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tps65136.pdf
temperature range (unless otherwise noted). VALUE UNIT Input voltage range VIN) –0.3 to 7 V Voltage range at EN –0.3 to 7 V Voltage range at L1, OUTN –8 to 7 V Voltage range at FBG –0.5 to 0.5 V Voltage range at L2, OUTP, FB –0.3 to 7 V ESD rating, HBM 2 kV ESD rating, MM 200 V ESD rating, CDM 1 kV Continuous
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PDF
lm2841.pdf
-Q1, SOT (6) 1.60 mm × 2.90 mm LM2842, LM2842-Q1 • Portable Hand-Held Instruments (1) For all available packages, see the orderable addendum at the end of the data sheet. Typical Application Circuit CBOOT L1 VOUT LM2840/1/2-
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PDF
OPTREX_Application_Note.pdf
thickness of the FPC to prevent permanent deformation. The drawing dimensions the FPC as 0.3 mm thick at the stiffener. This is not the thickness where bending occurs. The FPC is 0.120 mm thick in the bend area. The minimum bend radius is 1.2 mm for a 90 degree bend. A 180° bend requires a larger radius
in „Pollin Grafik LCD-Modul OPTREX F-51320AE“ · Mikrocontroller und Digitale Elektronik ·
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Datei
config.h
KEY_PORT in config-<MCU>.h for port pins * - uncomment to enable */ //#define HW_INCDEC_KEYS /* * 2.5V voltage reference for Vcc check * - default pin: PC4 (ATmega 328) * - should be at least 10 times more precise than the voltage regulator * - see TP_REF in config-<MCU>.h for port pin * - uncomment
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Datei
config.h
KEY_PORT in config-<MCU>.h for port pins * - uncomment to enable */ //#define HW_INCDEC_KEYS /* * 2.5V voltage reference for Vcc check * - default pin: PC4 (ATmega 328) * - should be at least 10 times more precise than the voltage regulator * - see TP_REF in config-<MCU>.h for port pin * - uncomment
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PDF
Acer_Aspire_5742G_Compal_LA-5893P_Rev0.1_Schematic.pdf
to +V3.3A rail. GPIO21GPIO65GPIO66 Q19A Structure 2N7002DWH_SOT363-6 ID2 ID1 ID0 +3V +3VS 0 0 0 NEW70 Pull high +3VS at KB926 side 0 0 1 NEW80 5 10K_0402_5% 2 1 R623 EC_LID_OUT# 2.2K_0402_5% 2 1 R602 PCH_SMBCLK 0 1 0 NEW90 A 2.2K_0402_5% 2 1 R626 PCH_SMBDATA
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PDF
C17410452.pdf
ground of the main trace and the IC ground should be at a single point ground (point A in Figure 11-5) Margin tape which is close to the base of OCP. (5) FB/OLP Trace Layout i o P1 S1 P2 S2 D The components connected to FB/OLP pin should be B as close to
in „Test in der Schaltung STR3A400“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
config.h
KEY_PORT in config-<MCU>.h for port pins * - uncomment to enable */ //#define HW_INCDEC_KEYS /* * 2.5V voltage reference for Vcc check * - default pin: PC4 (ATmega 328) * - should be at least 10 times more precise than the voltage regulator * - see TP_REF in config-<MCU>.h for port pin * - uncomment
in „ComponentTester-1.42m problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SFD-056CT.pdf
hrs Note 1,4 Low Temperature Storage Ta=30℃ 240 hrs Note 1,4 High Temperature Ts=70℃ 240 hrs Note 2,4 Operation Low Temperature Ta=20℃ 240 hrs Note 1,4 Operation Operate at High +40℃ , 90%RH 240 hrs Note 4 Temperature and Humidity Thermal Shock 30 ℃/30 min ~ + 80℃/30 min Note 4 for a total 100 cycles
