Solid Tantalum Chip Capacitors TANTAMOUNT, Commercial, Surface Mount

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1 Solid Tantalum hip apacitors TNTMOUNT, ommercial, Surface Mount Model 293 RFORMN/LTRIL HRTRISTIS Operating Temperature: - 55 to + 5. (to with voltage derating.) apacitance Range: 0.µF to 0µF. apacitance Tolerance: ± 20%, ± % standard. (20% only on ) ompliant Terminations 0% Surge urrent Tested ( & ase odes). Voltage Rating: WV to 50 WV. ORRING INFORMTION FTURS Molded case available in six case codes. ompatible with "High Volume" automatic pick and place equipment. Optical character recognition qualified. Meets I Specification Q30001/US0001 and I 535. OTHR SIFTIONS IQ X Q32/G X T /FR001 T T TY 793X 793 T3 T 7 ITN This is expressed in picofarads. The first two digits are the significant figures. The third is the number of zeros to follow. X9 ITN TOLRN X0 = ± 20% X9 = ± % X5 = ± 5% (Special Order) IMNSIONS in inches [millimeters] 0 VOLTG + 5 This is expressed in volts. To complete the threedigit block, zeros precede the voltage rating. decimal point is indicated by an "R" (R3 =.3 volts). S O See Ratings and ase ode Tables. 2 TRMINTION 2 = Solderable coating. Standard. = Gold lated W RL SIZ N KGING T = 7" [17mm] reel,* W = 13" [0mm] reel* *cathode nearest sprocket hole. Note: referred Tolerance and reel sizes are in bold. We reserve the right to supply higher voltage ratings and tighter capacitance tolerance capacitors in the same case size. Voltage substitutions will be marked with the higher voltage rating. L TH Min. H W TW S O I SIZ H 2012 L.12 ±.00 [3.2 ±.20].13 ±.00 [ ±.20].23 ±.012 [.0 ±.30].27 ±.012 [7.3 ±.30].27 ±.012 [7.3 ±.30].079 ±.0 [ ±.25] W.03 ±.00 [1. ±.20].1 ±.00 [2. ±.20].12 ±.012 [3.2 ±.30].170 ±.012 [.3 ±.30].170 ±.012 [.3 ± ±.00 [1.35 ±.20] H.03 ±.00 [1. ±.20].075 ±.00 [ ±.20].09 ±.012 [ ±.30].1 ±.012 [2. ±.30]. ±.012 [.0 ±.30].053 ±.00 [1.35 ±.20].031 ±.012 [.0 ±.30].031 ±.012 [.0 ±.30].051 ±.012 [1.3 ±.30].051 ±.012 [1.3 ±.30].051 ±.012 [1.3 ±.30].020 ±.00 [2 ±.20] TW.07 ±.00 [1.2 ±.].07 ±.00 [ ±.].07 ±.00 [ ±.].095 ±.00 [2. ±.].095 ±.00 [2. ±.].07 ±.00 [1.2 ±.] TH (Min.).02 [.70].02 [.70].039 [].039 [].039 [].012 [0.3] ocument Number 0002 Revision 1-Feb-02

2 Model 293 RTINGS N S OS V.3 V V 1 V 20 V 25 V 35 V 50 V µf // / // xt. / */ / / */ */ / / * / / // / / xt. / / // / / */ / */ */ */ / / *reliminary values, contact factory for availability. xt. / */ / / */* */ / */ * / / / / xt. */ / */ / */ / xt. / * / / xt. * / xt. * / / xt. /* / ONSTRUTION N MRKING ONSTRUTION athode Termination ( - ) Tantalum apacitor lement olarity Stripe (+) poxy ase node Weld ositive Termination MRKING apacitance ode, pf Vishay Sprague Logo ase olarity and X V Voltage ode X Voltage apacitance apacitance olarity and,,, ase olarity and XX ate ode Volts ode G.3 J 1 20 Voltage Vishay Sprague Logo Marking: apacitor marking will include an anode (+) polarity band, capacitance in microfarads and the voltage rating of + 5. '' ase capacitors use a letter code for the voltage and I capacitance code. The Sprague trademark may be included if space permits. Units rated at.3 V shall be marked V. manufacturing date code is marked on all case codes. all the factory for further explanation. 2 1 ocument Number 0002 Revision 1-Feb-02

