MCC. Revision: /06/09 1N5338B THRU 1N5369B
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1 Features Zener Voltage From 5.V to 5V Case Material: Molded Plastic. UL Flammability Classification Rating 94V-0 For Available Tolerances See Note Marking : Cathode band and type number Maximum Ratings: MCC Operating Temperature: -55 C to +50 C Storage Temperature: -55 C to +50 C 5 Watt DC Power Dissipation Maximum Forward A:. Volts Power Derating: 40 mw/ Above 75 omponents 0736 Marilla Street Chatsworth!"# $%!"# N5338B THRU N5369B 5 Watt Zener Diode 5. to 5 Volts DO-5 Mechanical Characteristics Case: JEDEC DO-5. Terminals: Solder plated, solderable per MIL-STD-750, Method 06. Standard Packaging: 5mm tape D A Cathode Mark B D C DIMENSIONS INCHES MM DIM MIN MAX MIN MAX NOTE A B C D Revision: 4 006/06/09 of 6
2 MCC N5338B THRU N5369B ELECTRICAL CHARACTERISTICS (T A =5 C unless otherwise noted, V F =. I F =A for all types). MCC PART NUMBER REGULATOR VOLTAGE V Z TEST I ZT DYNAMIC IMPEDANCE Z Z k (@IZT) REVERSE TEST VOLTAGE V R REGULATOR DYNAMIC KNEE IMPEDANCE SURGE VOLTAGE REGULATION I R I ZM ZZK@.0mA I (Note) (Note) r (Note5) (Note) (Note3) (Note4) VOLTS ma OHMS A VOLTS ma ohms A VOLTS N5338B N5339B N5340B N534B N534B N5343B N5344B N5345B N5346B N5347B N5348B N5349B N5350B N535B N535B N5353B N5354B N5355B N5356B N5357B N5358B N5359B N5360B N536B N536B N5363B N5364B N5365B N5366B N5367B N5368B N5369B NOTE:. TOLERANCE AND VOLTAGE DESIGNATION - The JEDEC type numbers shown indicate a tolerance of+/-% with guaranteed limits on only Vz, I R,I r, and V F as shown in the electrical characteristics table. Units with guaranteed limits on all seven parameters are indicated by suffix B for+/-5% tolerance.. ZENER VOLTAGE (Vz) AND IMPEDANCE (Z ZT &Z ZK ) - Test conditions for Zener voltage and impedance are as follows; Iz is applied 40+/- ms prior to reading. Mounting contacts are located from the inside edge of mounting clips to the body of the diode(ta=5 C ) Revision: 4 of 6 006/06/09
3 MCC N5338B THRU N5369B 3. SURGE (Ir) - Surge current is specified as the maximum allowable peak, non-recurrent square-wave current with a pulse width, PW, of 8.3 ms. The data given in Figure 5 may be used to find the maximum surge current for a quare wave of any pulse width between ms and 00ms by plotting the applicable points on logarithmic paper. Examples of this, using the 6.8v and 00V zeners, are shown in Figure 6. Mounting contact located as specified in Note 3. (T A =5 ). 4. VOLTAGE REGULATION (Vz) - Test conditions for voltage regulation are as follows: Vz measurements are made at % and then at 50% of the Iz max value listed in the electrical characteristics table. The test currents are the same for the 5% and % tolerance devices. The test current time druation for each Vz measurement is 40+/- ms. (T A =5C ). Mounting contact located as specified in Note. 5. REGULATOR (I ZM ) - The maximum current shown is based on the maximum voltage of a 5% type unit. Therefore, it applies only to the B-suffix device. The actual I ZM for any device may not exceed the value of 5 watts divided by the actual Vz of the device. T L =75Cat maximum from the device body. APPLICATION NOTE: Since the actual voltage available from a given zener diode is temperature dependent, it is necessary to determine junction temperature under any set of operating conditions in order to calculate its value. The following procedure is recommended: Lead Temperature, T L, should be determined from: T L =th LA P D +T A th LA is the lead-to-ambient thermal resistance ( /W) and P D is the power dissipation. Junction