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bc337.pdf
BC337 ... BC338 BC337 ... BC338 I C = 800 mA VCEO = 25...45 V h FE = 160/250/400 Ptot = 625 mW General Purpose NPN Transistors Universal-NPN-Transistoren T jmax= 150°C Version 2017-02-09 TO-92 (10D3) Typical Applications Typische Anwendungen
in „chinesische Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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T130-6-DataSheet__1_.pdf
10,000 100,000 1,000,000 10,000,000 100,000,000 g Voltage Breakdown (min.) 500 Vrms, 60Hz Frequency(Hz) t Limit 3 mA, 5 s o C Package Quantity 500 Pcs/Box AWG 8 10 12 14 16 18 20 22 24 26 28 l Wire Size a mm 3.150 2.500 2.000 1.600 1.250 1.000 0.800 0.630 0.500 0.400 0.315 g Single Turns 14 18 22 29 36 46
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T130-6-DataSheet__1___1_.pdf
10,000 100,000 1,000,000 10,000,000 100,000,000 g Voltage Breakdown (min.) 500 Vrms, 60Hz Frequency(Hz) t Limit 3 mA, 5 s o C Package Quantity 500 Pcs/Box AWG 8 10 12 14 16 18 20 22 24 26 28 l Wire Size a mm 3.150 2.500 2.000 1.600 1.250 1.000 0.800 0.630 0.500 0.400 0.315 g Single Turns 14 18 22 29 36 46
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Osterreich.pdf
services and products with Maximum Quality and Speed 160% y = -0,15 x Salary in k€ + 138 140% 120% % r t Asymm. e100% a Width a Linear (Width) P 80% o Linear (Asymm.) u i 60% t i D 40% 20% 0% 0 50 100 150 200 250 Annual Salary in k€ Figure 2: Distribution parameters of salaries shown in Figure 1. Asymmetry
in „Können Sie mir helfen, bitte? Ghalt asl Ingeneur“ · Ausbildung, Studium & Beruf ·
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Datei
ADC1.txt
************************ void main(void) { uns16 a=1, b=1, c=1, d=1, y=1, Uweite=1, U=0, Tweite=0, T, x=10, temp, tempo; char n; TRISC=0b.1111.1110; PORTB=0x00; TRISB=0b00000000; LCDCls(); T=0-50; temp=1; tempo=1; LCDPos(1,0); ZahlString(T); ADCON1=0; ADON=1; ADCS1=1; ADCS0=0; ADFM=1; bit Wert @ PORTC
in „Float-Variablen...“ · Mikrocontroller und Digitale Elektronik ·
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TDA5144.pdf
2 − 6.3 7.2 mA V input voltage to the output drsee Fig.1 1.7 − 16 V VMOT stages Thermal protection T local temperature at temperature 130 140 150 °C SD sensor causing shut-down T reduction in temperature beforafter shut-down − TSD − 30 − K switch-on MOT0; centre tap VI input voltage −0.5 − VVMOT V I
in „BLDC Motor Treiber Geschwindihkeitsregelung“ · Mikrocontroller und Digitale Elektronik ·
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OAR.PDF
OAR-3 (15.24 +1.020/0.508) 0.92 (23.4) max (3.18 ±0.762) (1.65 +0.254/-0.127) (1.02 ±0.051) OAR-5 0.800 +0.040/-0.020 0.65 Typ 0.125 ±0.030 0.065 +0.010/-0.005 0.040 ±0.002 (20.32 +1.020/-0.508) 0.88 (22.4) max (3.18 ±0.762) (1.65 +0.254/-0.127) (1.02 ±0.051) Thermal Image Data OAR-1 5 mΩ @ 1Watt OAR-
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Agilent_ADNS-2051_-_153206449.pdf