3 Model 293 STNR/XTN RTINGS ITN (µf) * * 0* S O Max kHz (Ohms) Max. Max. F Hz RT NUMR (µ) (%) + 5, SURG = 5.2 V , SURG = 3. V 2935X_002_ X_002_ X_002_ X_002_ X_002_ 293X_002_ N/ 293X_002_ X_002_ X_002_ 0. N/ 293X_002_ 293X_002_ 293X_002_ X_002_ N/ 293X_002_ X_002_ X_002_ X_002_ 2937X_002_ X_002_ X_002_ X_002_ X_002_ X_002_ X_002_ X_002_ X_002_.0 0. * 2937X_002_*.* * * 2937X_002_ X_002_. 2937X_002_ X_002_ X_002_ * 29377X_002_* 1.* * * * 2937X_002_* 27.2* 12* *.3 + 5, SURG = V , SURG = 5 V Max. RIL 0kHz Irms (mps) 2935X_R32_ X_R32_ X_R32_ N/ X_R32_ X_R32_ N/ X_R32_. 2935X_R32_ X_R32_ N/ X_R32_ X_R32_ X_R32_ 0. N/ X_R32_ X_R32_ X_R32_ X_R32_ X_R32_ X_R32_ X_R32_ 293X_R32_ X_R32_ X_R32_ X_R32_ * * 293X_R32_*.1* * 1.* 0.* 293X_R32_ X_R32_ X_R32_ X_R32_ * * 2937X_R32_* 9.0* * * 0.0* X_R32_ X_R32_ X_R32_ X_R32_ X_R32_ X_R32_ * * 29377X_R32_* * * * 7* *reliminary values, contact factory for availability. For % tolerance, specify "9"; for 20% tolerance, change to "0". xtended Range ratings in bold print * * 7* ocument Number 0002 Revision 1-Feb-02 17

4 Model 293 STNR/XTN RTINGS ITN (µf) * 0* * 0 0* * * Max. Max. F Max. SR Hz 0kHz O RT NUMR (µ) (%) (Ohms) + 5, SURG = 13 V , SURG = V 2935X_02_ N/ 2935X_02_ X_02_ X_02_ N/ 2935X_02_ X_02_ N/ 29375X_02_ 29375X_02_ X_02_ N/ 2935X_02_ X_02_ 293X_02_ X_02_ 293X_02_ X_02_ 293X_02_ 293X_02_ X_02_ 293X_02_ 293X_02_ 293X_02_ X_02_ X_02_ X_02_ X_02_.7 * 293X_02_*.* * * 293X_02_. * 2937X_02_* * * * 2937X_02_ X_02_ X_02_ * 2937X_02_* * * 0.* 2937X_02_ * 2937X_02_* * * * 1 + 5, SURG = 20 V , SURG = 12 V * * 2935X_012_ 2935X_012_ 2935X_012_ 2935X_012_ 2935X_012_ 2935X_012_ 2935X_012_ 29375X_012_ 29375X_012_ 2935X_012_ 2935X_012_ 2935X_012_ 293X_012_* 293X_012_ 293X_012_ 293X_012_ 293X_012_ 293X_012_ 293X_012_ 293X_012_ 293X_012_* 293X_012_ 293X_012_ 2937X_012_ 2937X_012_ 293X_012_ 2937X_012_ 2937X_012_ 2937X_012_ * * * * 9.3 N/ * * Max. RIL 0kHz Irms (mps) *reliminary values, contact factory for availability. For % tolerance, specify "9"; for 20% tolerance, change to "0". xtended Range ratings in bold print * * * 7 7* * * ocument Number 0002 Revision 1-Feb-02

5 Model 293 STNR/XTN RTINGS ITN (µf) * S O * RT NUMR 293X_0202_ 2935X_0202_ 2935X_0202_ 2935X_0202_ 2935X_0202_ 2935X_0202_ 2935X_0202_ 29375X_0202_ 29375X_0202_ 29375X_0202_ 2935X_0202_ 2935X_0202_ 293X_0202_ 293X_0202_ 293X_0202_ 293X_0202_ 293X_0202_ 293X_0202_ 293X_0202_ 293X_0202_* 293X_0202_ 2937X_0202_ 2937X_0202_ 293X_0202_ 293X_0202_ 2937X_0202_ Max (µ) * Max Hz (%) , SURG = 2 V , SURG = 1 V * Max kHz (Ohms) * Max. RIL 0kHz Irms (mps) * , SURG = 32 V , SURG = 20 V * * 2937X_0252_ 293X_0252_ 2935X_0252_ 2935X_0252_ 2935X_0252_ 2935X_0252_ 2935X_0252_ 2935X_0252_ 2935X_0252_ 2935X_0252_ 29375X_0252_ 29375X_0252_ 2935X_0252_ 2935X_0252_ 293X_0252_ 293X_0252_ 293X_0252_* 293X_0252_ 293X_0252_ 293X_0252_ 293X_0252_ * * * * **reliminary values, contact factory for availability. For % tolerance, specify "9"; for 20% tolerance, change to "0". xtended Range ratings in bold print. ocument Number 0002 Revision 1-Feb-02 19

