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OpAmp_MC3407x_KapazitiveLast.pdf
10 30 − Sink 20 30 − 20 30 − Common Mode Rejection CMR 80 97 − 70 97 − dB RS≤ 10 kW, VCM = VICR TA= 25°C Power Supply Rejection SR = 100 W) PSR 80 97 − 70 97 − dB VCC/VEE = +16.5 V/−16.5 V to +13.5 V/−13.5
in „Push/Pull in spannungsgeregelter Stromquelle / Frage zur Auslegung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
_1); GPIO_PinAFConfig(GPIOA, GPIO_PinSource10, GPIO_AF_1); // Configure USART1 pins: Rx and Tx -> PA9+PA10 (datasheet) GPIO_InitStructure.GPIO_Pin = GPIO_Pin_9 | GPIO_Pin_10; GPIO_InitStructure.GPIO_Speed = GPIO_Speed_50MHz; GPIO_InitStructure.GPIO_Mode
in „SPI-RAM-Bank an STM32F0-Discovery - write, kein read“ · Mikrocontroller und Digitale Elektronik ·
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LQ092B5DW01.pdf
Pulse width THp 5 8 THb-5 ck Vertical sync. Cycle TV (245) 247 270 line Signal [VSY] Pulse width TVp 2 10 TV-2 line Freqency 59 60.03 61 Hz Horizontal display period THd - 960 - ck HSY_DCLK phase difference THc A-8 A A+8 ns ※A=Tch (1/2DCLK) HSY_VSY phase difference TVh -10 0 10 ck Vertical display invalid
in „Anschluss TFT-LCD-Modul SHARP LQ092B5DW02 vs. LQ092B5DW01“ · Mikrocontroller und Digitale Elektronik ·
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Schaltplan einer Pumpensteuerung mit Mikrocontroller
VAC VAC PS1 1N4001 240 V AC / 12 V DC L 7805 CV C1 330 uF C2 100 nF M1 fresh pump M2 waste pump D4 SR204 Q1 IRL 510 R21 10 k R22 1 k Q2 BC 677 R23 10 k uC1 Attiny84A-PU RESET PB3 PB2 XTAL2/PB1 XTAL1/PB0 PA7 PA6 PA5 PA4 PA3 PA2 AREF/PA0 VCC SW1 upper SW2 lower SW3 waste SW4 fresh SW5 QUIT ALARM SW6 RESET RV1 10 k R1 10 k R2 10 k R3 10 k R4 10 k R5 10 k R6 10 k Q3 BC547 R11 470 R12 470 D2 fresh empty D3 waste full GND
in „DAC-Pumpensteuerung: 5V PWM --> 12 V analog“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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Schaltplan einer Pumpensteuerung mit ATtiny84A
VAC 240 V AC / 12 V DC, PS1, 1N400L, U7 7805 CV, C1 330 nF, C2 100 nF, L 2.2 mH, D4 SR204, D5 1N4001, M1 fresh pump, M2 waste pump, C4 220 uF, Q1 IRL 510, R21 10 k, SW1 upper, SW2 fresh, SW3 lower, SW4 waste, SW5 RESET, SW6 QUIT ALARM, R22 1 k, Q2 BD 677, R23 10 k, RV1 10 k, uC1 ATtiny84A-PU, C3 100 uF, R1 10 k, R2 10 k, R3 10 k, R4 10 k, R5 10 k, R6 10 k, D2 fresh empty, D3 waste full, R11 470, R12 470, R13 1.5 k, Q3 BC547, BZ1 ALARM
in „DAC-Pumpensteuerung: 5V PWM --> 12 V analog“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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lm2576.pdf
Table 1. Diode Selection Guide Schottky Fast Recovery VR 3A 4A–6A 3A 4A–6A 20V 1N5820 1N5823 MBR320P SR302 30V 1N5821 50WQ03 MBR330 1N5824 31DQ03 SR303 The following The following 40V 1N5822 MBR340 diodes are all diodes are all rated to 100V MBR340 50WQ04 rated to 100V 50WF10 31DQ04 1N5825 31DF1 MUR410 HER302 SR304 HER602 50V MBR350 50WQ05 31DQ05 SR305 60V MBR360 50WR06 DQ06 50SQ060 SR306 Table 2. Inductor Selection by Manufacturer's Part Number Inductor Code Inductor Value Schott (1) Pulse Eng.(2) Renco (3)
in „einstellbare Konstantstromquelle bis 2A Vin bis 27V“ · Analoge Elektronik und Schaltungstechnik ·