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PDF
IL300.pdf
For best input offset compensation at U1, R2 will equal R3. The value of R1 can easily be calculated from the following. V R1 = R2 ( MONITOR -1) Va 17165 Document Number 83622 www.vishay.com Rev. 1.5, 24-Mar-05 9 IL300 VISHAY Vishay Semiconductors
in „wie linear sind optokoppler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IL300.pdf
For best input offset compensation at U1, R2 will equal R3. The value of R1 can easily be calculated from the following. V R1 = R2 ( MONITOR -1) Va 17165 Document Number 83622 www.vishay.com Rev. 1.5, 24-Mar-05 9 IL300 VISHAY Vishay Semiconductors
in „AC Strom mit IL300 messen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
atmega8China.pdf
波形。设置 COM1x1:0 为2可以产生普通的 PWM,设置 COM1x1:0为 3可以产生反向PWM (参见P 90Table 38 )。要真正从物理引脚上输出信号还必须将OC1x的数据方向DDR_OC1x设置 为输出。OCR1x 和 TCNT1 比较匹配发生时 OC1x 寄存器将产生相应的清零或置位操作, 从而产生 PWM 波形。工作于相位修正模式时 PWM 频率可由如下公式获得: fclk_I/O OCnxPCPWM= -
in „Buch AVR von Günter Schmitt durcharbeiten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Baldor_VS1MX_VFD_Manual.pdf
4.3 A 45 VS1MX82 VS1MX8K1P5 2 1.5 14.8 7 A 90 VS1MX82 VS1MX8K1P5 2 1.5 14.8 7 B 90 VS1MX83 VS1MX8K2P2 3 2.2 22.2 10.5 B 130 200-240V +/-10% 3-Phase Input VS1MX20P5 VS1MX2K0P4 0.5 0.37 3 2.3 A 22 VS1MX21 VS1MX2K0P8 1 0.75 5.8 4.3 A 45 VS1MX22 VS1MX2K1P5 2 1.5 9.2 7 A 90 VS1MX22 VS1MX2K1P5 2 1.5 9.2 7 B 90 VS1MX23 VS1MX2K2P2 3 2.2 13.7 10.5 B 130 VS1MX25 VS1MX2K4 5 4 20.7 18 C 240 380-480V +/-10% 3-Phase Input VS1MX41 VS1MX3K0P8 1 0.75 2.9 2.2 A
in „Frequenzumformer“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
programm.c
255) Dimp=1; } if ((!Dimmerzyklus)&&(Dimp==1)) { Dimmerzyklus=Dimmerzeit; //OCR0=pwmtable[tmp--]; OCR2--; //(char)(4*pow(1.068,(double)tmp--)); if(OCR0==0) Dimp=0; } } Abfragezyklus=Zykluszeit; } } } void Timerinit() { //CounterINIT TCCR2=(1<<WGM21)|(1<<CS22)|(0<<CS20); OCR2=124; //PWM Init TCCR0 |= (1 << WGM01) | (1<<WGM00); TCCR0 |= (1 << CS02)|(0<<COM00)|(1<<COM01); // Fast PWM, CLK/64, Set OC0 on compare match, clear at bottom (inverting mode) OCR0=1; TIMSK|=(1<<OCIE2); } uint8_t getcap() { uint8_t i = 16; KEYDDR &= ~(1<<KEY0); // input KEYPORT |= 1<<KEY0; // pullup on if
in „Dimmfunktion Touchpanel mittels ADC Wandler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TECHLIB_APR07_Dir.txt
12.03.2007 16:38 528.718 90CAN32_64_A0905s.pdf 12.03.2007 16:38 5.714.432 90CAN32_64_B0506.pdf 12.03.2007 16:38 2.937.452 90PWM1_A0606.pdf 12.03.2007 16:38 44.287 90PWM2_3_Errata_A0305.pdf 12.03.2007 16:38 3.269.305 90PWM2_3_F0506
in „STK500 CD ISO Image“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LYT4321E.pdf
1/16 W 0 RV1 LYT4317E BP 4 3 V F1 140 VAC V S 3 5 A X0202MA2BL2 S R FB Q2 A C15 90 - 132 MMBT3904 M 100 nF L VAC N 470 nF 49.9 kΩ 50 V 50 V R8 1% C14 R27 R22 100 Ω 1/16 W C8 10 nF 1/10 W 1 kΩ 1 W 416 V 50 V 1/10 W CY1 470 pF 250 VAC PI-6875-052213 Figure 8. DER
in „PI LYTSwitch, wofuer diese Diode“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
WS2812Ctrl.cpp
// Init TIM2 // -------------------------------------------------------------- RCC->APB1ENR |= RCC_APB1ENR_TIM2EN; // Basic Init TIM2->PSC = 0; // no prescale -> clock TIM2 = 72MHz TIM2->ARR = 90; // Counting 0 .