6 Model 293 STNR/XTN RTINGS ITN (µf) S O RT NUMR Max (µ) Max Hz (%) Max kHz (Ohms) Max. RIL 0kHz Irms (mps) * * , SURG = V , SURG = 2 V 293X_0352_ 293X_0352_ 293X_0352_ 293X_0352_ 2937X_0352_ 2937X_0352_ 293X_0352_ 293X_0352_ 2935X_0352_ 2935X_0352_ 2935X_0352_ 2935X_0352_ 2935X_0352_ 2935X_0352_ 2935X_0352_ 2935X_0352_ 29375X_0352_ 29375X_0352_ 2935X_0352_* 2935X_0352_ 293X_0352_ 293X_0352_ 293X_0352_ 293X_0352_ , SURG = 5 V , SURG = 0 V 293X_0502_ 293X_0502_ 293X_0502_ 293X_0502_ 293X_0502_ 293X_0502_ 293X_0502_ 2937X_0502_ 2937X_0502_ 2937X_0502_ 293X_0502_ 293X_0502_ 2935X_0502_ 2935X_0502_ 2935X_0502_ 2935X_0502_ 2935X_0502_ 2935X_0502_ 2935X_0502_ 29375X_0502_ 2935X_0502_ 2935X_0502_ 293X_0502_ * * * * **reliminary values, contact factory for availability. For % tolerance, specify "9"; for 20% tolerance, change to "0". xtended Range ratings in bold print. 20 ocument Number 0002 Revision 1-Feb-02

7 Model 293 RFORMN HRTRISTIS 1. Operating Temperature: apacitors are designed to operate over the temperature range - 55 to + 5. apacitors may be operated to with voltage derating to two-thirds the + 5 rating. 5. apacitance hange With Temperature: The capacitance change with temperature shall not exceed the following percentage of the capacitance measured at + 25 : Working Voltage (V) Rating Rating Surge Voltage (V) Working Voltage (V) Surge Voltage (V) 2. Working Voltage: The working voltage is the maximum operating voltage for continuous duty at the rated temperature. 3. Surge Voltage: The surge rating is the maximum voltage to which the capacitors may be subjected under any conditions, including transients and peak ripple at the highest line voltage. 3.1 Surge Voltage Test: apacitors shall withstand the surge voltage applied in series with a ohm ± 5% resistor at the rate of one-half minute on, one-half minute off, at + 5, for 00 successive test cycles. 3.2 Following the surge voltage test, the dissipation factor and the leakage current shall meet the initial requirements; the capacitance shall not have changed more than ± %.. apacitance Tolerance: The capacitance of all capacitors shall be within the specified tolerance limits of the normal rating..1 apacitance measurements shall be made by means of polarized capacitance bridge. The polarizing voltage shall be of such magnitude that there shall be no reversal of polarity due to the component. The maximum voltage applied to capacitors during measurement shall be 2 volts rms at 120 Hz at +25. If the voltage applied is less than one-half volt rms, no bias is required. ccuracy of the bridge shall be within ± 2% % % %. issipation Factor: The dissipation factor, determined from the expression 2πfR, shall not exceed values listed in the Standard Ratings Table..1 Measurements shall be made by the bridge method at, or referred to, a frequency of 120 Hz and a temperature of Leakage urrent: apacitors shall be stabilized at the rated temperature for 30 minutes. Rated voltage shall be applied to capacitors for 5 minutes using a steady source of power (such as a regulated power supply) with 00 ohm resistor connected in series with the capacitor under test to limit the charging current. Leakage current shall then be measured. Note that the leakage current varies with temperature and applied voltage. See graph below for the appropriate adjustment factor. TYIL LKG URRNT FTOR RNG Leakage urrent Factor ercent of Rated Voltage ocument Number 0002 Revision 1-Feb-02 21