11. Typical I-V characteristic of ADNS-2051 XY_LED pin. 10 PD Pin Timing PD IDD 75 FRAMES pd 705 µs t t(SEE FIGURE 15) m Figure 12. PD timing normal mode. COMPUTE o PD c LED . SCLK z PD tPDW REGISTER 700 µs READ OPERATION tCOMPUTE d (POWER DOWN) Figure 13. PD timing sleep mode. Figure 14. PD minimum
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5x7matrix_gross.pdf
Dot V R 5 V Operating Temperature T O –40to+85 °C Storage Temperature T s –40 to +85 °C Wave Soldering Conditions Temperature 250 °C (2 mm [0.079 in.] below Body) Time 3 s Note: 1. Derate above 50°C at 0.36 mA/°C. Optical/ElectricalCharacteristicsatTA
in „Laufschrift 5x7 Dotmatrix aber wie?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
system_stm32f4xx.c
StartUpCounter != HSE_STARTUP_TIMEOUT)); if ((RCC->CR & RCC_CR_HSERDY) != RESET) { HSEStatus = (uint32_t)0x01; } else { HSEStatus = (uint32_t)0x00; } if (HSEStatus == (uint32_t)0x01) { /* Select regulator voltage output Scale 1 mode, System frequency up to 168 MHz */ RCC->APB1ENR |= RCC_APB1ENR_PWREN; PWR
in „STM32 mit timer frequenz ausgeben“ · Mikrocontroller und Digitale Elektronik ·
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CLAA070VA02.pdf
Display Area (in mm) 152.4(W) x 91.44(H) View Area (in mm) 154.8(W) x 93.84(H) Number of Pixels 800(W) x 480(H) Pixel Pitch (in mm) 0.1905x0.1905 Color Pixel Arrangement RGB vertical strip Display Mode Normally white Number of color 262k Brightness(cd/m^2) 400nit(min)/500nit(typ)(6.0 mA) Contrast
in „Wer kennt diesen Display-Fehler? (Typisch?)“ · Mikrocontroller und Digitale Elektronik ·
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cd4066b.pdf
All switches OFF TA= –55°C 7 TA= –40°C 7.5 Vis 0 to 15V VDD = 15V TA= 25°C 5.5 8 T = 85°C 9 A T = 125°C 10 A TA= –55°C 8.5 TA= –40°C 8.5 V = 0 to 20V is TA= 25°C 6.5 9 VDD = 20V TA= 85°C 10 TA= 125°C 11 TA= –55°C 800 TA= –40°C 850 V = 5V T = 25°C 470 1050 DD A T = 85°C 1200 A TA= 125
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L91GL0225.pdf
Discharge 1 mA 10 mA 100 mA 25 mA 250 mA 1000 mA 1.8 4000 1.6 h 3000 A g ( t 1.4 t 2000 o c V 1.2 p a C 1000 1.0 0 0.8 -50 -40 -30 -20 -10 0 10 20 30 0 1000 2000 3000 4000 Capacity (mAh) Temperature (°C) Important Notice This datasheet contains typical information specific to
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MPXH.pdf
Transfer Function: VOUT = S x (0.002421xP 0.00842 – Error 4.0 VS= 5.0 DC Temperature = 0 to 85°C 3.5 t 3.0 o t 2.5 MAX t O 2.0 TYP 1.5 1.0 0.5 MIN 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 2 4 6 8 1 1 1 1 1 2 2 2 2 2 3 3 3 3 3 46 8 0 Pressure (Reference to Sealed Vacuum) in kPa Figure 4. Output versus Absolute
in „[V] Drucksensoren“ · Markt ·
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Pulse-Load-Wirewound-Resistors-200907.pdf