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PDF
on-semiconductor-rfp70n06-mosfet.pdf
(OFF) Total Gate Charge Q V = 0V to 20V V = 48V, I = 70A, - 120 156 nC g(TOT) GS DD D Gate Charge at 10V Qg(10) VGS = 0V to 10V RL = 0.68Ω - 65 85 nC g(REF) = 2.2mA Threshold Gate Charge Qg(TH) VGS = 0V to 2V (Figure 13) - 5.0 6.5 nC Input Capacitance CISS VDS = 25V, VGS = 0V, f = 1MHz - 2250 - pF (
in „DC Wandler wiederbeleben“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOC3020-M.pdf
Creepage 7 mm e O External Clearance 7 mm p Insulation Thickness 0.5 mm o RIO Insulation Resistance at Ts, VV 109 Ω s IO l t r s r a D r v r O u p t 2 5 / 0 0 o t P e k ) ©2005 Fairchild Semiconductor Corporation www.fairchildsemi.com MOC301XM, MOC302XM Rev. 1.0.2 4 M O C Typical Performance Curves 3
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PDF
juken-x10.504.pdf
of voltage, the second has the advantage to create more smooth movement and more noiseless. 1°/step at minute shaft 60°/step at rotor Figure 13: Partial steps mode 0 5 1 coil current sequence (clockwise rotation) rotor position0 1 2 3 4 5 4 2 + + + Coil 1 0 - - coil 1 3 coil 2 pin Example : 1 Current at Pos 3 + + + Coil 2 0 - - Coil 1 -I bit pattern 2 1 pin 1 0 4 1 pin 2 0 pin 4 1 Coil 2 -I 0 p 1 A pin 3 c 0 3 D . N r Juken Swiss Technology Ltd www.jukenswisstech.com info@jukenswisstech.com 8 /
in „Motor für möglichst kleine Analog-Uhr gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTS7960_v1.1_2004-12-07.pdf
Rev. 1.1, 2004-12-07 High Current PN Half Bridge BTS 7960 Block Description and Characteristics 4.2.2 Switching Times IN t t t t t dr(HS) r(HS) df(HS) f(HS) VOUT 90% 90% ∆V OUT ∆V OUT 10% 10% t Figure 5 Definition of switching times high side (R load to GND) IN t t t t t df(LS) f(LS) dr(LS) r(LS) V
in „H-Brücke für Gleichstrommotor 24V 5A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Infineon-BTS7960-DS-v01_01-en.pdf
Rev. 1.1, 2004-12-07 High Current PN Half Bridge BTS 7960 Block Description and Characteristics 4.2.2 Switching Times IN t t t t t dr(HS) r(HS) df(HS) f(HS) VOUT 90% 90% ∆V OUT ∆V OUT 10% 10% t Figure 5 Definition of switching times high side (R load to GND) IN t t t t t df(LS) f(LS) dr(LS) r(LS) V
in „BTS7960 IS Sensor mit abweichenden Werten.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTS7960_v1.1_2004-12-07.pdf
Rev. 1.1, 2004-12-07 High Current PN Half Bridge BTS 7960 Block Description and Characteristics 4.2.2 Switching Times IN t t t t t dr(HS) r(HS) df(HS) f(HS) VOUT 90% 90% ∆V OUT ∆V OUT 10% 10% t Figure 5 Definition of switching times high side (R load to GND) IN t t t t t df(LS) f(LS) dr(LS) r(LS) V
in „H-Brücken IC schalten bei Belastung ab und nicht wieder an“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt.pdf
ns Total Gate Charge Qg(TOT) V GS = 0 to 20V VDD = 48V, D = 50A, - 125 150 nC RL= 0.96Ω Gate Charge at 10V Qg(10) V GS = 0 to 10V I = 1.45mA - 67 80 nC g(REF) Threshold Gate Charge Q g(TH) V GS = 0 to 2V (Figure 13) - 3.7 4.5 nC Input Capacitance C V = 25V, V = 0V - 2020 - pF ISS DS GS Output Capacitance
in „Motorensteuerung Raspberry PI“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ws2812b.c