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ax206dpf_dpf_v1.1.pdf
. Q 9 57 @ 通收 S P D V P P P P L P P P P 1 R 4 R 4 0 6 收通 放 6. 0P 73 60P V C 02P 42 0. 2P P D 4 2 L 10 R R 收通 放 50P M 71P J 即 V C 2 9K 视屏 放 TNI 83 40P PDBSU 32 7. 1P S R 2 K N 收收 放 0 P 0 P 4. 0P 93 30P MDBSU 22 PD 2 I 屏即 2 C 10 C 1 3. 0P 04 20P 51P 12 MD 电 J 72 2 收 收 2 2. 0P 14 02 5. 1P 升 屏 2 C 1 通收也
in „Ansteuerung Mini-LCD aus Foto-Schlüsselanhänger“ · Mikrocontroller und Digitale Elektronik ·
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IP_Protocol_AVR-Xx100.pdf
VSMONI ?<CR> ○ ○ ○ - ○ - SC48P Set Resolution to 480p/576p VSSC48P<CR> <- ○ ○ ○ ○ ○ - ○ ○ ○ ○ ○ - SC10I Set Resolution to 1080i VSSC10I<CR> <- SC72P Set Resolution to 720p VSSC72P<CR> <- ○ ○ ○ ○ ○ - SC10P Set Resolution to 1080p VSSC10P<CR> <- ○ ○ ○ ○ ○ - SC10P24 Set Resolution to 1080p:24Hz VSSC10P24
in „Mit Raspberry über TCP/IP auf AV-Receiver zugreifen und auf Events reagieren“ · Softwareentwicklung ·
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Datei
armbian_modules.txt
pwrseq_simple sdhci ushc iscsi_tcp raid_class ch libiscsi libosd libiscsi_tcp scsi_transport_iscsi sr_mod pinctrl-axp209 pinctrl-madera rng-core dax ccree sun4i-ss bcache multipath dm-round-robin dm-multipath dm-verity faulty dm-flakey dm-thin-pool dm-writecache raid1 raid10 dm-mod dm-cache md-mod dm-log-writes
in „Samba auf Banana Pi Pro installieren“ · PC Hard- und Software ·
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stm32l431_reference_manual.pdf
. . . . . . . . . . . . . . . . . . . . 102 3.7.9 Flash PCROP Start address register (FLASH_PCROP1SR) . . . . . . . 104 3.7.10 Flash PCROP End address register (FLASH_PCROP1ER) . . . . . . . . 104 3.7.11 Flash WRP area A address register (FLASH_WRP1AR) . . . . . . . . . . 105 3.7.12 Flash WRP area B
in „ADC differential mode“ · Mikrocontroller und Digitale Elektronik ·
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stm32l431_reference_manual.pdf
. . . . . . . . . . . . . . . . . . . . 102 3.7.9 Flash PCROP Start address register (FLASH_PCROP1SR) . . . . . . . 104 3.7.10 Flash PCROP End address register (FLASH_PCROP1ER) . . . . . . . . 104 3.7.11 Flash WRP area A address register (FLASH_WRP1AR) . . . . . . . . . . 105 3.7.12 Flash WRP area B
in „Offset Data alignment“ · Mikrocontroller und Digitale Elektronik ·
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stm32l431_reference_manual.pdf
. . . . . . . . . . . . . . . . . . . . 102 3.7.9 Flash PCROP Start address register (FLASH_PCROP1SR) . . . . . . . 104 3.7.10 Flash PCROP End address register (FLASH_PCROP1ER) . . . . . . . . 104 3.7.11 Flash WRP area A address register (FLASH_WRP1AR) . . . . . . . . . . 105 3.7.12 Flash WRP area B
in „DMA one shot mode“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ausgabe.asm
> * Write text to 16x2 LCD display. * 2003-04-08 fixed bug in lcd_init * $Id: lcdhh.asm,v 1.1 2002/10/14 12:34:30 dosuser Exp dosuser $ * Addressmap RAM EQU $0 ;RAM section STACK EQU RAM+$800 ;Stack section PGM EQU RAM+$C00 ;Program start ROM EQU $800000 ;ROM section STACKSZ EQU 1024 ;Max stack size
in „Asynchrone serielle Schnittstelle SCI 68000“ · Mikrocontroller und Digitale Elektronik ·
