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RM_PDTA114E_SER.pdf
Table 3. Pinning Pin Description Simplified outline Graphic symbol SOT23; SOT323; SOT416 1 input (base) 2 GND (emitter) 3 3 R1 3 output (collector) 1 R2 1 2 2 006aaa144 sym003 SOT883 1 input (base) 1 2 GND (emitter) 3 3 2 1 R1 3 output (collector) Transparent R2 top view 2 sym003 3. Ordering information
in „AEG Lavatherm IH67680IH schaltet sporadisch ab“ · Analoge Elektronik und Schaltungstechnik ·
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Littelfuse_ESD_System_Level_Guide.pdf
0V V Lightning Number of Package (Contact) R RWM (tP=8/20μs) Channels Options (@ Bias) SOT23-3 2 SC70-3 3 SOT143 50pF SOT23-5 SP05 ±30kV 5.5V N/A 4 SC70-5 (30pF @ 2.5V) SOT23-6 5 SC70-6 6 MSOP-8 SC70-3 2 SOT553 12pF SC70-5 SP1001 ±15kV 5.5V 2A 4 (8pF @ 2.5V) SOT553 5 SC70-6 SOT563 1 SC70-3 SP1002 ±8kV
in „Fachliteratur Entwurf Blitzductor“ · Analoge Elektronik und Schaltungstechnik ·
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BD249.pdf
2 ● Customer-Specified Selections Available E 3 Pin 2 is in electrical contact with the mounting base. MDTRAA absolute maximum ratings at 25°C case temperature (unless otherwise noted) RATING SYMBOL VALUE UNIT BD249 55 BD249A 70 Collector-emitter voltaBE = 100 Ω) VCER V BD249B 90 BD249C 115 BD249 45 BD249A 60 Collector-emitter voltCge (I mA) VCEO V BD249B 80 BD249C 100 Emitter-base voltage VEBO 5 V Continuous collector current I 25 A C Peak collector current (see Note 1) ICM 40 A Continuous base current I 5 A B Continuous device dissipation at (or below) 25°C case temperature
in „Kühlkörperberechnung“ · Analoge Elektronik und Schaltungstechnik ·
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DatenblattOriginalLEDAiptekt20.pdf
1.919.313.5300 XLAMP XP-E LEDS FLUX CHARACTERISTICS (T = 25°C) - WHIJE The following table provides several base order codes for XLamp XP-E LEDs. It is important to note that the base order codes listed here are a subset of the total available order codes for the product family. For more order codes, as well as
in „Abstrhlfläche LED“ · Mikrocontroller und Digitale Elektronik ·
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stm8s.h
0x50E0 #define AWU_BaseAddress 0x50F0 #define BEEP_BaseAddress 0x50F3 #define SPI_BaseAddress 0x5200 #define I2C_BaseAddress 0x5210 #define UART1_BaseAddress 0x5230 #define UART2_BaseAddress 0x5240 #define UART3_BaseAddress
in „sdcc source code in mehrere Dateien aufteilen“ · Mikrocontroller und Digitale Elektronik ·
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PEP_SMART_I-O_Base.pdf
@20MHz SMART-BASE: 247.5x114.5x86.8 SMART-EXT: 110.0x114.5x86.6 Memory Operating Temperature EPROMand/orFLASHupto2MByte 512kByteDRAM Standard: 0ºCto+70ºC 64kByteSRAMwithbatterybackup Extended: -40ºCto+85ºC Interfaces
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ZXTN19060CG.pdf
Semiconductors plc 2008 ZXTN19060CG Absolute maximum ratings Parameter Symbol Limit Unit Collector-Base voltage V CBO 160 V Collector-Emitter voltage (forward blocking) VCEX 160 V Collector-Emitter voltage V 60 V CEO Emitter-Collector voltage (reverse blocking) V 6 V ECX Emitter-Base voltage V 7 V EBO
in „5-12V bis 2A schalten, aber wie?“ · Analoge Elektronik und Schaltungstechnik ·
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Bild
Tabelle der Betriebsbedingungen eines PHY-Chips
Parameter Min. Max. Unit Conditions DVDD,AVDD Supply Voltage 3.135 3.465 V TA Ambient Temperature --- 70 °C PD (Power Dissipation) 100BASE-TX --- 88 mA 3.3V 100BASE-FX --- 25 mA 3.3V 10BASE-T TX, normal activity traffic 50% utility. --- 70 mA 3.3V 10BASE-T idle --- 30 mA 3.3V Auto-negotiation --- 45 mA