Temperature, T J, may be found from: T J =T L +T JL T JL is the increase in junction temperature above the lead temperature and may be found from Figure 3 for a train of power pulses or from Figure 4 for dc power. T JL = JL P D For worst-case design, using expected limits of Iz, limits of P D and the extremes of T J (T J ) may be estimated. Changes in voltage, Vz, can then be found from:, the zener voltage temperature coefficient, is fount from Figures. Under high power-pulse operation, the zener voltage will vary with time and may also be affected significantly be the zener resistance. For best regulation, keep current excursions as low as possible. Data of Figure 3 should not be used to compute surge capability. Surge limitations are given in Figure 5. They are lower than would be expected by considering only junction temperature, as current crowding effects cause temperatures to be extremely high in small spots resulting in device degradation should the limits of Figure. 5 be exceeded. Revision: 4 006/06/09 3 of 6
4 RATING AND CHARACTERISTICS CURVES N5338B THRU N5369B MCC TEMPERATURE COEFFICIENTS PD, MAXIUMU POWER DISSIPATION (WATTS) L=LEADLENGTHTO HEAT SINK (SEE FIGURE 5) VZ, TEMPERATURE COEFFICIENT (ma/_@izt RANGE VZ, ZENER (VOLTS) TL, LEAD TEMPERATURE Fig. -POWER TEMPERATURE DERATING CURVE Fig. -TEMPERATURE COEFFICIENT-RANGE FOR UNITS 6TO5VOLTS JL(t,D), TRANSIENT THERMAL RESISTANCE JUNCTION-TO- LEAD(/W) D= NOTE BELOW 0. SECOND, THERMAL RESPONSE CURVE IS APPLICABLE TO ANY LEAD LENGTH (L) DUTY CYCLE, D = t / t SINGLE PULSE TJL = JL(t)PPK REPETITIVE PULSES TJL = JL(t,D)PPK 0.0 D= TIME (SECONDS) Fig. 3-TYPICAL THERMAL RESPONSE JL, JUNCTION-TO -LEAD THERMAL RESISTANCE (C/W) 40 0 MOUNT ON 8.0mm COPPER PADS TO EACH TERMINAL IR, PEAK SURGE (AMPS) 40 0 PW = ms* PW = 8.3ms* 4 PW = 00ms* SINE / SQUARE WAVE PW = 0ms* L, LEAD LENGTH TO HEAT SINK (INCH) NOMINAL VZ(V) Fig. 4-TYPICAL THERMAL RESISTANCE Fig. 5- NON-REPETITIVE SURGE VERSUS NOMINAL ZENER VOLTAGE (SEE NOTE 3) Revision: 4 006/06/09 4 of 6
5 RATING AND CHARACTERISTICS CURVES N5338B THRU N5369B ZENER VOLTAGE VERSUS ZENER (FIGURES 7,8) MCC VZ = 6.8V PLOTTED FROM INFORMATION GIVEN IN FIGURE IZ, ZENER (ma) 00 0 T C =5 T= VZ, ZENER VOLTAGE (VOLTS) Fig. 6-PEAK SURGE VERSUS PULSE WIDTH(SEE NOTE 3) Fig. 7-ZENER VOLTAGE VERSUS ZENER VZ = 6.8 THRU VOLTS 00 IZ, ZENER (ma) 0 T= VZ, ZENER VOLTAGE (VOLTS) Fig. 8-ZENER VOLTAGE VERSUS ZENER VZ = THRU 5 VOLTS *** Data of Figure 3 should not be used to compute surge capability. Surge limitations are given in Figure 5. They are lower than would be expected by considering only junction temperature, as current crowding effects cause temperatures to be extremely high in small spots resulting in device degradation should the limits of Figure. 5 be exceeded Revision: 4 006/06/09 5 of 6
6 MCC ***IMPORTANT NOTICE*** Corp. reserves the right to make changes without further notice to any product herein to make corrections, modifications, enhancements, improvements, or other changes. Corp. does not assume any liability arising out of the application or use of any product described herein; neither does it convey any license under its patent rights,nor the rights of others. The user of products in such applications shall assume all risks of such use and will agree to hold Corp. and all the companies whose products are represented on our website, harmless against all damages. ***APPLICATIONS DISCLAIMER*** Products offer by Corp. are not intended for use in Medical, Aerospace or Military Applications. 6 of 6 Revision: 4 006/06/09
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