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Bestückungsdruck einer grünen Leiterplatte
UCC JB0 GND PC 9 8 7 6 5 4 3 15 14 UCC PB PA CL1 RB0 10k 3.9u C3Y C3X 10u CLK GND DIO C2Y 100n 100n C2X 13 PA 12 C1Y 11 10u 10 9 C1X 100n 8 15 ICµC 14 PB 13 GND 12 11 10 GND 13 14 15 7 6 5 4 3 2 1 0 UCC/GND PA LUDDA AGND RR CA1 10n CA2 1u CA3 100n SR LED1
in „STM32F103C6T6A Lässt sich nicht programmieren“ · Mikrocontroller und Digitale Elektronik · · Platinenfotos
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lm2574.pdf
selection guide. Table 1. Diode Selection Guide 1-A DIODES V R SCHOTTKY FAST RECOVERY 1N5817 20 V SR102 MBR120P 1N5818 SR103 The following diodes are all rated to 100 V 30 V 11DQ03 MBR130P 10JQ030 1N5819 SR104 40 V 11DQ04 11DF1 11JQ04 10JF1 MBR140P MUR110 HER102 MBR150 50 V SR105 11DQ05 11JQ05 MBR160
in „[V] kleines Konvolut ältere DIL / DIP ICs (8€)“ · Markt ·
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M7000_US_2003.pdf
manual release lever (pg 85) RG – Corrosion protected (pg 85) x▯ Top sticks x▯ Connecting wire sleeves SR – Dust protection (pg 85) IP66 – Sealed brake (pg 85) BSG – Fast brake rectifier (pg 78) IR – Brake current relay (pg 82) www.nord.com 10 M7000 / 2003 High Performance – Induction Motor 230/460V-60Hz
in „Frequenzumformer“ · Analoge Elektronik und Schaltungstechnik ·
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Signal_Conditioning_Piezoelectric_Sensors_sloa033a.pdf
chosen as high as possible and interface cabling reduced to a minimum. For the TLV2771 op amp, Rb = 10 M will result in a typical offset of 60 V over the commercial temperature range. The biasing shown will put the output voltage at 1/2 Vcc with no input. The output will swing above and below this dc
in „Piezo als Druckmesser“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sloa033a.pdf
chosen as high as possible and interface cabling reduced to a minimum. For the TLV2771 op amp, Rb = 10 M will result in a typical offset of 60 V over the commercial temperature range. The biasing shown will put the output voltage at 1/2 Vcc with no input. The output will swing above and below this dc
in „OP Verstärker scheint zu schwingen“ · Analoge Elektronik und Schaltungstechnik ·
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fsp_technology_fsp202-4fs01_runtkb074wjqz_psu.pdf
V-LED SC101:3 L 4 SF46G T4AH/250V " 4 + + D902 + + 47K C602 R901 " KBJ406G2 2 1 1 : : 68uF,450V T101:10 BD101 " " 0 0 C601 T101:7 A 10681-D u 0 3 6 6 68uF,450V GND A VA101 . 1 3 C6684P C105P L L 0 C T101:5 H " C104 N.C. SR560 470uF,25V T101:11 D401 C401 S 18V/1A " " 18V SC101:1 N P1 L603:2 + + 1 2 5 LF103:2 LF101:1 D402 4 0 0 0 0 0 CY104 CY105 " " UF4007 10 AOTF8N50 SR560 R R 4 4 R 4 221 221 CY102 CY103 D104 R121 4148 Q101 T101:9 K K K RK K K 681 681 104 D106 T101:8 1 1 1 1 1 1 C120 GND FB205 FBEAD R634 5.1 C402 102 BEAD 43K R123 104 470uF,25V C234 15 Vcc
in „Welche Diode ist das?“ · Analoge Elektronik und Schaltungstechnik ·
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datasheet.pdf