in „Beschaltung VICOM DM9161CEP“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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MAX4890E-MAX4892E.pdf
Other Pin................................................±20mA X A Continuous Power Dissipation AT +70°C) 32-Pin TQFN (derate 34.5mW/°C above +70°C) …….. 2.76W M 36-Pin TQFN (derate 35.7mW/°C above +70°C) …….. 2.85W / ESD Protection, Human Body Model.............................±15kV E Stresses beyond
in „MAX4890E Eagle Lib“ · Platinen ·
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Datei
myfirst168.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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bc847_p.pdf
Pinning information Table 3: Pinning Pin Description Simplified outline Symbol SOT23, SOT323, SOT416 1 base 2 emitter 3 3 3 collector 1 2 1 2 006aaa144 sym021 SOT883 1 base 2 emitter 1 3 3 3 collector 2 1 Transparent top view 2 sym021 SOT54 1 emitter 3 2 base 3 collector 1 2 2 3 001aab347 1 sym026 SOT54A
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ULN200xA_data.pdf
current, essentially equating to operation with low GPIO voltages. The GPIO voltage is converted to base current through the 2.7-kΩ resistor connected between the input and base of the predriver Darlington NPN. The 7.2-kΩ and 3-kΩ resistors connected between the base and emitter of each respective NPN
in „[V] Darlington Transistor Arrays, npn, Relaistreiber“ · Markt ·
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datasheet.pdf
For small type machine low frequency voltage 0~0.1 0~0.1 amplify application. JEITA:SC-59 JEITA:SC-70 JEDEC:TO-236 resemblance JEDEC:- TERMINAL CONNECTOR TERMINAL CONNECTOR ①:BASE ①:BASE ②:EMITTER ②:EMITTER ③:COLLECTOR ③:COLLECTOR MAXIMUM RATINGS(Ta=25℃) Ratings MARKING Symbol Parameter UNIT ISA1530AC1 ISA1603AM1 V CBO Collector to Base voltage -60 V V Collector to Emitter voltage -6 V EBO . V CEO Emitter to Base voltage -50 V TR I Collector current -150 mA C P C Collector dissipation 200 mW Tj Junction temperature +150 ℃ Tstg Storage
in „PNP Transistor Ersatz“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
dividi_2.vhd
STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE accu: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE x,y,z: integer RANGE 0 to 70; VARIABLE base_index: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE ready_s: STD_LOGIC; VARIABLE quotient_int: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE werte_da: STD_LOGIC; VARIABLE nl: STD_LOGIC; BEGIN WAIT
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BU407.pdf
150 V CEO VEBO Emitter-Base Voltage 6 V I Collector Current (DC) 7 A C ICP Collector Current (Pulse) 10 A I Base Current 4 A B PC Collector DissipatioC (T =25°C) 60 W T Junction Temperature 150 °C J TSTG Storage Temperature -
in „Leuchtstoffröhren Vorschaltgerät 24V Reparatur-Tipp gesucht“ · Fahrzeugelektronik ·
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Datei
main.c
structures // ****************************************************** volatile AT91PS_PIO mPIOB = AT91C_BASE_PIOB; volatile AT91PS_PMC mPMC = AT91C_BASE_PMC; //AT91PS_PIO v_pPioA = AT91C_BASE_PIOA; // ******************************************************* // External References // ************************
in „Data aus USART vom SAM7-EX256 lesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dividi_4.vhd
STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE accu: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE x,y,z: integer RANGE 0 to 70; VARIABLE base_index: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE ready_s: STD_LOGIC; VARIABLE quotient_int: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE werte_da: STD_LOGIC; VARIABLE nl: STD_LOGIC; BEGIN WAIT
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Datei
dividi_3.vhd
STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE accu: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE x,y,z: integer RANGE 0 to 70; VARIABLE base_index: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE ready_s: STD_LOGIC; VARIABLE quotient_int: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE werte_da: STD_LOGIC; VARIABLE nl: STD_LOGIC; BEGIN WAIT
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NCP380-D.PDF
o 70 S D 65 R 60 55 50 45 40 −50 −40 −30 −20 −10 0 10 20 30 40 50 60 70 80 90 100 110 120 130 140 Temperature (°C) Figure 20. R vs Temperature, TSOP Package DS(on) mDFN Package 100 95 R DS(on) vs. Temperature
in „5V USB 500mA Begrenzung“ · Analoge Elektronik und Schaltungstechnik ·
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2SB1412.pdf
Plastic *Weight : 0.925 grams ABSOLUTE MAXIMUM RATINGS(T =25ºC) A Rating Symbol Value Unit Collector to Base Voltage VCBO -30 V V Collector to Emitter Voltage CEO -20 V Collector to Base Voltage VEBO -6 V Collector Current I -5 A C Total Device Disspation TA= 25°C PD 1.0 W Junction Temperature Tj +150 ˚C Storage
in „Transistor durchgebrannt woher neuen?“ · Analoge Elektronik und Schaltungstechnik ·
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A100_BC549x_BC550x.pdf
10mA, B =0.5mA 0.25 V IC=10mA, IB=See Note (1) 0.60 V *C =100mA, B =5mA 0.60 V *V I =100mA, I =5mA Base Emitter Saturation Voltage BE (sat) C B 1.1 V Base Emitter On Voltage VBE (on) IC=10μA, VCE5V 0.52 V IC=100μA, VCE5V 0.55 V IC=2mA, V CEV 0.55 0.70 V SMALL SIGNAL CHARACTERISTICS DESCRIPTION SYMBOL
in „Rätselhafter Transistor“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dividi_original.vhd
STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE accu: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE x,y,z: integer RANGE 0 to 70; VARIABLE base_index: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE ready_s: STD_LOGIC; VARIABLE quotient_int: STD_LOGIC_VECTOR (63 DOWNTO 0); VARIABLE werte_da: STD_LOGIC; VARIABLE nl: STD_LOGIC; BEGIN WAIT
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TUA6100.pdf
-30.0 2meg 3meg 5meg 7meg 10meg 20meg 30meg 50meg 70meg 100meg 200meg f(Hz) • Group delay incl. the two +16 dB base band amplifiers + output load 4n 3n ) ( a 2n e p o 1n g 0.0 -1n 2meg 3meg 5meg 7meg 10meg 20meg 30meg 50meg 70meg 100meg 200meg f(Hz) High-Frequency-Products
in „Pollin - Receiver-Mainboard mit Twin DVB-[T,C] Tuner, NXP PNX8950EH“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst168.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „Break auf 0xfffffffe in STM32CubeIDE“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst168.s
GPIOB_BASE + 0x00 @<<<<< .equ GPIOB_AFRL , GPIOB_BASE + 0x20 @<<<<< .equ GPIOB_AFRH , GPIOB_BASE + 0x24 .equ GPIOA_BASE , 0x40020000 .equ GPIOA_MODER , GPIOA_BASE + 0x00 .equ GPIOA_OTYPER , GPIOA_BASE + 0x04 .
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
eeprom.h
_8 ((uint32_t)0x08004000) /* Base @ of Page 8, 2 Kbytes */ #define ADDR_FLASH_PAGE_9 ((uint32_t)0x08004800) /* Base @ of Page 9, 2 Kbytes */ #define ADDR_FLASH_PAGE_10 ((uint32_t)0x08005000) /* Base @ of Page 10, 2 Kbytes */ #define
in „STM32 Virtueller EEPROM in Flash“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
add your code here */ // Loopback sample j = (senyuKyoku + 1) * 2; for (i = 0; i < j; i ++) { *(rx_base + i) = *(ry_base + i); if(rx_merker != *rx_base || ry_merker != *ry_base) { printf("\nrx_base+%d:%u",i,(unsigned int)*(rx_base+i)); printf("\nry_base+%d:%u",i,(unsigned int)*(ry_base+i)); rx_merker = *rx_base; ry_merker = *ry_base; } } j = (senyuKyoku + 1) * 4; for (i = 0; i < j; i ++) { *(rwr_base + i) = *(rww_base + i); } /* (3)Transmission processing(asynchronous write method) */ asynchronousWrite();
in „R-IN32M3-CL (Cortex-M3): Wie funktioniert Senden/Empfangen auf dem Feldbus?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTZ1000afe_reference.pdf
applications not requiring the extreme precision or of45°C,forexample.Productionvariationsinemitter-base thelownoiseoftheLTZ1000,LinearTechnologymakesa voltage will typically cause about ±10°C variation. Since broadlineof voltagereferences. DevicesliketheLT1021 the emitter-base voltage changes about 2mV
in „Elektronikbuch“ · Offtopic ·
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PDF
cd00000902-1795594.pdf
Absolute maximum ratings Value Symbol Parameter NPN BDX53B BDX53C Unit PNP BDX54B BDX54C V Collector-base voltage (I = 0) 80 100 V CBO E V Collector-emitter voltage (I = 0) 80 100 V CEO B VEBO Emitter-base voltagC (I = 0) 5 V IC Collector current 8 A CM Collector peak current (repetitive) 12 A IB Base current
in „[V] 117St. PNP Darlington Transistor BDX54C - TO220“ · Markt ·
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Datei
CppTest.cpp
namespace Peripheral { using reg32_t =uint32_t; using reg16_t =uint16_t; constexpr reg32_t PERIPH_BASE = 0x40000000U; constexpr reg32_t APB1PERIPH_BASE = PERIPH_BASE; constexpr reg32_t APB2PERIPH_BASE = PERIPH_BASE + 0x00010000UL; constexpr reg32_t AHB1PERIPH_BASE = PERIPH_BASE + 0x00020000UL; constexpr
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DG506_507_508_509A.pdf
PACKAGE NO. DG506AAK -55 to 125 28 Ld CERDIP F28.6 DG508AAK -55 to 125 16 Ld CERDIP F16.3 DG506ACJ 0 to 70 28 Ld PDIP E28.6 DG508ABK -25 to 85 16 Ld CERDIP F16.3 DG506ACY 0 to 70 28 Ld SOIC M28.3 DG508ACJ 0 to 70 16 Ld PDIP E16.3 DG507ABK -25 to 85 28 Ld CERDIP F28.6 DG509ACJ 0 to 70 16 Ld PDIP E16.3 DG507ACJ 0 to 70 28 Ld PDIP E28.6 DG509ACY 0 to 70 16 Ld SOIC M16.3 DG507ACY 0 to 70 28 Ld SOIC M28.3 Pinouts DG506A (PDIP, CERDIP, SOIC) DG507A (PDIP, CERDIP, SOIC) DG508A (PDIP, CERDIP) DG509A (PDIP, SOIC) TOP VIEW
in „Bestimmtes Bauteil gesucht zur Signalverteilung“ · Mikrocontroller und Digitale Elektronik ·
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tl497a.pdf
connection †BASE (11) and BASE DRIVE (12) are used for device testing The TL497A incorporates all the active functions only. They normally are not used in circuit applications of the required in the construction of
in „Negative Spannung...“ · Analoge Elektronik und Schaltungstechnik ·
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BUT11AF.pdf
Voltage CEO : BUT11F 400 V : BUT11AF 450 V V Emitter-Base Voltage 9 V EBO IC Collector Current (DC) 5 A I *Collector Current (Pulse) 10 A CP IB Base Current (DC) 2 A I *Base Current (Pulse) 4 A BP PC Collector DissipatioC (T =25°C) 40 W TJ Junction Temperature
in „BUT11AX mit BUT11AF austauschen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bourns_bd241-1159109.pdf
2 ● Customer-Specified Selections Available E 3 Pin 2 is in electrical contact with the mounting base. MDTRACA absolute maximum ratings at 25°C case temperature (unless otherwise noted) RATING SYMBOL VALUE UNIT BD241 55 BD241A 70 Collector-emitter voltaBE= 100 Ω) BD241B VCER 90 V BD241C 115 BD241 45 BD241A 60 Collector-emitter voltCge (I = 30 mA) BD241B VCEO 80 V BD241C 100 Emitter-base voltage V 5 V EBO Continuous collector current IC 3 A Peak collector current (see Note 1) I 5 A CM Continuous base current IB 1 A Continuous device dissipation at (or below) 25°C case temperature (see
in „[V] Komplementäre 27St. BD241A und 10St BD242A und Reste geschenkt“ · Markt ·
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PDF
bourns_bd242-1159279.pdf
2 ● Customer-Specified Selections Available E 3 Pin 2 is in electrical contact with the mounting base. MDTRACA absolute maximum ratings at 25°C case temperature (unless otherwise noted) RATING SYMBOL VALUE UNIT BD242 -55 BD242A -70 Collector-emitter voltaBE = 100 Ω) BD242B VCER -90 V BD242C -115 BD242 -45 BD242A -60 Collector-emitter voltCge (I = -30 mA) BD242B VCEO -80 V BD242C -100 Emitter-base voltage V -5 V EBO Continuous collector current C -3 A Peak collector current (see Note 1) I -5 A CM Continuous base current B -1 A Continuous device dissipation at (or below) 25°C case temperature
in „[V] Komplementäre 27St. BD241A und 10St BD242A und Reste geschenkt“ · Markt ·
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PDF
Data_Schottky___HF_Dioden.pdf
and protection on 2 diodes in series BAS 70 - 04 0,40 0,35 0,30 intrumentation and 1.5 70 0.35 receivers up to 2GHz, 2 common anode diodes BAS 70 - 06 0,40 0,35 0,30 SMD version of the famous 5082-2800 2 diodes not connected BAS 70 - 07 0,40
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Datei
compilerlauf-kicad-gcc7.txt
69%] Building CXX object pcbnew/pcad2kicadpcb_plugin/CMakeFiles/pcad2kicadpcb.dir/pcb_net.cpp.o [ 70%] Linking CXX static library libgithub_plugin.a [ 70%] Built target github_plugin [ 70%] Building CXX object pcbnew/pcad2kicadpcb_plugin/CMakeFiles/pcad2kicadpcb.dir/pcb_pad.cpp.o [ 70%] Generating pcbnew_wrap.cxx
in „KiCad 5.0.2 - Absturz beim Footprint-Editor Aufruf“ · Platinen ·
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A100_bc546_48.pdf
400 Collector Emitter Saturation VoltageCE (sat) IC=10mA, B =0.5mA 0.25 V IC=100mA, IB=5mA 0.60 V Base Emitter Saturation Voltage VBE (sat) IC=10mA, B =0.5mA 0.7 V IC=100mA, IB=5mA 0.9 V Base Emitter On Voltage VBE (on) C =2mA, VCE5V 0.55 0.70 V IC=10mA, VCE5V 0.77 V SMALL SIGNAL CHARACTERISTICS DESCRIPTION
in „Hallo möchte Schaltung nachbauen.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
QM30HA-H_Transistormodul_Datasheet.pdf
Collector-emitter voltage I=1A, VEB=2V 600 V VCEX Collector-emitter voltage VEB=2V 600 V VCBO Collector-base voltage Emitter open 600 V VEBO Emitter-base voltage Collector open 7 V C Collector current DC 30 A –C Collector reverse current DC (forward diode current) 30 A PC Collector dissipation TC=25°C 250
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Transistor_BC547C_NPN_TO-92_45V_0_1A_0_5W.pdf
400 Collector Emitter Saturation VoltageCE (sat) IC=10mA, B =0.5mA 0.25 V IC=100mA, IB=5mA 0.60 V Base Emitter Saturation Voltage VBE (sat) IC=10mA, B =0.5mA 0.7 V IC=100mA, IB=5mA 0.9 V Base Emitter On Voltage VBE (on) C =2mA, VCE5V 0.55 0.70 V IC=10mA, VCE5V 0.77 V SMALL SIGNAL CHARACTERISTICS DESCRIPTION
in „Hilfe bei transistor auswahl/suche“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
QM300HA-2H.pdf
Collector-emitter voltage I=1A, VEB=2V 1000 V VCEX Collector-emitter voltage VEB=2V 1000 V VCBO Collector-base voltage Emitter open 1000 V VEBO Emitter-base voltage Collector open 7 V C Collector current DC 300 A –C Collector reverse current DC (forward diode current) 300 A PC Collector dissipation TC=25°C 1980
in „Alternative Anwendungen für einen Bipolartransistor“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC546_48-CDIL.pdf
400 Collector Emitter Saturation VoltageCE (sat) IC=10mA, B =0.5mA 0.25 V IC=100mA, IB=5mA 0.60 V Base Emitter Saturation Voltage VBE (sat) IC=10mA, B =0.5mA 0.7 V IC=100mA, IB=5mA 0.9 V Base Emitter On Voltage VBE (on) C =2mA, VCE5V 0.55 0.70 V IC=10mA, VCE5V 0.77 V SMALL SIGNAL CHARACTERISTICS DESCRIPTION
in „Defekt an elektronischer Bremse einer Kreissäge.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC560C-D.pdf
onsemi.com COLLECTOR MAXIMUM RATINGS 1 Rating Symbol Value Unit 2 Collector−Emitter Voltage VCEO −45 Vdc BASE Collector−Base Voltage VCBO −50 Vdc 3 Emitter−Base Voltage VEBO −5.0 Vdc EMITTER Collector Current − Continuous IC −100 mAdc Total Power Dissipation A T = 25°C PD 625 mW Derate above A = 25°C 5.0 mW
in „Suche Datenblatt Transistor Siemens STr 1602“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2SD1804.pdf
ABSOLUTE MAXIMUM RATING (TA=25°C, unless otherwise specified) PARAMETER SYMBOL RATINGS UNIT Collector-Base Voltage V 60 V CBO Collector-Emitter Voltage V CEO 50 V Emitter-Base Voltage V EBO 6 V Collector Current C 8 A Collector Current(PULSE) IC(PULSE) 12 A TO-220 2 TA=25°C W Collector Dissipation TO-251
in „Green-Cap/Super-Cap 2.7V 500F - fake?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MJE13009-D.PDF
1 Collector−Emitter Voltage VCEO(sus) 400 Vdc 2 3 Collector−Emitter Voltage V CEV 700 Vdc Emitter−Base Voltage V 9 Vdc EBO MARKING DIAGRAM Collector Current− Continuous C 12 Adc − Peak (Note 1) ICM 24 Base Current − Continuous B 6 Adc − Peak (Note 1) IBM 12 MJE13009G Emitter Current − Continuous E 18
in „Elektronischen Halogen-Trafo auf LED-Betrieb umrüsten“ · Analoge Elektronik und Schaltungstechnik ·
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2N3904.pdf
UMT3904 0.65 0.65 0.20.7±0.1 (1) (2) 1 1 /2N3906. ± ± 0~0.1 1 2 (1) Emitter ROHM : UMT3 (3) EIAJ : SC-70 0.30.1 ~ (2) Base −0 0.15±0.05 0. All terminals have same dimensions (3) Collector 2.9±0.2 0.950.2 SST3904 1.9±0.2 −0.1 ! Package,markingandpackagingspecifications 0.95.95 0.45±0.1 Part No. UMT3904 SST3904
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PDF
qm300ha-2h.pdf
Collector-emitter voltage I=1A, VEB=2V 1000 V VCEX Collector-emitter voltage VEB=2V 1000 V VCBO Collector-base voltage Emitter open 1000 V VEBO Emitter-base voltage Collector open 7 V C Collector current DC 300 A –C Collector reverse current DC (forward diode current) 300 A PC Collector dissipation TC=25°C 1980
in „Darlington mit zwei Basis Anschlüssen“ · Analoge Elektronik und Schaltungstechnik ·
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ESP_Tubes.pdf
(again), the maximum possible current through the plate resistors is 1.8mA (180V across 100k, and 70V across the valve), and even with a grid voltage of zero, the chart shows the minimum plate voltage is about 80V - close enough to the 70V measured before. The anode voltage can only become less than 70V with grid current - as noted earlier, this distorts the input signal if it comes from a high impedance source. Preamp #1 can therefore swing the anode a maximum of 250V, and a minimum of 70V - that's
in „EL34 Kathodenwiderstand nachrüsten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC337-D.PDF
NPN Silicon Features http://onsemi.com • These are Pb−Free Devices COLLECTOR 1 MAXIMUM RATINGS 2 BASE Rating Symbol Value Unit Collector − Emitter Voltage V CEO 45 Vdc 3 Collector − Base Voltage V CBO 50 Vdc EMITTER Emitter − Base Voltage V EBO 5.0 Vdc Collector Current − Continuous C 800 mAdc Total
in „Grundlagenproblem Transistor?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mpsa42.pdf
Collector-Emitter Breakdown Voltage* I = 1.0 mA, I = 0 300 V A (BR)CEO C B 4 V (BR)CBO Collector-Base Breakdown Voltage C = 100 µ, IE= 0 300 V 2 V (BR)EBO Emitter-Base Breakdown Voltage E = 100 µ, IC= 0 6.0 V / I Collector-Cutoff Current V = 200 V, I = 0 0.1 A P CBO CB E µ Z IEBO Emitter-Cutoff Current