provisional results, testing to the specific requirements is recommended. K admissible pulse load P max = t [W] K 2 admissible pulse duration tmax = 2 [sec] P where P= actual occurring power peek minimum interval between pulses: t = P [sec] min P 70 where t= actual pulse duration The equations are applicable
in „Spannungsfestigkeit Widerstand bei kurzzeitig hohen Pulsen“ · Mikrocontroller und Digitale Elektronik ·
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Pulse-Load-Wirewound-Resistors-200907.pdf
provisional results, testing to the specific requirements is recommended. K admissible pulse load P max = t [W] K 2 admissible pulse duration tmax = 2 [sec] P where P= actual occurring power peek minimum interval between pulses: t = P [sec] min P 70 where t= actual pulse duration The equations are applicable
in „Kondensator verlustfrei laden“ · Analoge Elektronik und Schaltungstechnik ·
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lt3580.pdf
to 125°C operating junction temperature range. 3580fb 3 LT3580 TYPICAL PERFORMANCE CHARACTERISTICS T = 25°C unless otherwise specified A Switch Current Limit at Minimum Switch Current Limit at 1MHz Switch Saturation Voltage Duty Cycle 400 2.5 350 2.5 ) ) ( V I 2.0 (300 ( 2.0 I G T L T250 E N O R 1.5 R1.5 V200 U U O H C T150 T C 1.0 R W 1.0 I T S S S100 0.5 0.5 50 0 0 0 10 20 30 40 50 60 70 80 90 0 0.5 1 1.5 2 0 200 400 600 800 1000 1200 SS VOLTAGE (mV) DUTY CYCLE (%) SWITCH CURRENT (A) 3580 G01 3580 G02 3580 G03 Switch
in „Switcher CAD III Simulation - Schaltungsfehler ?“ · Analoge Elektronik und Schaltungstechnik ·
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TIC246D.pdf
TIC246D 400 TIC246M 600 Repetitive peak off-state voltage (see Note 1) TIC246S VDRM 700 V TIC246N 800 Full-cycle RMS on-state current at (or below) 70°C case temperature (see Note 2) T(RMS) 16 A Peak on-state surge current full-sine-wave at (or below) 25°C case temperature (see Note 3) ITSM 125 A Peak
in „Triac belastbarkeit“ · Mikrocontroller und Digitale Elektronik ·
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tic246.pdf
TIC246D 400 TIC246M 600 Repetitive peak off-state voltage (see Note 1) TIC246S VDRM 700 V TIC246N 800 Full-cycle RMS on-state current at (or below) 70°C case temperature (see Note 2) T(RMS) 16 A Peak on-state surge current full-sine-wave at (or below) 25°C case temperature (see Note 3) ITSM 125 A Peak
in „Sicherheitsfrage (220V~)“ · Analoge Elektronik und Schaltungstechnik ·
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EG4S20_DataSheet_V1.4.pdf
M1 3 IO_R24N_3 N1 3 IO_R24P_3 www.anlogic.com 11 安路科技 EG4S20 器件数据手册 硬件设计 引脚 BANK 引脚说明 编号 BANK 引脚说明 T2 2 IO_T_2,PROGRAM_B T13 2 IO_TE13N_GCLKIOT_2_2 R3 2 IO_T_2,INIT_B T14 2 IO_TE13P_GCLKIOT_3_2 T3 2 IO_T_2,CSO_B P10 2 IO_T_2,D0_DIN_MISO T4 2 IO_TE1N_2 T10 2 IO_T_2,MOSI_CSI_B P6 2 IO_TE1P_2 T15 2 IO_TE15N_2 T5 2 IO_TE2P_2 R15 2 IO_TE15P_2 T6 2 IO_TE2N_2 R14 2 IO_TE16P_2 N5 2 IO_TE3P_2,D3 R12 2 IO_TE16N_2 P5 2 IO_TE3N_2,D4 T11 2 IO_T_2,M0 M6 2 IO_TE4P_2 R11 2 IO_T_2,CCLK N6 2 IO_TE4N_2 M10 2 IO_TE17P_2,ADC_CH