Output Voltage V (VCC = +30V) o T amb = +25 C R L 2k 26 27 T min Tamb Tmax. 26 T amb = +25 C R L 10k 27 28 T min Tamb Tmax. 27 (VCC = +5V, R o 2k) T amb = +25 C 3.5 T min Tamb Tmax. 3 VOL Low Level Outpot Voltage (R L 10k ) mV T amb = +25 C 5 20 T min Tamb Tmax. 20 SR Slew Rate V/ s V CC
in „LM324 - Versorgungsspannung“ · Mikrocontroller und Digitale Elektronik ·
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SF_FOC_PMSM_HALL_UG.pdf
. Revision 0 23 Design and Implementation Table 2-1 • The functions Implemented in MSS (continued) Sr. No. Function Description 10 FOC_Calculation() This function also integrates the ramp up, ramp down profile for motor start, stop, and direction change based on the ramp profile enable selection. In
in „SVPWM Variante für FOC PMSM“ · Mikrocontroller und Digitale Elektronik ·
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70622B.pdf
FIFOEMPTY TXDONE from SPI Data 15 b14 b13 b12 b10 b9 FIFO b8 b6 b5 b3 b2 b1 0 b0 Data TX XXX b0 b1 b2 b3 b4 b5 b6 b7 b8 b9 b10 b11 b12 b13 b14 b15 XXX (from SR) 3.10.2 RX PROCESSING The host microcontroller software must therefore man- age the transfer
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70622B.pdf
FIFOEMPTY TXDONE from SPI Data 15 b14 b13 b12 b10 b9 FIFO b8 b6 b5 b3 b2 b1 0 b0 Data TX XXX b0 b1 b2 b3 b4 b5 b6 b7 b8 b9 b10 b11 b12 b13 b14 b15 XXX (from SR) 3.10.2 RX PROCESSING The host microcontroller software must therefore man- age the transfer
in „Wie genau funktioniert die drahtlose Kommunikation?“ · HF, Funk und Felder ·
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rm0444-stm32g0x1-advanced-armbased-32bit-mcus-stmicroelectronics.pdf
event: 0: High level or rising edge 1: Low level or falling edge 4.4.5 Power status register 1 ( PWR_SR1 ) Address offset: 0x10 Reset value: 0x0000 0000. This register is not reset when exiting Standby modes and with the PWRRST bit in the APB peripheral reset register 1 (RCC_APBRSTR1). Access: 2 additional
in „Problem mit Clock Configuration beim STM32G031“ · Mikrocontroller und Digitale Elektronik ·
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ADA4870.pdf
.PowerSupplyRejection(PSR)vs.Frequency,V S=±20V 100 1000 z z H H / / n p ( ( 100 S S I O INN N N E 10 T G N T R L R V U 10 T C U U P P INP I I 1 0 1 0 1 10 100 1k 10k 100k 1M 10M 5 1 10 100 1k 10k 100k 1M 10M 5 2 2 FREQUENCY (Hz) 1 FREQUENCY (Hz) 1 Figure59.InputVoltageNoisevs.Frequency Figure62.InputCurrentNoisevs.Frequency
in „Spannungsfolger mit ADA4870“ · Analoge Elektronik und Schaltungstechnik ·
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LT1677.pdf
29 mA 0°C ≤ A ≤ 70°C ● 18 27 mA –40°C ≤ TA≤ 85°C ● 17 25 mA SR Slew Rate (Note 13) AV= –1 1.7 2.5 V/µs RL≥ 10k, 0°C ≤ A ≤ 70°C ● 1.5 2.3 V/µs R ≥ 10k, –40°C ≤ T ≤ 85°C ● 1.2 2.0 V/µs L A GBW Gain Bandwidth Product (Note 11) fO= 100kHz 4.5 7.2 MHz f = 100kHz, 0°C
in „LT1677, Output Voltage Swing“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LT1677fa.pdf
29 mA 0°C ≤ A ≤ 70°C ● 18 27 mA –40°C ≤ TA≤ 85°C ● 17 25 mA SR Slew Rate (Note 13) AV= –1 1.7 2.5 V/µs RL≥ 10k, 0°C ≤ A ≤ 70°C ● 1.5 2.3 V/µs R ≥ 10k, –40°C ≤ T ≤ 85°C ● 1.2 2.0 V/µs L A GBW Gain Bandwidth Product (Note 11) fO= 100kHz 4.5 7.2 MHz f = 100kHz, 0°C
in „Nachbau TC1 Seismometer“ · Analoge Elektronik und Schaltungstechnik ·
