D66 & DP66 Series. 32 Pin DIP 6-Pole Filters. 1.0 Hz to 100 khz Fixed Frequency

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1 D66 & DP66 Series Hz to 00 khz Fixed Frequency 32 Pin DIP Filters Description The D66 and DP66 Series of small 6-pole fixedfrequency, precision active filters provide high performance linear active filtering in a compact 32- pin DIP package, with a broad range of corner frequencies and a choice of transfer functions. Individual D66 filters can serve in low-pass or highpass applications (DP66, low-pass only) or be combined to create custom band-pass or bandreject filters. These fully self-contained units require no external components or adjustments. Each model comes factory tuned to a user-specified corner frequency between Hz and 00 khz (DP66, Hz to 5 khz) and operate with low total harmonic distortion over a wide dynamic input voltage range from non-critical +/-5V to +/-8V power supplies. Features/Benefits: Low harmonic distortion and wide signal-to-noise ratio to 6 bit resolution. Compact.8"L x 0.8"W x 0.3"H minimizes board space requirements. Plug-in ready-to-use, reducing engineering design and manufacturing cycle time. Factory tuned, no external clocks or adjustments needed Broad range of transfer characteristics and corner frequencies to meet a wide range of applications. Applications Anti-alias filtering Data acquisition systems Communication systems and electronics Medical electronics equipment and research Aerospace, navigation and sonar applications Sound and vibration testing Acoustic and vibration analysis and control Noise elimination Signal reconstruction Available Low-Pass Models:...Page D66L6B 6-pole Butterworth...2 DP66L6B 6-pole Butterworth (Low Power)...2 D66L6L 6-pole Bessel...2 DP66L6L 6-pole Bessel (Low Power)...2 Available High-Pass Models:... D66H8B 6-pole Butterworth...2 General Specifications:... Pin-out/package data & ordering information sales@freqdev.com Web Address:

2 D66 & DP66 Series Fixed Frequency Low-Pass and High-Pass Filters Model D66L6B & DP66L6B D66L6L & DP66L6L Model D66H6B Product Specifications Low-Pass Low-Pass High-pass Transfer Function, Butterworth, Bessel Transfer Function, Butterworth Size.8 x 0.8 x x 0.8 x 0.3 Size.8 x 0.8 x 0.3 Range fc Range fc D66 Hz to 00 khz Hz to 00 khz D66 Hz to 00 khz DP66 Hz to 5 khz Hz to 5 khz DP66 Not Available Theoretical Transfer Appendix A Appendix A Theoretical Transfer Appendix A Characteristics Page 8 Page 3 Characteristics Page 28 Passband Ripple 0.0 db 0.0 db Passband Ripple 0.0 db (theoretical) (theoretical) DC Voltage Gain 0 ± 0. db max. 0 ± 0. db max. Voltage Gain 0 ± 0. db to 00 khz (non-inverting) 0 ± 0.05 db typ. 0 ± 0.05 db typ. (non-inverting) 0 ± 0.05 db to 20 khz Stopband Stopband Attenuation Rate 36 db/octave 36 db/octave Attenuation Rate 36 db min. Power Bandwidth Power Bandwidth (-6dB) MHz 20 khz Cutoff Frequency fc ± % max. fc ± % max. Cutoff Frequency fc ± % max. Stability ± 0.0% / C ± 0.0% / C Stability ± 0.0% / C Amplitude -3dB -3dB Amplitude -3dB Phase Phase -270 Filter Attenuation 0.29 db 0.80 fc.89 db 0.80 fc Filter Attenuation 80.0 db.2 fc (theoretical) 3.0 db 0 fc 3.0 db 0 fc (theoretical) 60.0 db.32 fc 60.0 db 3.6 fc 60.0 db 5.4 fc 3.0 db 0 fc 80.0 db 4.64 fc 80.0 db 7.99 fc 0.00 db 2.5 fc Phase Match fc ± 2 max. 0 - fc ± 2 max. Phase Match fc - 00 khz ± 3 max. ± typ. ± typ. ±.5 typ. 0.8 fc - fc ± 3 max. ±.5 typ. Amplitude Accuracy fc ± 0.2 db max. 0 - fc ± 0.2 db max. Amplitude Accuracy -.25 fc ± 0.3 db max. (theoretical) ± 0. db typ. ± 0. db typ. (theoretical) ± 0.5 db typ. 0.8 fc - fc± 0.3 db max..25fc-00khz ± 0.2 db max. ± 0.5 db typ. ± 0. db typ. Total Harmonic Total Harmonic khz khz D66 <-00 db typ. <-00 db typ. D66 <-88 db typ. DP66 <-80 db typ. <-80 db typ. Wide Band Noise 200 mvrms typ. 200 mvrms typ. Wide Band Noise 400 mvrms typ. (5 Hz - 2 MHz) (5 Hz - 2 MHz) Narrow Band Noise 50 mvrms typ. 50 mvrms typ. Narrow Band Noise 00 mvrms typ. (20 Hz - 00 khz) (20 Hz - 00 khz) Filter Mounting Filter Mounting Assembly FMA-0A FMA-0A Assembly FMA-0A. Unit to unit match for the same transfer function, set to the same frequency and operating configuration, and from the same manufacturing lot. 2 sales@freqdev.com Web Address:

3 D66 & DP66 Series Specification (25 C and Vs ± 5 Vdc) Pin-Out and Package Data Ordering Information Analog Input Characteristics Impedance Voltage Range Max. Safe Voltage 0 kw min. ± 0 Vpeak ± Vs 0.80 Side View dia. All dimensions are in inches All case dimensions ± 0.0" Analog Output Characteristics Impedance(Closed Loop) W typ. 0 W max. Linear Operating Range ± 0 V Maximum Current 2 ±2 ma Offset Voltage 3 2 mv typ. 20 mv max. Offset Temp. Coeff. 50 mv / C OUT.80 Front View VS -VSOS 4 Bottom View 0.5 (min) Power Supply (±V) Rated Voltage Operating Range Maximum Safe Voltage Quiescent Current D66 ± 5 Vdc ± 5 to ± 8 Vdc ± 8 Vdc ± 9 ma typ. ± 30 ma max. Quiescent Current DP66 ± 7.0 ma typ. ± 8.0 ma max. Temperature Operating - 0 to + 70 C Storage - 25 to + 85 C Ordering Information Filter Type L - Low Pass H - High Pass GND IN Filter Mounting Assembly-See FMA-0A Transfer Function B - Butterworth L - Bessel DC Offset Adjustment ± Vs D66L6B-849 Hz 20 k W (Cermet) - Vs Do not connect if trim is not required. OS Power Level - 3 db Corner Frequency 5 D Standard Power e.g., 849 Hz DP Low Power 2.50 khz Notes: 33.3 khz. Input and output signal voltage referenced to supply common. 2. Output is short circuit protected to common. DO NOT CONNECT TO ±Vs. 3. Adjustable to zero. 4. Units operate with or with out offset pin connected. 5. How to Specify Corner Frequency: Corner frequencies are specified by attaching a three digit frequency designator to the basic model number. Corner frequencies can range from 0 Hz to 00 khz. We hope the information given here will be helpful. The information is based on data and our best knowledge, and we consider the information to be true and accurate. Please read all statements, recommendations or suggestions herein in conjunction with our conditions of sale which apply to all goods supplied by us. We assume no responsibility for the use of these statements, recommendations or suggestions, nor do we intend them as a recommendation for any use which would infringe any patent or copyright. IN-00D sales@freqdev.com Web Address:

4 Low-Pass Appendix A Bessel Theoretical Transfer Characteristics f/fc Amp Phase Delay (Hz) (db) (deg) (sec) Normalized Group Delay: The above delay data is normalized to a corner frequency of Hz.The actual delay is the normalized delay divided by the actual corner frequency (fc). Normalized Delay Actual Delay = Actual Corner Frequency (fc) in Hz Normalized Frequency(f/fc) 3 sales@freqdev.com Web Address: Amp (db) Delay (sec) Step Response (V/V) Frequency Response Delay (Normalized) Step Response

5 Low-Pass Appendix A Butterworth Theoretical Transfer Characteristics f/fc Amp Phase Delay (Hz) (db) (deg) (sec) Normalized Group Delay: The above delay data is normalized to a corner frequency of Hz.The actual delay is the normalized delay divided by the actual corner frequency (fc). Normalized Delay Actual Delay = Actual Corner Frequency (fc) in Hz Normalized Frequency(f/fc) 8 sales@freqdev.com Web Address: Amp (db) Delay (sec) Step Response (V/V) Frequency Response Delay (Normalized) Step Response

6 High-Pass Appendix A Theoretical Transfer Characteristics f/fc Amp Phase Delay (Hz) (db) (deg) (sec) Amp (db) Butterworth Frequency Response Normalized Frequency(f/fc).Normalized Group Delay: The above delay data is normalized to a corner frequency of Hz.The actual delay is the normalized delay divided by the actual corner frequency (fc). Normalized Delay Actual Delay = Actual Corner Frequency (fc) in Hz 28 sales@freqdev.com Web Address:

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