in „SDRAM Burst lesen ohne Unterbrechung über Column, Row und Banks hinaus“ · FPGA, VHDL & Co. ·
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Datei
owucnet.c
500ms (better: 800ms) pass till readtemp return true; } int16_t ds18b20_readtemp(const uint8_t* rom) { if (!onewire_selectrom(rom)) return false; onewire_writebyte(DS18B20_CMD_RSCRATCHPAD); uint8_t i=0, rawtmp[2], crc
in „DS18B20: Mehrere Sensoren am Bus, nur letzte Temp. stimmt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KSQ-350mA_ETA_IRFB3806.pdf
KSQ-350mA UV/V I/mA Ic/mA Ib/µA UDS/mV US/mV UE/mV UC/V UCE/V UL1/V UL2/V UL3/V UL4/V T/°C ULEDs/V ILEDs/mA Drop/mV Pv/W PT1/W PT2/W PRS/W ETA/% 12,0 130 0 0 1,9 242 0 11,85 11,85 2,95 2,82 2,84 2,97 16,1 11,58 130 420 0,05 0,00 0,00 0,03 96,5 12,1 150 0 0 2,1 270 0 11,96 11,96 2,97 2,85
in „1W Power LEDs - 350mA KSQ immer gut ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KSQ-350mA_PLED_IRFB3806.pdf
KSQ-350mA UV/V I/mA Ic/mA Ib/µA UDS/mV US/mV UE/mV UC/V UCE/V UL1/V UL2/V UL3/V UL4/V T/°C ULEDs/V ILEDs/mA Drop/mV Pv/W PT1/W PT2/W PRS/W ETA/% 12,0 130 0 0 1,9 242 0 11,85 11,85 2,95 2,82 2,84 2,97 16,1 11,58 130 420 0,05 0,00 0,00 0,03 96,5 12,1 150 0 0 2,1 270 0 11,96 11,96 2,97 2,85
in „1W Power LEDs - 350mA KSQ immer gut ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KSQ-350mA_ETA_IRFB3806.pdf
KSQ-350mA UV/V I/mA Ic/mA Ib/µA UDS/mV US/mV UE/mV UC/V UCE/V UL1/V UL2/V UL3/V UL4/V T/°C ULEDs/V ILEDs/mA Drop/mV Pv/W PT1/W PT2/W PRS/W ETA/% 12,0 130 0 0 1,9 242 0 11,85 11,85 2,95 2,82 2,84 2,97 16,1 11,58 130 420 0,05 0,00 0,00 0,03 96,5 12,1 150 0 0 2,1 270 0 11,96 11,96 2,97 2,85
in „1W Power LEDs - 350mA KSQ immer gut ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KSQ-350mA_PLED_IRFB3806.pdf
KSQ-350mA UV/V I/mA Ic/mA Ib/µA UDS/mV US/mV UE/mV UC/V UCE/V UL1/V UL2/V UL3/V UL4/V T/°C ULEDs/V ILEDs/mA Drop/mV Pv/W PT1/W PT2/W PRS/W ETA/% 12,0 130 0 0 1,9 242 0 11,85 11,85 2,95 2,82 2,84 2,97 16,1 11,58 130 420 0,05 0,00 0,00 0,03 96,5 12,1 150 0 0 2,1 270 0 11,96 11,96 2,97 2,85
in „1W Power LEDs - 350mA KSQ immer gut ?“ · Analoge Elektronik und Schaltungstechnik ·
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Siba.pdf
A 10 160 A 2 125 A 2 0 100 A 6 80 A C D 50 A 63 A u u o c 35 A f l 30 A u s 25 A r s 20 A n r 16 A t m 10 0 4 A 10 A e c k h t 2 A 6 A l e t 10 -1 8 6 U 4 R 3 D D 2 C u a u c R - h g o a R f s -2 -1 0 1 2 3 u s 5 10 2 3 4 6 810 10 10 kA 10 10 r t 0 unbeeinflusster Kurzschlussstrom e o 0 prospective short-circuit-current (Sym. r.m.s.) n m V t 51 UR-Katalog / UR-Catalogue © 2014-04 SIBA GmbH • www.siba.de • info@siba.de
in „Sicherungen - Welches Abschaltvermögen braucht es für eine 230V Netzsicherungen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Configuration_adv.h
