oldham, OL9 8NP United Kingdom Telephone (44) 161 622 4422 Fax: (44) 161 622 4420 Zetex GmbH Streitfeldstrae 19 D-81673 Munchen Germany Telefon: (49) 89 45 49 49 0 Fax: (49) 89 45 49 49 49 Zetex Inc 700 Veterans Memorial Hwy Hauppauge, NY11788 USA Telephone: (631) 360 2222 Fax: (631) 360 8222 Zetex (Asia) Ltd 3701-04 Metroplaza, Tower 1 Hing Fong Road Kwai Fong Hong Kong Telephone: (852) 26100 611 Fax: (852) 24250 494
These offices are supported by agents and distributors in major countries world-wide. This publication is issued to provide outline information only which (unless agreed by the Company in writing) may not be used, applied or reproduced for any purpose or form part of any order or contract or be regarded as a representation relating to the products or services concerned. The Company reserves the right to alter without notice the specification, design, price or conditions of supply of any product or service. For the latest product information, log on to
www.zetex.com
ISSUE 3 - JANUARY 2002 12


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