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Silicon PNP Triple DiffusedMaker : Hitachi Semiconductor
Shortcut : 2SB1390 2SB1390 2SB1391 2SB1391 2SB1392 2SB1392 2SB1393 2SB1393 2SB1393A 2SB1393A 2SB1394 2SB1395 2SB1396 2SB1397 2SB1398 2SB1399 |
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Product Information |
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2SB1399 Silicon PNP Triple Diffused Application Low frequency power amplifier Outline TO-220FM 2 1 1. Base 2. Collector 3. Emitter 1.0 kΩ (Typ) ID 200 Ω (Typ) 3 12 3 2SB1399 Absolute Maximum Ratings (Ta = 25°C) Item Collector to base voltage Collector to emitter voltage Emitter to base voltage Collector current Collector peak current Collector power dissipation Symbol VCBO VCEO VEBO IC I C (peak) PC PC * Junction temperature Storage temperature C to E diode forward current Note: 1. Value at TC = 25°C. Tj Tstg ID* 1 1 Ratings –120 –120 –7 –10 –15 2 30 150 –55 to +150 10 Unit V V V A A W °C °C A Electrical Characteristics (Ta = 25°C) Item Collector to base breakdown voltage Symbol V(BR)CBO Min –120 –120 –7 — — 1000 — — — — — Typ — — — — — — — — — — — Max — — — –10 –10 20000 –1.5 –3.0 –2.0 –3.5 3.0 V V V Unit V V V µA Test Conditions I C = –0.1 mA, IE = 0 I C = –25 mA, RBE = ∞ I E = –50 mA, IC = 0 VCB = –100 V, IE = 0 VCE = –100 V, RBE = ∞ VCE = –3 V, IC = –5 A*1 I C = –5 A, IB = 10 mA*1 I C = –10 A, IB = –100 mA*1 I C = –5 A, IB = 10 mA*1 I C = –10 A, IB = –100 mA*1 I D = 10 A*1 Collector to emitter breakdown V(BR)CEO voltage Emitter to base breakdown voltage Collector cutoff current V(BR)EBO I CBO I CEO DC current transfer ratio Collector to emitter saturation voltage Base to emitter saturation voltage C to E diode forward voltage Note: 1. Pulse Test. hFE VCE (sat)1 VCE (sat)2 VBE (sat)1 VBE (sat)2 VD See switching characteristic curve of 2SB955(K). 2 2SB1399 Maximum Collector Dissipation Curve 30 Collector power dissipation Pc (W) –30 i C (peak) s s 1m s 0µ 0m 10 =1 Area of Safe Operation 1µ s Collector Current IC (A) –10 –3 –1.0 –0.3 –0.1 IC (max) DC PW 20 n tio ra pe O (T C = °C 25 10 ) Ta = 25°C 1 Shot pulse 0 50 100 Case Temperature TC (°C) 150 –0.03 –0.3 –1.0 –3 –10 –30 –100 –300 Collector to emitter Voltage VCE (V) Typical Output Characteristics –10 PC DC Current Transfer Ratio vs. Collector Current 10,000 DC current transfer ratio hFE 3,000 1,000 300 100 30 10 –0.1 –0.3 –1.0 –3 –10 –30 Collector current IC (A) VCE = –3 V = 75 °C TC = 25°C Collector Current IC (A) –8 –6 –4 –2.0 –1.8 –1.6 –1.4 –1.2 –1.0 –0.8 = 30 W TC 25°C –25°C –0.6 –2 –0.4 mA IB = 0 0 –1.0 –2 –3 –4 –5 Collector to emitter Voltage VCE (V) –100 3 2SB1399 Saturation Voltage vs. Collector Current Collector to emitter saturation voltage VCE (sat) (V) Base to emitter saturation voltage VBE (sat) (V) –10 TC = 25°C –3 VBE (sat) –1.0 VCE (sat) –0.3 500 lC/lB = 200 200 –0.1 –0.3 –1.0 –3 –10 –30 Collector current IC (A) –100 Transient Thermal Resistance 10 Thermal resistance θj-c (°C/W) 3 TC = 25°C 1.0 0.3 0.1 1m 10 m 100 m 1.0 Time t (s) 10 100 1,000 4 10.0 ± 0.3 7.0 ± 0.3 φ 3.2 ± 0.2 2.8 ± 0.2 2.5 ± 0.2 Unit: mm 0.6 5.0 ± 0.3 2.0 ± 0.3 1.2 ± 0.2 1.4 ± 0.2 12.0 ± 0.3 4.45 ± 0.3 2.5 14.0 ± 1.0 0.5 ± 0.1 Hitachi Code JEDEC EIAJ Weight (reference value) TO-220FM — Conforms 1.8 g 0.7 ± 0.1 2.54 ± 0.5 2.54 ± 0.5 17.0 ± 0.3 Cautions 1. Hitachi neither warrants nor grants licenses of any rights of Hitachi’s or any third party’s patent, copyright, trademark, or other intellectual property rights for information contained in this document. Hitachi bears no responsibility for problems that may arise with third party’s rights, including intellectual property rights, in connection with use of the information contained in this document. 2. Products and product specifications may be subject to change without notice. Confirm that you have received the latest product standards or specifications before final design, purchase or use. 3. Hitachi makes every attempt to ensure that its products are of high quality and reliability. However, contact Hitachi’s sales ... |
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