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Ethernet_Hub_LXT914PE.pdf
Attachment Unit Interface (AUI) • Programmable DTE/MAU interface on AUI port port and four 10BASE-T transceivers. The AUI port is • Seven integrated LED drivers with four unique mode selectable: DTE mode allows connection of an exter- operational modes nal transceiver (10BASE2, 10BASE5, 10BASE-T
in „Ethernet Transceiver und Hub auf einer Platine verbinden“ · Mikrocontroller und Digitale Elektronik ·
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NCP4300_1_.pdf
Swing, LowL(R = 10 k ID= −1.0 V) VOL mV TA= 25⋅C − 17 100 TA = 0⋅C to 105⋅C − − 100 Slew Rate (in= 0.5 to 2.0 CC = 15 V, L = 2.0 k ,vA = 1.0L C = 100 pF) SR 0.3 0.5 − V/ s Unity Gain Bandwidth CC = 30 V,LR = 2.0 k L C
in „OP mit interner Ref-Spannung NCP4300“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tc_example3.c
ms seconds counter tc_tick++; // Clear the interrupt flag. This is a side effect of reading the TC SR. tc_read_sr(&AVR32_TC, TC_CHANNEL); // specify that an interrupt has been raised print_sec = 1; // Toggle GPIO pin 3 (this pin is used as a regular GPIO pin). gpio_tgl_gpio_pin(AVR32_PIN_PA03); } /*!
in „AVR32 UC3B164 Counter/Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst.s
/STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) .equ USART3_BASE , 0x40004800 .equ USART3_SR , USART3_BASE + 0x00 .equ USART3_DR , USART3_BASE + 0x04 .equ USART3_BRR , USART3_BASE + 0x08 .equ USART3_CR1 , USART3_BASE + 0x0C .equ USART3_CR2 , USART3_BASE + 0x10 .equ USART3_CR3 , USART3_BASE +
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
myfirst168.s
/STM32F4 chips: pp. 1018 in RM0090 (dm00031020-stm*.pdf) .equ USART3_BASE , 0x40004800 .equ USART3_SR , USART3_BASE + 0x00 .equ USART3_DR , USART3_BASE + 0x04 .equ USART3_BRR , USART3_BASE + 0x08 .equ USART3_CR1 , USART3_BASE + 0x0C .equ USART3_CR2 , USART3_BASE + 0x10 .equ USART3_CR3 , USART3_BASE +
in „STM32CubeIDE - kann man dem gdb server einen Schalter mitgeben?“ · Mikrocontroller und Digitale Elektronik ·
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9xp14_low-noise_isolated-pwr.pdf
common-mode noise, if left 434 9x.14. Low-Noise Isolated Power The Art of Electronics – The x-Chapters RM10 core, 161 bifilar turns of #28 magnet wire (110mH). fT 4MHz) and slew rate (100kHz at 10V peak ampli- The inductance was chosen so that its self-resonant fre- tude requires at least SR=6.3V/ μs) to do
in „DCDC-Übertrager, kann man die selber wickeln?“ · Analoge Elektronik und Schaltungstechnik ·
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LIS331DLH.pdf
START START t su(SR) START SDA tw(SP:SR) t t tsu(SDA) th(SDA) f(SDA) r(SDA) tsu(SP) STOP SCL th(ST) tw(SCLL) w(SCLH) r(SCL) f(SCL) 1. Data based on standard I C protocol requirement, not tested in production 2. A device
in „Messen mit LIS331DLH“ · Mikrocontroller und Digitale Elektronik ·
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Playtronic_NTL05-_Netzgeraet.pdf
r 1 10 6. Generatorteil wie unlen 6e- Aluminium-Geheuse mit allenerforderlichen Stanzungen, gestanzter und bedruokter Frontplatte, kompt. Montagsmaerial, Wermeleltpasto, lusfiihrlicherdeutschsprachiger Bauanleitung