8 Model 293 RFORMN HRTRISTIS (ontinued) 7.1 t + 25, the leakage current shall not exceed the value listed in the Standard Ratings Table. 7.2 t + 5, the leakage current shall not exceed times the value listed in the Standard Ratings Table. 7.3 t + 125, the leakage current shall not exceed 12 times the value listed in the Standard Ratings Table.. SR.1 SR (quivalent Series Resistance) shall not exceed the values listed in the Ratings Table. Measurement shall be made by the bridge method at a frequency of 0kHz and a temperature of Life Test: apacitors shall withstand rated voltage applied at + 5 or two-thirds rated voltage applied at for 2000 hours. 9.1 Following the life test, the dissipation factor shall meet the initial requirement; the capacitance change shall not exceed ± %; the leakage current shall not exceed 125% of the initial requirement.. Vibration Tests: apacitors shall be subjected to vibration tests in accordance with the following criteria..1 apacitors shall be secured for test by means of a rigid mounting using suitable brackets..2 Low Frequency Vibration: Vibration shall consist of simple harmonic motion having an amplitude of 0.03" [mm] and a maximum total excursion of 0.0" [2mm], in a direction perpendicular to the major axis of the capacitors..2.1 Vibration frequency shall be varied uniformly between the approximate limits of Hz to 55 Hz during a period of approximately one minute, continuously for hours.. n oscilloscope or other comparable means shall be used in determining electrical intermittency during the final 30 minutes of the test. The voltage applied shall not exceed 2 volts rms..2.3 lectrical tests shall show no evidence of intermittent contacts, open circuits or short circuits during these tests..2. Following the low frequency vibration test, capacitors shall meet the original requirements for capacitance, dissipation factor and leakage current..3 High Frequency Vibration: Vibration shall consist of a simple harmonic motion having an amplitude of 0.0" [2] ± % maximum total excursion or 20 g peak whichever is less..3.1 Vibration frequency shall be varied logarithmically from 50 Hz to 2000 Hz and return to 50 Hz during a cycle period of 20 minutes..3.2 The vibration shall be applied for hours in each of 2 directions, parallel and perpendicular to the major axis of the capacitors.. Rated voltage shall be applied during the vibration cycling..3. n oscilloscope or other comparable means shall be used in determining electrical intermittency during the last cycle. The voltage applied shall not exceed 2 volts rms.. lectrical tests shall show no evidence of intermittent contacts, open circuits or short circuits during these tests..3. There shall be no mechanical damage to these capacitors as a result of these tests..3.7 Following the high frequency vibration test, capacitors shall meet the original limits for capacitance, dissipation factor and leakage current. 11. cceleration Test: 1 apacitors shall be rigidly mounted by means of suitable brackets apacitors shall be subjected to a constant acceleration of 0 g for a period of seconds in each of 2 mutually perpendicular planes The direction of motion shall be parallel to and perpendicular to the longitudinal axis of the capacitors Rated voltage shall be applied during acceleration test n oscilloscope or other comparable means shall be used in determining electrical intermittency during test. The voltage applied shall not exceed 2 volts rms. 11. lectrical tests shall show no evidence of intermittent contacts, open circuits or short circuits during these tests. 1 There shall be no mechancial damage to these capacitors as a result of these tests. 11. Following the acceleration test, capacitors shall meet the original limits for capacitance, dissipation factor and leakage current. ocument Number 0002 Revision 1-Feb-02

9 Model 293 RFORMN HRTRISTIS (ontinued) 12. Shock Test: 12.1 apacitors shall be rigidly mounted by means of suitable brackets. The test load shall be distributed uniformly on the test platform to minimize the effects of unbalanced loads. 12. Test equipment shall be adjusted to produce a shock of 0 g peak with the duration of ms and sawtooth waveform at a velocity change of 9.7 ft./sec. 1 apacitors shall be subjected to 3 shocks applied in each of 3 directions corresponding to the 3 mutually perpendicular axes of the capacitors Rated voltage shall be applied during test n oscilloscope or other comparable means shall be used in determining electrical intermittency during tests. The replacement voltage applied shall not exceed 2 volts rms. 12. lectrical tests shall show no evidence of intermittent contacts, open circuits or short circuits during these tests. 1 There shall be no mechanical damage to these capacitors as a result of these tests. 12. Following the shock test, capacitors shall meet the original limits for capacitance, dissipation factor and l leakage current. 13. Moisture Resistance: 13.1 apacitors shall be subjected to temperature cycling at 90% to 95% relative humidity, from + 25 to +5 to + 25 (+, - 2 ) over a period of hours per cycle for 00 hours Following the moisture resistance test, the leakage current and dissipation factor shall meet the initial requirements, and the change in capacitance shall not exceed ± %. 1. Thermal Shock: apacitors shall be conditioned prior to temperature cycling for minutes at + 25, at less than 50% relative humidity and a barometric pressure at 2 to 31" 1.2 apacitors shall be subjected to thermal shock in a cycle of exposure to ambient air at : - 55 (+ 0,- 5 ) for 30 minutes, then + 25 (+, - 5 ) for 5 minutes, then (+ 3, - 0 ) for 30 minutes, then + 25 (+, - 5 ) for 5 minutes for 5 cycles. 1.3 apacitors shall show no evidence of harmful or extensive corrosion, obliteration of marking or other visible damage. 1. Following the thermal shock test, capacitors shall meet the original requirements for leakage current and dissipation factor. apacitance change shall not exceed ± 5% of the original measured value.. Soldering ompatibility:.1 Resistance to Solder Heat: apacitors will withstand exposure to for seconds.. Following the resistance to soldering heat test, capacitance, dissipation factor and leakage current shall meet the initial requirement..2 Solderability: apacitors will meet the solderability requirements of NSI/J-ST-002, Test (MIL-ST- 202, method and test S.) 1. Terminal Strength: er U-3-3, minimum of 5N shear force. 17. nvironmental: Mercury, F and OS materials are not used in the manufacture of these capacitors. 1. Flammability: ncapsulant materials meet UL9 V0 with an oxygen index of 32%. 19. apacitor Failure Mode: The predominant failure mode for solid tantalum capacitors is increased leakage current resulting in a shorted circuit. apacitor failure may result from excess forward or reverse voltage, surge current, ripple current, thermal shock or excessive temperature. The increase in leakage is caused by a breakdown of the Ta 2 O 5 dielectric. For additional information on leakage failure of solid tantalum chip capacitors, refer to Technical aper, Leakage Failure Mode in Solid Tantalum hip apacitors. 20. Surge urrent: ll and case code 293 capacitors are 0% surge current tested at + 25 and rated voltage. The total series circuit resistance is ohms. ach charge cycle of 0. seconds is followed by a discharge cycle of 0. seconds. Three surge cycles are applied. ach capacitor is tested individually to maximize the peak charging current. ocument Number 0002 Revision 1-Feb-02 23

10 Model 293 GUI TO LITION 1. - Ripple urrent: The maximum allowable ripple current shall be determined from the formula: I rms = R SR where, = ower issipation in + 25 as given in the table in aragraph Number 5 (ower issipation). R SR = The capacitor quivalent Series Resistance at the specified frequency Ripple Voltage: The maximum allowable ripple voltage shall be determined from the formula: Temperature V rms = Z or, from the formula: R SR V rms = I rms x Z where, = ower issipation in + 25 as given in the table in aragraph Number 5 (ower issipation). R SR = The capacitor quivalent Series Resistance at the specified frequency. Z = The capacitor impedance at the specified frequency. 2.1 The sum of the peak voltage plus the voltage shall not exceed the voltage rating of the capacitor. The sum of the negative peak voltage plus the applied voltage shall not allow a voltage reversal exceeding % of the rating at Reverse Voltage: These capacitors are capable of withstanding peak voltages in the reverse direction equal to % of the rating at + 25, 5% of the rating at + 5 and 1% of the rating at Temperature erating: If these capacitors are to be operated at temperatures above + 25, the permissible rms ripple current or voltage shall be calculated using the derating factors as shown: erating Factor ower issipation: ower dissipation will be affected by the heat sinking capability of the mounting surface. Non-sinusoidal ripple current may produce heating effects which differ from those shown. It is important that the equivalent Irms value be established when calculating permissible operating levels. (ower issipation calculated using + 25 temperature rise.) ase ode Maximum ermissible ower + 25 (Watts) in free air rinted ircuit oard Materials: Type 593 capacitors are compatible with commonly used printed circuit board materials (alumina substrates, FR, FR5, G, TF-fluorocarbon and porcelanized steel). 7. ttachment: 7.1 Solder aste: The recommended thickness of the solder paste after application is.007" ±.001" [.17mm ±.025mm]. are should be exercised in selecting the solder paste. The metal purity should be as high as practical. The flux (in the paste) must be active enough to remove the oxides formed on the metallization prior to the exposure to soldering heat. In practice this can be aided by extending the solder preheat time at temperatures below the liquidous state of the solder. 7.2 Soldering: apacitors can be attached by conventional soldering techniques - vapor phase, infrared reflow, wave soldering and hot plate methods. The Soldering rofile chart shows maximum recomended time/temperature conditions for soldering. ttachment with a soldering iron is not recommended due to the difficulty of controlling temperature and time at temperature.. leaning (Flux Removal) fter Soldering: The 293 is compatible with all commonly used solvents such as TS, TMS, relete, hlorethane, Terpene and aqueous cleaning media. However, F/OS products are not used in the production of these devices and are not recommended. Solvents containing methylene chloride or other epoxy solvents should be avoided since these will attack the epoxy encapsulation material..1 When using ultrasonic cleaning, the board may resonate if the output power is too high. This vibration can cause cracking or a decrease in the adherence of the termination. O NOT X 0kHz for 2 minutes. 2 ocument Number 0002 Revision 1-Feb-02

11 Model 293 GUI TO LITION (ontinued) SOLRING ROFIL Recommended Solder rofile Wave Solder Recommended Solder rofile Reflow 5 - Sec. Temperature egrees entigrade Max. Recommended Time (Seconds) Temperature egrees entigrade Typical 130 Typical Time (Seconds) Recommended Mounting ad Geometries: roper mounting pad geometries are essential for successful solder connections. These dimensions are highly process sensitive and should be designed to minimize component rework due to unacceptable solder joints. The dimensional configurations shown are the recommended pad geometries for both wave and reflow soldering techniques. These dimensions are intended to be a starting point for circuit board designers and may be fine tuned if necessary based upon the peculiarities of the soldering process and/or circuit board design. ROMMN MOUNTING GOMTRIS Iin inches [millimeters] Wave Solder ads Reflow Solder ads ase ode (Min.).03 [] ad imensions.05 [2.].053 [1.35].2 [5.5].0 [1.23] ase ode (Min.).071 [] ad imensions.05 [2.].053 [1.35].2 [5.5].0 [1.23].01 []..05 [2.].05 [].23 [5.95].0 [1.23].1 [].05 [2.].05 [].23 [5.95].0 [1.23] 01 []. [2.70].12 [3.].7 [.55].050 [1.2].1 []. [2.70].12 [3.].7 [.55].050 [1.2].0 [1.]. [2.70].175 [.5].3 [9.5].050 [1.2].11 [3.00]. [2.70].175 [.5].3 [9.5].050 [1.2].0 [1.]. [2.70].175 [.5].3 [9.5].050 [1.2].11 [3.00]. [2.70].175 [.5].3 [9.5].050 [1.2].03 [].05 [2.].053 [1.35].2 [5.5].0 [1.23].071 [].05 [2.].053 [1.35].2 [5.5].0 [1.23] ocument Number 0002 Revision 1-Feb-02 25

12 Model 293 T N RL KGING in inches [millimeters].7 ±.00 [.0 ±.] K Max..02 [.00] Max [ ].079 ±.002 [ ±.050].09 ±.00 [5 ±.] 0 F W 1 Max. K 0 0 Top over Tape irection of Feed 1 Min. T SIZ 1 (Max.) 1 (Min.) F K (Max.) W 0 0 K 0 mm 12mm. [.2].323 [.2].039 [].059 [].13 ±.002 [ ±.05].217 ±.002 [5.5 ±.05].09 [2.].177 [.5].7 ±.00 [.0 ± ].3 ±.00 [.0 ± ].3 ±.012 [.0 ±.30].72 ±.012 [1 ±.30] Notes: 0 0 K 0 are determined by component size. The clearance between the component and the cavity must be within.002" [.05mm] minimum to.020" [.50mm] maximum for mm tape and.002" [.05mm] minimum to.02" [.5mm] maximum for 12mm tape. arrier Standard orientation is with the cathode (-) nearest to the sprocket holes per I-1-1 and I 2-3. Top over Tape Thickness Tape and Reel Specifications: ll case codes are available on plastic embossed tape per I-1-1. Tape reeling per I 2-3 is also available. Standard reel diameter is 13" [0mm]. 7" [17mm] reels are available. The most efficient packaging quantities are full reel increments on a given reel diameter. The quantities shown allow for the sealed empty pockets required to be in conformance with I-1-1. Reel size must be specified in the part number. mbossment Units er Reel athode (-) ase ode Tape Width omponent itch 7" [17mm] Reel 13" [0mm] Reel mm mm mm mm mm mm node (+) 12mm 12mm mm mm irection of Feed mm mm ocument Number 0002 Revision 1-Feb-02

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