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  www.rfm.com e-mail: info@rfm.com page 1 of 2 ? 2009-2011 by rf monolithics, inc. RO3053A-1 6/28/11 electrical characteristics characteristic sym notes minimum typical maximum units center frequency, +25 c absolute frequency f c 2,3,4,5 309.950 310.050 mhz tolerance from 310.0 mhz ? f c 50 khz insertion loss il 2,5,6 1.2 1.7 db quality factor unloaded q q u 5,6,7 15500 50 ? loaded q q l 1970 temperature stability turnover temperature t o 6,7,8 10 25 40 c turnover frequency f o f c frequency temperature coefficient ftc 0.032 ppm/c 2 frequency aging absolute value during the first year |f a | 1 10 ppm/yr dc insulation resistance between any two terminals 5 1.0 m ? rf equivalent rlc model motional resistance r m 5, 7, 9 14.6 ? motional inductance l m 115.7 h motional capacitance c m 2.3 ff shunt static capacitance c o 5, 6, 9 2.6 pf test fixture shunt inductance l test 2, 7 102 nh lid symbolization (in addition to lot and/or date codes) 810 // ywws ? ideal for 310.0 mhz transmitters  very low series resistance  quartz stability  surface-mount ceramic case  complies with directive 2002/95/ec (rohs) the RO3053A-1 is a true one-port, surface-acoustic-wave (saw) resonator in a surface-mount, ceramic case. it provides reliable, fundamental-mode, quartz frequency stabilization of fixed-frequency transmitters operating at 310.0 mhz. absolute maximum ratings rating value units cw rf power dissipation (see typical test circuit) +0 dbm dc voltage between terminals (observe esd precautions) 30 vdc case temperature -40 to +85 c soldering temperature (10 seconds / 5 cycles maximum) 260 c 310.0 mhz saw resonator RO3053A-1 caution: electrostatic sensitive device. observe precautions for handling. notes: 1. frequency aging is the change in f c with time and is specified at +65 c or less. aging may exceed the specification for prolonged temperatures above +65 c. typically, aging is greatest the first year after manufacture, decreasing in subsequent years. 2. the center frequency, f c , is measured at the minimum insertion loss point, il min , with the resonator in the 50 ? test system (vswr 1.2:1). the shunt inductance, l test , is tuned for parallel resonance with c o at f c . typically, f oscillator or f transmitter is approximately equal to the resonator f c . 3. one or more of the following united states patents apply: 4,454,488 and 4,616,197. 4. typically, equipment utilizing this device requires emissions testing and government approval, which is the responsibility of the equipment manufacturer. 5. unless noted otherwise, case temperature t c =+25 2 c. 6. the design, manufacturing process, and specifications of this device are subject to change without notice. 7. derived mathematically from one or more of the following directly measured parameters: f c , il, 3 db bandwidth, f c versus t c , and c o . 8. turnover temperature, t o , is the temperature of maximum (or turnover) frequency, f o . the nominal frequency at any case temperature, t c , may be calculated from: f = f o [1 - ftc (t o -t c ) 2 ]. typically oscillator t o is approximately equal to the specified resonator t o . 9. this equivalent rlc model approximates resonator performance near the resonant frequency and is provided for reference only. the capacitance c o is the static (nonmotional) capacitance between the two terminals measured at low frequency (10 mhz) with a capacitance meter. the measurement includes parasitic capacitance with "nc? pads unconnected. case parasitic capacitance is approximately 0.05 pf. transducer parallel capacitance can by calculated as: c p c o -0.05pf. 10. tape and reel standard per ansi / eia 481. sm5035-4 pb
www.rfm.com e-mail: info@rfm.com page 2 of 2 ? 2009-2011 by rf monolithics, inc. RO3053A-1 6/28/11 electrical connections the saw resonator is bidirectional and may be installed with either orientation. the two terminals are interchangeable and unnumbered. the callout nc indicates no internal connection. the nc pads assist with mechanical positioning and stability. external grounding of the nc pads is recommended to help reduce parasitic capacitance in the circuit. typical test circuit the test circuit inductor, l test , is tuned to resonate with the static capacitance, c o , at f c . typical application circuits equivalent model temperature characteristics the curve shown on the right accounts for resonator contribution only and does not include lc component temperature contributions. case terminal terminal c a s e g r o u n d c a s e g r o u n d electrical test from 50 ? network analyzer to 50 ? network analyzer 50 ? source at f c reflected incident p p low-loss matching network to 50 ? terminal terminal nc nc power test cw rf power dissipation = incident - reflected p p c1 c2 l1 (antenna) +9vdc 47 rf bypass modulation input typical low-power transmitter application ro3xxxa bottom view 470 200k ? c1 c2 l1 output +vdc rf bypass +vdc typical local oscillator applications ro3xxxa bottom view dimensions millimeters inches min nom max min nom max a 4.87 5.00 5.13 0.191 0.196 0.201 b 3.37 3.50 3.63 0.132 0.137 0.142 c 1.45 1.53 1.60 0.057 0.060 0.062 d 1.35 1.43 1.50 0.040 0.057 0.059 e 0.67 0.80 0.93 0.026 0.031 0.036 f 0.37 0.50 0.63 0.014 0.019 0.024 g 1.07 1.20 1.33 0.042 0.047 0.052 h - 1.04 - - 0.041 - i - 1.46 - - 0.058 - j - 0.50 - - 0.019 - k - 1.05 - - 0.041 - l - 1.44 - - 0.057 - m - 0.71 - - 0.028 - 0.05 pf* 0.05 pf c p c o + = *case parasitics c p rm lm c m -80 -60 -40 -20 0 +20 +40 +60 0 -50 - 100 - 150 +80 - 200 0 -50 -100 -150 -200 f c = f o , t c = t o ? t = t c - t o ( c ) (f-f o o ) / f (ppm)        
 
  
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