in „Playtronic ptm elektronik - NTL05 - Handbuch- o. Serviceunterlagen gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
stm32f107.c
GPIO_ETH_MediaInterfaceConfig(GPIO_ETH_MediaInterface_RMII); /* Set PLL3 clock output to 50MHz (25MHz /5 *10 =50MHz) */ RCC_PLL3Config(RCC_PLL3Mul_10); /* Enable PLL3 */ RCC_PLL3Cmd(ENABLE); /* Wait till PLL3 is ready */ while (RCC_GetFlagStatus(RCC_FLAG_PLL3RDY) == RESET) {} /* Get PLL3 clock on PA8 pin (MCO
in „lwIP 1.4.1 + freeRTOS 8.2.3 + stm32f107vb“ · Mikrocontroller und Digitale Elektronik ·
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Datei
disassembly.s
scroll_region_valid: %s origin_mode: %s\n" .LC5: .string "ox->x: %u %ld oy->y: %u %ld\n" .LC6: .string "sr top: %u sr bottom: %u\n" .LC7: .string "1 ax: %ld ay: %ld\n" .LC8: .string "top: %u bottom: %u\n" .LC9: .string "2 ax: %ld ay: %ld\n" .LC10: .string "!!!: %ld %u %ld\n" .LC11: .string "fx: %ld fy: %ld
in „Stack corruption, aber valgrind und asan finden nichts, was kann ich noch tun?“ · Softwareentwicklung ·
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LM2677_2000.pdf
1 C8 100 1 C6 1 C8 1 C8 33 1 C8 1 C10 2 C10 47 1 C8 1 C9 2 C10 15 to 20 68 1 C8 1 C9 2 C10 100 1 C8 1 C9 1 C10 33 2 C9 2 C11 2 C11 20 to 30 47 1 C10 1 C12 1 C11 68 1 C9 1 C12 1 C11 100 1 C9 1 C12 1 C11 10 4 C13 8 C12 15 3 C13 5 C12 22 No
in „On-Chip Induktivität“ · Analoge Elektronik und Schaltungstechnik ·
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TDA_7294_V_100W_VERSTAERKER.pdf
Resistance Junction-case Max 1.5 ⋅C/W ELECTRICAL CHARACTERISTICS (Refer to the Test Circuit V = 〉 35V,SR = 8 , G =L30dB; V R g= 50 ; Tamb =25⋅C, f = 1 kHz; unless otherwisespecified. Symbol Parameter Test Condition Min. Typ. Max. Unit VS Supply Range 〉 10 〉 40 V Iq Quiescent Current 20 30 60 mA Ib Input
in „100W-Verstärker“ · Analoge Elektronik und Schaltungstechnik ·
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cmx602b_3_.pdf
equations for this circuit are; Differential voltage gain V / V(b-a) = R8/R6 R6 = R7 = 470kΩ AOP R10 = 160kΩ R9 = R8 x R10 / (R8 - R10) The target differential voltage gain depends on the expected signal levels between the A and B wires and the CMX602B's internal threshold levels, which are proportional
in „EM92547 Caller ID FSK Decoder, Rufnummernanzeige“ · Mikrocontroller und Digitale Elektronik ·
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Datenblatt__CMX602B_ds-1627030.pdf
equations for this circuit are; Differential voltage gain V / V(b-a) = R8/R6 R6 = R7 = 470kΩ AOP R10 = 160kΩ R9 = R8 x R10 / (R8 - R10) The target differential voltage gain depends on the expected signal levels between the A and B wires and the CMX602B's internal threshold levels, which are proportional
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DM00109015.pdf
Conditions Min. Typ. Max. Unit (3) RL= 10 k, C L 100 pF, SR Slew rate Vout= 0.5 V to CC - 0.5 V 0.04 V/s f = 1 kHz 100 nV en Equivalent input noise voltage ----- f = 10 kHz 96 Hz (4) T = 25 °C 5 tinit Initialization time ms -40 °C < T< 125
in „Frage zu OpAmp dual supply“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
blink.c