.OCNPolarity = TIM_OCNPOLARITY_HIGH; tim1OC1.OCFastMode = TIM_OCFAST_DISABLE; HAL_TIM_PWM_ConfigChannel(&Tim1Handle, &tim1OC1, TIM_CHANNEL_1); tim1OC2.OCMode = TIM_OCMODE_PWM1; tim1OC2.OCPolarity = TIM_OCPOLARITY_HIGH; tim1OC2.Pulse = cc2; tim1OC2.OCNPolarity = TIM_OCNPOLARITY_HIGH; tim1OC2.OCFastMode = TIM_OCFAST_DISABLE; tim1OC2.OCIdleState = TIM_OCIDLESTATE_RESET; tim1OC2.OCNIdleState = TIM_OCNIDLESTATE_RESET; HAL_TIM_PWM_ConfigChannel(&Tim1Handle, &tim1OC2, TIM_CHANNEL_2); HAL_TIM_Base_Start(&Tim1Handle); HAL_TIM_PWM_Start
in „WS2812B mit Lib von Martin Hubáček auf F103“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Acrich2-Applicationnote.pdf
@220V,16W 42.0 300 nd nd D2 2 Stage @120V,16W 128.4 430 D2 2 Stage @220V,16W 70.0 430 rd rd D3 3 Stage @120V,16W 165.0 550 D3 3 Stage @220V,16W 90.0 550 th th D4 4 Stage @120V,16W 183.4 650 D4 4 Stage @220V,16W 100.0 650 Note :
in „Surge Schutzbeschaltung am Netz“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
89C51CC01C-SLSUM.pdf
of input/PWM output. P1.5/AN5/CEX2 Analog input channel 5, PCA module 2 Entry of input/PWM output. P1.6/AN6/CEX3 Analog input channel 6, PCA module 3 Entry of input/PWM output. P1.7/AN7/CEX4 Analog input channel
in „Bit Adressierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRM-01-SPEC.PDF
Protectiontype:Hiccupmode,recoversautomaticallyafterfaultconditionisremoved PROTECTION 3.8~4.9V 5.2~6.8V 10.3~12.2V 12.6~16.2V 15.7~20.3V 25.2~32.4V OVERVOLTAGE Protectiontype:Shutoffo/pvoltage,clampingbyzenerdiode WORKINGTEMP. -30~+85℃(Referto"DeratingCurve") WORKINGHUMIDITY 20~90%RHnon-condensing
in „Jalousie Steuerung mit Kleinspannung+ESP32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ioat91sam7se512.h
_PWM2 ((unsigned int) AT91C_PIO_PA2) // #define AT91C_PA2_A2 ((unsigned int) AT91C_PIO_PA2) // #define AT91C_PIO_PA20 ((unsigned int) 1 << 20) // Pin Controlled by PA20 #define AT91C_PA20_RF ((unsigned int
in „AT91SAM7SE512 Einstieg“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mp1584.pdf
output when the MP1584 is at no load. In order to absorb this small amount inductor current can be calculated by: of current, keep R2 under 40KΩ. A typical value for R2 can be 40.2kΩ. With this value, R1 I I VOUT 1 VOUT
in „Spannungsregelung mit MP1584 und MP2307“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MP1584.pdf
output when the MP1584 is at no load. In order to absorb this small amount inductor current can be calculated by: of current, keep R2 under 40KΩ. A typical value for R2 can be 40.2kΩ. With this value, R1 I I VOUT 1 VOUT
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PDF
mp1584.pdf
output when the MP1584 is at no load. In order to absorb this small amount inductor current can be calculated by: of current, keep R2 under 40KΩ. A typical value for R2 can be 40.2kΩ. With this value, R1 I I VOUT 1 VOUT
in „Step Down - Stabil 5V 3A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mp1584.pdf
output when the MP1584 is at no load. In order to absorb this small amount inductor current can be calculated by: of current, keep R2 under 40KΩ. A typical value for R2 can be 40.2kΩ. With this value, R1 I I VOUT 1 VOUT
in „Empfehlung Step Down Converter IC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ATMega128CAN11_short.pdf
Prescaler Information Input Capture with Noise Canceler External Event Counter 3-Output Compare or 16-Bit PWM Output – 8-channel, 10-bit SAR ADCon 8 Single-ended channels 7 Differential Channels 2 Differential Channels With Programmable Gain at 1x, 10x, or 200x – On-chip Analog Comparator – Byte-oriented Two-wire
in „ATmega128CAN11“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMega128CAN11_short.pdf
Prescaler Information Input Capture with Noise Canceler External Event Counter 3-Output Compare or 16-Bit PWM Output – 8-channel, 10-bit SAR ADCon 8 Single-ended channels 7 Differential Channels 2 Differential Channels With Programmable Gain at 1x, 10x, or 200x – On-chip Analog Comparator – Byte-oriented Two-wire
in „ATmega128CAN11“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM2621.pdf
and 14V. It has an.17 Ω Internal MOSFET g internal 0.17Ω N-Channel MOSFET power switch. Efficien-o 90% Regulator Efficiency e cies up to 90% are achievable using the LM2621. n 80 µA Typical Operating Current , The high switching frequency (adjustable up to 2MHz) of theuaranteed Supply Current In Shutdown
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PDF
en.DM00091010.pdf
2 in PWM 2 mode with the desired delay: write the OC2M bits to ‘111’ and the CC2S bits to ‘00’ in the TIMx_CCMR1 register, Select OC2REF as trigger output on TRGO: write the MMS bits in the TIMx_CR2
in „EFM32F030 und Standby“ · Mikrocontroller und Digitale Elektronik ·
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Datei
armbian_modules.txt
panel-ilitek-ili9322 panel-ilitek-ili9881c ttm lima tinydrm mi0283qt ili9341 mipi-dbi analogix-anx6345 analogix_dp_i2c sun6i-dsi pwm_bl lcd generic_bl block2mtd mtd_blkdevs spinand nandcore mtdblock mtdblock_ro gnss-sirf gnss parport parport_ax88796 uio uio_dmem_genirq uio_pdrv_genirq fb_hx8357d fb_ssd1325 fb_tinylcd
in „Samba auf Banana Pi Pro installieren“ · PC Hard- und Software ·
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PDF
LT1513_data_en.pdf
Voltage (LT1513) Measured at FBPin –107 –100 –93 mV VFB 0V, V C 0.8V –110 –100 –90 mV IFBnput Current VIFB= VIREF(Note 2) 10 25 35 A IFBeference Voltage Line Regulation 2.7V V IN 25V, VC= 0.8V 0.01 0.05 %/V IFBVOS IFBoltage Offset
in „6V Bleigel-Akku mit 12V/230mA Solarpanel laden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny15zu25.pdf
Name in ATtiny25 $33 TCCR0 TCCR0B $2C SFIOR GTCCR $1E EEAR EEARL $06 ADCSR ADCSRA 7.2 Moved Registers The below table summarizes the registers which have been moved. Table 7-2. Changes to Register Location. Register Name Address in ATtiny15
in „DCC Decoder“ · Projekte & Code ·
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PDF
FQP50N06L-244346.pdf
GS = 0 V, C oss Output Capacitance f = 1.0 MHz -- 445 580 pF C rss Reverse Transfer Capacitance -- 90 120 pF Switching Characteristics td(on) Turn-On Delay Time -- 20 50 ns V DD= 30 V, D = 26.2 A, tr Turn-On Rise Time R G= 25 Ω -- 380 770 ns td(off) Turn-Off Delay Time -- 80 170 ns (Note 4) tf Turn-Off
in „Mosfet Treiber (low side) mit current sense Beschaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR-DD-Product-Brief-DS40002215A-1.pdf
AVR DD MCU (AVR DD) family of microcontrollers is using the AVR CPU with hardware multiplier running at clock speeds up to 24 MHz. They include 16/32/64 KB of Flash, 2/4/8 KB of SRAM, and 256 bytes of EEPROM. The microcontrollers are available in 14-, 20-, 28-, 32-pin packages. The family uses the latest
in „AVR-DD im Anrollen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
msp430f5529.pdf
the outpSS .o V (2) The output voltage reaches at least 10% and 90% CC at the specified toggle frequency. Copyright © 2009–2018, Texas Instruments Incorporated Specifications 27 Submit Documentation Feedback Product Folder
in „Tastatur komplett selbst erstellen“ · PC Hard- und Software ·
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Datei
PWM_test_2.c
88 * Clock frequency : clock 20 Mhz Ein- und Ausgänge PORT B 0 (14) = PORT B 1 (15) = (OC1A/PCINT1) PWM Ausgabe, PORT B 2 (16) = (SS/OC1B/PCINT2) PWM Ausgabe, PORT B 3 (17) = PORT B 4 (18) = PORT B 5 (19) = PORT B 6 ( 9) = PORT B 7 (10) = PORT C 0 (23) = PORT C 1 (24) = PORT C 2 (25) = PORT C 3 (26) =
in „Skalierung von Integerwerten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc4113.pdf
Not bit addressable 16 AT80C51RD2 4113D–8051–01/09 AT80C51RD2 9. Timer 2 The Timer 2 in the AT80C51RD2 is the standard C52 Timer 2. It is a 16-bit timer/counter: the count is maintained by two eight-bit timer registers, TH2 and
in „STC12C5A60S2 (a.k.a 80C51) programieren mit mySmartUSB light“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HD66766R.PDF
Mode (HWM=1) Table 50 (Vcc = 2.2 to 2.4 V) Item Symbol Unit Test Min Typ Max Condition Bus cycle time Write tCYCW ns Figure 2 200 — — Read tCYCR ns Figure 2 800 — — Write low-level pulse width PW LW ns Figure 2 90 — — Read low-level pulse width PW ns Figure 2 350 — — LR Write high-level pulse width PW HW ns Figure 2 90 — — Read high-level pulse width PW HR ns Figure 2 400 — — Write/Read rise/fall time tWRr, WRf ns Figure 2 — — 25 Set up time t ns Figure 2
in „LCD-Modul F51661GNCJU-MLW-AA * Info *“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Praktikumsbeleg_A3_1_.pdf
Drehzahl 14 12 n10 i 8 0 6 1 4 * 2 0 0 10 20 30 40 50 60 70 80 90 100 110 120 t in sek Drehzahl Last geregelter Ankerstrom 0.35 0.3 0.25 0.2 A 0.15 0.1 0.05 0 0 10 20 30 40 50 60 70 80 90 100 110 120 t in sek Abbildung 21: Kennlinien
in „Frage zu Übertragungsfunktion, Sprungantwort“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Lenovo_schematic.pdf
CC19 PCH_GPIO66 RC113 1 @ 2 1K_0402_5% 7 2 PCH_GPIO90 CC20 CC21 and PCIE net of GPU B23 AR10 USB20_N3 USB20_N3 {45} 6 3 PCH_GPIO91 A23 PETN5_L1 USB2N3 AT10 USB20_P3 GPIO66, Internal 20K PD 5 4 PCH_GPIO92 PETP5_L1 USB2P3 USB20_P3
in „Pin Belegung bei dem Chip“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TIM2-Master_TIM1-Slave_example.c
GPIO_SPEED_FREQ_LOW; GPIO_InitStruct.Alternate = GPIO_AF1_TIM1; HAL_GPIO_Init(GPIOA, &GPIO_InitStruct); } void timer2_Init(){ /* TIM2 is on APB1 with clock speed 90MHz */ /* activate clock for TIM2 peripheral */ __HAL_RCC_TIM2_CLK_ENABLE(); /* Prescaler */ TIM2->PSC = 44999; //44999; /* Oszillator might have problems. Prescaler of 44999 should get at period of 0,0005 but doesn't */ /* set counter mode */ TIM2->CR1 &= ~(TIM_CR1_DIR | TIM_CR1_CMS); TIM2->CR1 |= TIM_COUNTERMODE_UP; /* Auto-Reload Register */ TIM2->ARR = 19999; //19999; /* Set Clock
in „STM32 Timer Cookbook PWM - Beispiel 6.2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TPG051_Spec_1_3.pdf
R/W [3:2]: YCbCr sequence [4]: YUV input transfer matrix [5]: UV offset for matrix A [0]: Power management [1]: CP_CLK output on/off 0x04 0x0F R/W [2]: PWM output on/off [3]: Pre-charge on/off [5:4]: Output driver
in „LCD von TerAsic mit Cyclone II von Altera“ · FPGA, VHDL & Co. ·