Embedded Video Engine (EVE) // #if ENABLED(TOUCH_UI_FTDI_EVE) // Display board used //#define LCD_FTDI_VM800B35A // FTDI 3.5" with FT800 (320x240) //#define LCD_4DSYSTEMS_4DLCD_FT843 // 4D Systems 4.3" (480x272) //#define LCD_HAOYU_FT800CB // Haoyu with 4.3" or 5" (480x272) //#define LCD_HAOYU_FT810CB // Haoyu
in „Ender3 Z-Achse fährt mit Marlin nur nach oben“ · Mechanik, Gehäuse, Werkzeug ·
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STIFTLEISTE_90GRAD.pdf
Characteristics Material and Finish Applications e ty Electrical Housings—Nylon, UL 94V-2 ■ Computer t Inc., File No. 208567 and UL 94V-0 motherboards/power r ■ Certified by Canadian R Voltage—600 VAC Contacts—Brass or Phos. Bronze with supplies n Standards Association, Current—9 amps max. in 2-position
in „Steckverbinder“ · Platinen ·
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PDF
BTA16.pdf
switching on inductive or resistive load. ABSOLUTE RATINGS (limiting values) Symbol Parameter Value Unit T(RMS) RMS on-state current BTA Tc = 80 ⋅C 16 A (360⋅ conduction angle) BTB Tc = 90 ⋅C ITSM Non repetitive surge peak on-state current tp = 8.3 ms 170 A ( Tj initial = 25⋅C ) tp = 10 ms 160 I t I t value
in „9kW schalten“ · Mikrocontroller und Digitale Elektronik ·
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WS2812.pdf
SET —— —— 0.3 V V IL IN DD Hysteresis voltage V D ,SET —— 0.35 —— V H IN Switching characteristics(T =-20~+70℃,V =4.5~5.5V,V =0V,unless otherwise specified) A DD SS Prameter Symbol Condition Min Tpy Max Unit Operation frequency Fosc2 —— —— 800 —— KHz Transmission delay tPLZ CL=15pF,DIN→ —— —— 300 ns
in „WS2812/2811 mit PIC asm.Verzweiflung!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
WS2812preliminary.pdf
SET —— —— 0.3 V V IL IN DD Hysteresis voltage V D ,SET —— 0.35 —— V H IN Switching characteristics(T =-20~+70℃,V =4.5~5.5V,V =0V,unless otherwise specified) A DD SS Prameter Symbol Condition Min Tpy Max Unit Operation frequency Fosc2 —— —— 800 —— KHz Transmission delay tPLZ CL=15pF,DIN→ —— —— 300 ns
in „[Mitbestellung] SMD5050 RGB-LED mit integriertem 8-bit PWM Controller“ · Markt ·
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PDF
WS2812.pdf
SET —— —— 0.3 V V IL IN DD Hysteresis voltage V D ,SET —— 0.35 —— V H IN Switching characteristics(T =-20~+70℃,V =4.5~5.5V,V =0V,unless otherwise specified) A DD SS Prameter Symbol Condition Min Tpy Max Unit Operation frequency Fosc2 —— —— 800 —— KHz Transmission delay tPLZ CL=15pF,DIN→ —— —— 300 ns
in „Kabelquerschnitt für 5V?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
WS2812preliminary.pdf
SET —— —— 0.3 V V IL IN DD Hysteresis voltage V D ,SET —— 0.35 —— V H IN Switching characteristics(T =-20~+70℃,V =4.5~5.5V,V =0V,unless otherwise specified) A DD SS Prameter Symbol Condition Min Tpy Max Unit Operation frequency Fosc2 —— —— 800 —— KHz Transmission delay tPLZ CL=15pF,DIN→ —— —— 300 ns
in „WS2812 Timing“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Bootprog_-_Kopie.c
(uint8_t state) { if (state) PORTA |= (1 << PA1); else PORTA &= ~(1 << PA1); } /***SET*END***/ /***GET***/ uint8_t getSDO() { uint8_t input=0; input = PINA &= (1 << PA3); if (input) return 1; else return 0; } uint8_t getnIRQ() { uint8_t input=0; input = PINA & (1 << PA4); if (input) return 1; else return 0; } /***GET*END*** ***RFM12*COMMANDS***/ unsigned short RFM12_cmd(unsigned short cmd) { unsigned char i; setnSEL
in „RFM12 - Empfang“ · Mikrocontroller und Digitale Elektronik ·
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SGMOP17C.pdf
Voltage High (OH) mV -40℃ ≤ T ≤ +125℃ 100 A R L 10kΩ to 5V 60 75 Output Voltage Low (VOL mV -40℃ ≤ T A +125℃ 80 V O 2.5V, R L10Ω to 0V 4.6 8.5 ISOURCE mA -40℃ ≤ T A +125℃ 3.5 Short Circuit Limit V O 2.5V, R L10Ω to 5V 3.9 10 ISINK mA -40℃ ≤ T ≤ +125℃ 2.9 A POWER SUPPLY (1) V S 4.5V to 36V 117 145 Power Supply Rejection Ratio (PSRR) dB -40℃ ≤ T A +125℃ 115 V O 2.5V 450 600 Quiescent Current (Q ) μA -40℃ ≤ T A +125℃ 790 DYNAMIC PERFORMANCE
in „Identifikation SOT23-5 ST3SK“ · Analoge Elektronik und Schaltungstechnik ·
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18481_BC547_data.pdf
2KΩ, f=30~15000MHz 1.4 3 dB G h Classification FE Classification A B C h 110 ~ 220 200 ~ 450 420 ~ 800 FE ©2002 Fairchild Semiconductor Corporation Rev. A2, August 2002 B C Typical Characteristics 5 4 6 / 5 4 100 100 7 / B = 4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C
in „NPN Transistor Kennlinie verstehen“ · Analoge Elektronik und Schaltungstechnik ·
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BC547.pdf
2KΩ, f=30~15000MHz 1.4 3 dB G h Classification FE Classification A B C h 110 ~ 220 200 ~ 450 420 ~ 800 FE ©2002 Fairchild Semiconductor Corporation Rev. A2, August 2002 B C Typical Characteristics 5 4 6 / 5 4 100 100 7 / B = 4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C
in „Arduino. Transistor schaltet nicht richtig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BC547B.pdf
2KΩ, f=30~15000MHz 1.4 3 dB G h Classification FE Classification A B C h 110 ~ 220 200 ~ 450 420 ~ 800 FE ©2002 Fairchild Semiconductor Corporation Rev. A2, August 2002 B C Typical Characteristics 5 4 6 / 5 4 100 100 7 / B = 4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C
in „Basiswiderstand richtig berechnet?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC547_datasheet.pdf
2KΩ, f=30~15000MHz 1.4 3 dB G h Classification FE Classification A B C h 110 ~ 220 200 ~ 450 420 ~ 800 FE ©2002 Fairchild Semiconductor Corporation Rev. A2, August 2002 B C Typical Characteristics 5 4 6 / 5 4 100 100 7 / B = 4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C
in „Frage zur Berechnung von Basiswiderstand BC547B mit Motor 5V“ · Analoge Elektronik und Schaltungstechnik ·
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MAX.pdf
Resistance Match R (NC orNO)= -10mA, VD= 10V Ω Between Channels (Note 4) ON or -10V, V+ =15V, V- = -15V TA= T MINto MAX 4 T = +25°C 3 On Resistance Flatness R ON (NC orNO)= -10mA, VD= 5V A Ω (Note 4) or -5V, V+ =15V, V- = -15V TA= T MINto MAX 5 On Circuit Leakage M -0.75 0.75 COM VCOM = ±15.5V, NC or VNO = +
in „Digitalpotentiometer in analogen Anwendungen“ · Analoge Elektronik und Schaltungstechnik ·
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15SMC68AT3.PDF
W ( P 10 U K A HALF VALUE - IPP A V 2 P 50 k P P 1 0.1 ▯s 1 ▯s 10 ▯s 100 ▯s 0 1 ms 10 ms 0 1 2 3 4 t, PULSE WIDTH t, TIME (ms) P Figure 1. Pulse Rating Curve Figure 2. Pulse Waveform 160 ⋅ 1000 2 140 T ▯=▯25⋅C VBR(NOM)▯=▯6.8▯TO▯13▯V O = ) 500 t ▯=▯10▯▯s 20▯V % TA120 P P 24▯V 43▯V I @ M 200 75▯V G N ( T R 100 T 100 120▯V R U N 50 D C 80 R E R R 20 180▯V L R 60 C P E T 10 K O 40 S E P T 5 P A 20 IT P 2 0 1 0 25 50 75 100 125 150 0.3 0.5 0.7 1 2 3 5 7 10 20 30 TA, AMBIENT TEMPERATURE (⋅C) ▯V BRINSTANTANEOUS
in „Ersatzteilempfehlungen gesucht (TVS-Diode HDD)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datenblatt_WCDMA-GSM-EDGE-Transceiver_MMM7210.pdf
-1980 MHz GC- ΣΔ 2110-2170 MHz GPO 925-960 MHz c EGSM LPF SPI 2 800/900 a M 2/4 GR3 GR2 GR1 1930-1990 MHzh Band II & PCS DIV DigRF 1800/1900 a 3G NC M GC- 1805-1880 MHh DCS LPF ΣΔ 2100 a M 2110-2170 MHz SPI t Band I NC GPO M 2 MC13853 MMM7210 RxModulelter Transceiver
in „GSM-Modul (SIM908) nur analoge Ausgänge für Anruf?“ · HF, Funk und Felder ·
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tl431.pdf
PRECISION SHUNT REGULATORS SLVS005O – JULY 1978 – REVISED JUNE 2002 equivalent schematic † CATHODE 800 Ω 800 Ω 20 pF REF 150 Ω 3.28 kΩ 4 kΩ 10 kΩ 2.4 kΩ 20 pF 7.2 kΩ 1 kΩ 800 Ω ANODE † All component values are nominal. ‡ absolute maximum ratings over operating free-air temperature range (unless otherwise
in „Referenzspannungsprobleme“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SG3525ANG.pdf
Figure 2. Lab Test Fixture http://onsemi.com 5 SG3525A 200 500 ) 100 ( ) R 400 T ( 50 I O E 300 T * R = 0 ▯ R S 20 D M R T G D 200 I 10 E I 6 5 7 , , 5.0 RD* D100 RT RT C R T 2.0 0 2.0 5.0 10 20 50 100 200 500 1000 2000 5000 10,000 0.2 0.5 1.0 2.0 5.0 10 20 50 100 200 CHARGE TIME (▯s) DISCHARGE TIME (▯s) Figure 3. Oscillator Charge Time versus R T Figure 4. Oscillator Discharge Time versus R D 1 - 9 + ) V = +20 V ) 2 CP ( 4.0 CC d 100 RZ G TJ= +25⋅C N T 3.5 A 80 O3.0 G V G 60 O 2.5 T RZ= 20 k T O 40 R2.0 , T 1.5 O 20 S Source Sat, CV OH ) V ,t1.0
in „Gegentaktwandler Überschwingen im Leerlauf“ · Analoge Elektronik und Schaltungstechnik ·
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Varo_TO-3_Flange.pdf
JunctionOperating and StorageTemperature Range Tj, TSTG -66 to +160 °C NOTE : Allmeasurements taken atT c" 25°C unlessotherwise specified.CaseTemperature, T c,ismeasured on thebottom ofthe i 0.126 inch ofcenter. ELECTRICAL CHARACTERISTICS (At T = 25°C unless otherwise specified) SYMBOL UNITS c IN4436 IN4437
in „"TO-3"-Gehäuse mit Steckzungen - was für Bauteile?“ · Analoge Elektronik und Schaltungstechnik ·
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paste.pdf
determine the actual reflow profile. 200 Peak Temperature 160–180 ˚C 180 160 )140 C (120 Reflow time r t 60–90 s r100 e Soak Temp. p 80 110–139 ˚C e T 60 Preheat 40 ≤1˚C/s 20 0 0 50 100 150 200 250 time (s) The Preheat Zone, which is also referred to as the ramp zone, is used to elevate the temperature
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SFH205F.pdf
Top;Tstg — 55 ... + 100 °C Operating and storage temperature range Löttemperatur (Lötstelle 2 mm vom T 230 °C S Gehäuse entfernt bei Lötzeit 3 s) Soldering temperature in 2 mm distance from case bottom t 3 s) Sperrspannung VR 32 V Reverse voltage VerlustleistungTA = 25 °C Ptot 150 mW Total power dissipation
in „Selbstlernende IR-Fernbedienung gesucht (4 Tasten)“ · Offtopic ·
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TPS62111 LINE TRANSIENT LOAD TRANSIENT V I 8.4 V V = 3.3 V O C1 = 5 V/div ILOAD = 150 mA to 1350 mA T A 25°C V = 50 mV/div O C2 = 50 mV/div IO= 500 mA/div VI= 7.2 V to 12 V VO= 3.3 V LOAD = 800 mA T = 25°C A t − Time = 2 ms/div t − Time = 20 μ s/div Figure 11. Figure 12. TPS62111 TPS62111 OUTPUT RIPPLE START-UP TIMING VI= 8.4 V,OV = 3.3 V LOAD = 100 mA, TA= 25°C VI= 12 V, O = 3.3 V LOAD = 800 mA, TA= 25°C CH1 = 20 mV/div CH1 = 10 V/div CH2 = 5 V/div CH2 = 1 V/div CH3 = 5 V/div CH4 = 500 mA/div CH4 = 200 mA/div t − Time = 5 μ s/div t − Time = 200 μ s/div Figure 13. Figure 14. 10 TPS62110
in „Kurz vorm Verzweifeln“ · Analoge Elektronik und Schaltungstechnik ·
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TPS6211.pdf
TPS62111 LINE TRANSIENT LOAD TRANSIENT V I 8.4 V V = 3.3 V O C1 = 5 V/div ILOAD = 150 mA to 1350 mA T A 25°C V = 50 mV/div O C2 = 50 mV/div IO= 500 mA/div VI= 7.2 V to 12 V VO= 3.3 V LOAD = 800 mA T = 25°C A t − Time = 2 ms/div t − Time = 20 μ s/div Figure 11. Figure 12. TPS62111 TPS62111 OUTPUT RIPPLE START-UP TIMING VI= 8.4 V,OV = 3.3 V LOAD = 100 mA, TA= 25°C VI= 12 V, O = 3.3 V LOAD = 800 mA, TA= 25°C CH1 = 20 mV/div CH1 = 10 V/div CH2 = 5 V/div CH2 = 1 V/div CH3 = 5 V/div CH4 = 500 mA/div CH4 = 200 mA/div t − Time = 5 μ s/div t − Time = 200 μ s/div Figure 13. Figure 14. 10 TPS62110
in „DC DC Wandler Pins“ · Analoge Elektronik und Schaltungstechnik ·
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TPS62111 LINE TRANSIENT LOAD TRANSIENT V I 8.4 V V = 3.3 V O C1 = 5 V/div ILOAD = 150 mA to 1350 mA T A 25°C V = 50 mV/div O C2 = 50 mV/div IO= 500 mA/div VI= 7.2 V to 12 V VO= 3.3 V LOAD = 800 mA T = 25°C A t − Time = 2 ms/div t − Time = 20 μ s/div Figure 11. Figure 12. TPS62111 TPS62111 OUTPUT RIPPLE START-UP TIMING VI= 8.4 V,OV = 3.3 V LOAD = 100 mA, TA= 25°C VI= 12 V, O = 3.3 V LOAD = 800 mA, TA= 25°C CH1 = 20 mV/div CH1 = 10 V/div CH2 = 5 V/div CH2 = 1 V/div CH3 = 5 V/div CH4 = 500 mA/div CH4 = 200 mA/div t − Time = 5 μ s/div t − Time = 200 μ s/div Figure 13. Figure 14. 10 TPS62110