#include "stm32f4xx.h" void TIM1_UP_TIM10_IRQHandler () { TIM10->SR = (uint16_t)~TIM_IT_Update; GPIOD->ODR ^= (1 << 14); } int main () { // Init GPIO's for LED's RCC_AHB1PeriphClockCmd(RCC_AHB1ENR_GPIODEN, ENABLE); GPIO_InitTypeDef GPIO_InitStructure
in „STM32F4: Timerinterrupts nichtdeterministisch“ · Mikrocontroller und Digitale Elektronik ·
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Schaltplan eines Decoders und binären Zeitinformationsanzeigers
ph Praxis & Hobby +5V St SA 14 1 74LS02 12k 1N 4148 10k SR 2 300 Stop 1 500 2 500 40 8 500 10 500 20 m 1N 4148 33u 2.7V 74LS122 14 1 450u 50u T 74LS164 1 14 1 8 7 74LS164 500 8 500 10 500 40 500 20 h grün m rot Stop = gelb 300 1 300 2 300 8 300 10 300 20
in „DCF-Uhr from Scratch“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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Schaltplan mit ATtiny85 und MIC2297-42BML
PB2, XTAL1/PB3, XTAL2/PB4, RESET/PB5, GND, 4, PWM, PCINT, 7, 6, 2, 3, 1, 5, 1uF16V, C5, C4, 0,22uF10V, VIN, EN, BRT, AGND, REF, COMP, P_GND, SW, OVP, MIC2297-42BML, L1, 22uH, D10, D6, LED W5mm, D7, LED W5mm, D8, LED W5mm, D9, LED W5mm, C3, 0,1uF10V, FB, RB 10, C6, 0,47uF50V, GND, signal, PIR MH-SR602
in „ATtiny85, energiesparende Schaltung mit PIR und LED FadeIn/FadeOut (Newbie)“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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PDF
LIS302DL.pdf
300 20 + 0.1C (3) 300 b h(ST) START condition hold time 4 0.6 t Repeated START condition 4.7 0.6 su(SR) setup time µs tsu(SP) STOP condition setup time 4 0.6 Bus free time between STOP tw(SP:SR) 4.7 1.3 and START condition Figure 4. I2C Slave timing diagram (4) REPEATED START START tsu(SR) SDA tw(SP:SR
in „Verwirrung mit LIS302“ · Mikrocontroller und Digitale Elektronik ·
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SRV05-4.pdf
tr = 8µs V25.00 80 td = 20µs C P - I 70 -t e 20.00 o 60 e g t l e 50 V15.00 r g P 40 i td =PP /2 p10.00 30 a Waveform C Parameters: 20 10 5.00 tr = 8µs td = 20µs 0 0.00 0 5 10 15 20 25 30 0.00 2.00 4.00 6.00 8.00 10.00 12.00 Time (µs) Peak Pulse Current - PP (A) Forward Voltage vs. Forward Current Normalized
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IC-MP.pdf
operation ♦ Power saving standby function ♦ Operational temperature range of -40 to +125°C ♦ Space-saving 10-pin DFN package measuring 4mm x 4mm DFN10 4x4mm BLOCK DIAGRAM VDD VZAP B B 8 BIT PSIN NCOS MA B B SLO PCOS NSIN HALL SENSORS AMP SIN/DIG SLI ZAPPING SERIAL INTERFACE NERR SIN + COS SIGNAL CONVERSION
in „Analogen Zeigerstand elektronisch ablesen“ · Analoge Elektronik und Schaltungstechnik ·
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en.DM00091010.pdf
RM0360 3.5.4 Flash status register (FLASH_SR) Address offset: 0x0C Reset value: 0x0000 0000 31 30 29 28 27 26 25 24 23 22 21 20 19 18 17 16 Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. Res. 15 14 13 12 11 10 9 8 7
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C10 470 pF 250 VAC FL1 FL2 Q2 AO4486 Q1 AO6420 R24 62 Ω 1/8 W C22 1 nF 200 V C18 560 µF 6.3 V R25 30 Ω 1/8 W C19 680 µF 16 V R30 100 Ω 1/10 W R27 1.2 MΩ 1% 1/16 W C24 2.2 nF 50 V R29 100 Ω 1/10 W R16 133
in „Fritz Repeater 2400“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne