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PDF
ks0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD nur 8 von 16 zeichen lassen sich beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD-20x2-ganz.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „Init Problem mit KS0066 (Conrad)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „Reloadwertberechnung C167“ · Mikrocontroller und Digitale Elektronik ·
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PDF
553815_1.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „Probleme mit 2ter Zeile bei KS0066 LCD: Lösung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066u.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD einfach nur ansteuern.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066U.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
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PDF
datasheet.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „KS0066: datasheet“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD KS0066 an 16F871“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD Displaytech 204B (von Reichelt)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066U.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LC Display (KS0066) programmieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD "AV1624" (2x16 Zeichen, KS0066 komp.) zeigt nur die ersten 8 Zeichen an“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „Unbekanntes lcd Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „AV4040 LCD mit einem MCB2300 Evaluation Board Initialisieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066U.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „20x4 Text-Display YM2004A mit KS0066“ · Mikrocontroller und Digitale Elektronik ·
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PDF
553815_1.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD Routine Funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066_Datenblatt.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „HD44780 kompatibles Display - Initialisierung klappt nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066.pdf
MPU. Hence, DL is a signal to select 8-bit or 4-bit bus mode. When 4-bit bus mode, it needs to transfer 4-bit data twice. N: Display line number control bit When N = “Low”, 1-line display mode is set. When N = “High”, 2-line display mode is set. F: Display font type control bit When F = “Low”, 5 ×8
in „LCD-Modul Controller KS0066“ · Mikrocontroller und Digitale Elektronik ·
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PDF
kendryte_datasheet_20181011163248_en.pdf
bit or 64-bit input data width • Supports pure-real, pure-imaginary or complex input data • DMA transfer support 3.11 SHA256 Accelerator The SHA256 accelerator is a computational unit used to calculate SHA-256: • SHA-256 calculation • DMA transfer support for input data 3.12 Universal Asynchronous Transceiver
in „RiscV Maixduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TMS87C510.pdf
bus scheme. TMS87C510 Intel Bus Memory Access Cycle TMS87PC510 Signals Addressing Signals Data Transfer Write G RD Read W Read I PGM WR Write V E Figure 1. Intel-Mode Control Bus R P When the MODE pin is tied to GND, the TMS87C510 and TMS87PC510 are directly compatible with the T Motorola- mode bus scheme. C TMS87C510 Motorola Memory Access Cycle U TMS87PC510 Bus Addressing D Signals Signals Data Transfer Write O R G E P Read PGM R/W Write Figure 2. Motorola-Mode Control Bus POST OFFIC77251−1443TON, TEXAS 3 TMS87C510 524 288-BIT UV ERASABLE MULTIPLEXED EPROM TMS87PC510 524 288-BIT MULTIPLEXED PROM
in „Datenblatt zu 87C510 gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
C55_C55i_hardware_description.pdf
off/on, FR/EFR/HR, hopping sequences, antenna. 4.1.1.4 GPRS IDLE Module is ready for GPRS data transfer, but no data is currently sent or received. Power consumption depends on network settings and GPRS configuration (e.g. multislot settings). 4.1.1.5 GPRS DATA GPRS data transfer in progress. Power
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PDF
1980-09.pdf
the zero frequency. This will reduce the noise by some 20 to 30 dB. and full-scale points of the transfer curve, another error results from Once a input voltage has been converted by the amplifier to a the nonlinearity of the transfer from voltage to frequency. Fig. 2 shows usable by range, it is converted
in „Time-interpolation“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
db_atmega8.pdf
02/06 Serial Peripheral The Serial Peripheral Interface (SPI) allows high-speed synchronous data transfer Interface – SPI between the ATmega8 and peripheral devices or between several AVR devices. The ATmega8 SPI includes the following features: Full-duplex, Three-wire Synchronous Data Transfer Master
in „ADC-Input und Auswahlverfahren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST7789V.pdf
...................................................................................60 8.5 D ATA TRANSFER B REAKAND R ECOVERY .......................................................................................................64 8.6 D ATA TRANSFER PAUSE .............................................
in „LilyGo T-Watch 2020 v1 Micropython“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BTS_100_High_Side.pdf
= 1 MHz — 900 1200 Output capacitance C oss V = 0, V = — 25 V,f = 1 MHz — 350 550 GS DS Reverse transfer capacitance C rss V = 0, V = — 25 V,f = 1 MHz — 130 230 GS DS Turn-on time ton ton=td(on) r) td(on) — 20 30 ns VCC = — 30 V,V GS= — 10 V, D = — 2.9 A, tr — 60 95 RGS = 50 Turn-off timetofftofftd(off
in „Motorsteuerung mit kollektorschaltung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Capture_Store_Send_07_2305.txt
void OUT (unsigned int result) void OUT (unsigned int result) { if (Out) { printf("%u",result); //transfer the Result over RS232 to Host putchar(0x09); //Print TAB Out=0; } else { printf("%u",result); //transfer the Result over RS232 to Host //putchar(0x0A); //Print New Line putchar(0x0D); //Print Carry
in „ADXL beschleunigungsmesser auswerten“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Kopie_von_readinclination.c
Busverbindung stoppen _delay_ms(1); // kurze Wartezeit start_waitI2c(0x70); // wenn vorhergehender Transfer beendet dann Slave + write writeI2c(0x02); // Register LSB x-Achse wählen rep_startI2c(0x71); // Repeated-Start Slave + read inclination = readAckI2c(); // Inhalt LSB x-Achse (0x02) inclination1 =
in „Problem SMB380“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
Start ADC1 Software Conversion */ ADC_SoftwareStartConvCmd(ADC1, ENABLE); /* Test on DMA1 channel1 transfer complete flag */ while(!DMA_GetFlagStatus(DMA1_FLAG_TC1)); /* Clear DMA1 channel1 transfer complete flag */ DMA_ClearFlag(DMA1_FLAG_TC1); while (1) { } } /** * @brief Configures the different system
in „STM32F103: Auswahl des richtigen ADC Modus“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tps1_public.c
spi_device *spi; struct sk_skbuff *tx_skb; struct sk_buff_head *tx_ring; u32 msg_enable; u8 spi_transfer_buf[1200]; }; struct tps1_net *tps; static struct { u32 msg_enable; } debug = { -1 }; USIGN32 TPS1_SendReceiveData(u8* transmit, unsigned short length, u8* receive) { struct spi_message msg; int ret = 0; int i; for(i = 0; i < length; i++){ struct spi_transfer t = { .tx_buf = transmit +i, .rx_buf = receive +i, .len = 1, }; spi_message_init(&msg); spi_message_add_tail(&t, &msg); ret = spi_sync(tps->spi, &msg); gpio_set_value(HOST_SFRN, 1); gpio_set_value
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PDF
Panasonic_NiMH_ChargeMethods.pdf
characteristics to deteriorate. (2) Allowing a high current to flow to excessively (10) Rapid charge transfer timer: 60 min. discharged or deep-discharged batteries during (11) Rapid charge timer: 90 min. (at 1It charge) charge may make it impossible to sufficiently (12) Total timer: 10 to 20 hours. restore
in „Ladegerät mit µC baunen Erfahrungen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
btm330_datasheet.pdf
SCO Connection HV3 (30ms interval sniff mode) .mA 17.5 - SCO Connection HV1 mA 36.3 - ACL Data Transfer 115.2Kbps UART mA 17.7 - ACL Data Transfer 720Kbps USB mA 8.4 - Peak Current during RF Burst mA 38 - Leakage Current (all off) supply connected uA 49 - Vcc = 3.3V; f = 2.45GHz; T=+20°C Radio Characteristics
in „Rayson BTM-330 Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
btm330_datasheet.pdf
SCO Connection HV3 (30ms interval sniff mode) .mA 17.5 - SCO Connection HV1 mA 36.3 - ACL Data Transfer 115.2Kbps UART mA 17.7 - ACL Data Transfer 720Kbps USB mA 8.4 - Peak Current during RF Burst mA 38 - Leakage Current (all off) supply connected uA 49 - Vcc = 3.3V; f = 2.45GHz; T=+20°C Radio Characteristics
in „Bluetoothmodul BTM-222“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mmc.c
* This bit is not relevant when CRCDIS is set. * @def MSK_DATDIR * Bitmask: Set to select data transfer from host to card (write mode). * @def MSK_F2FI * Bitmask: Set by hardware when second FIFO becomes full. * @def MSK_F1FI * Bitmask: Set by hardware when first FIFO becomes full. * @def MSK_F2EI *
in „MMC Bus am AT89C5132/SND1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A500_LTV354T.pdf
7.5 10.0 12.5 15.0 0 0.5 10 15 20 25 30 Forward current ImA) Forward voltage V (V) Fig.5 Current Transfer Ratio vs. Fig.6 Collector Current vs. Forward Current Collector-emitter Voltage 140 V = 5V 50 o o Ta= 25 C %120 Ta= 25 C ( A 40 T100 ( I = 30mA C I t n 30 Pc(MAX.) r 80 e f u n 60 r 20 20mA t t n
in „Frage zu Optokopplern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mosfet_K3673.pdf
9.5 Input capacitance Ciss V DS=25V 900 1350 pF Output capacitance Coss V GS=0V 140 210 Reverse transfer capacitance Crss f=1MHz 8 12 Turn-on timeon td(on) VCC =300V ID=5A 22 33 ns tr VGS =10V 6 9 Turn-off timoff td(off) R GS=10Ω 40 60 tf 9 14 Total Gate Charge Q G V CC=350V 25 37.5 nC Gate-Source Charge
in „Mosfet K3673 01“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
stm32h7xx_hal_msp.c
Error_Handler(); } __HAL_LINKDMA(hi2s,hdmatx,hdma_spi1_tx); /* Deinitialize & Initialize the DMA for new transfer */ HAL_DMA_DeInit(&hdma_spi1_tx); HAL_DMA_Init(&hdma_spi1_tx); /* SPI1_RX Init */ hdma_spi1_rx.Instance = DMA1_Stream0; hdma_spi1_rx.Init.Request = DMA_REQUEST_SPI1_RX; hdma_spi1_rx.Init.Direction
in „STM32H745 I2S DMA (NUCLEO-STM32H745ZI-Q DualCore)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irf4905.pdf
Input Capacitance V DS= 25V, f = 1 MHz,GS = 0 870 pF C oss Output Capacitance 125 pF C rss Reverse Transfer 52 pF Capacitance 2/8 IRF540 ELECTRICAL CHARACTERISTICS (continued) SWITCHING ON Symbol Parameter Test Conditions Min. Typ. Max. Unit td(on) Turn-on Delay Time V DD= 50 V ID= 12 A 60 ns r Rise Time
in „Schaltungsfrage zu OpAmp und Stromsenke“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2SC5001.pdf
0.25 V C/B=4A/0.05A Base-emitter saturation voltage VBE(sat) − 0.9 1.2 V C/B=4A/0.05A DC current transfer ratio hFE1 120 − 390 − VCE/C=2V/0.5A DC current transfer ratio hFE2 82 − − − VCE=2V , C=4A Transition frequency fT − 150 − MHz VCE=5V , E= −1.5A , f=50MHz Output capacitance Cob − 220 − pF VCB=10V
in „Bauteil identifizieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bts100.pdf
= 1 MHz — 900 1200 Output capacitance C oss V = 0, V = — 25 V,f = 1 MHz — 350 550 GS DS Reverse transfer capacitance C rss V = 0, V = — 25 V,f = 1 MHz — 130 230 GS DS Turn-on time ton ton=td(on) r) td(on) — 20 30 ns VCC = — 30 V,V GS= — 10 V, D = — 2.9 A, tr — 60 95 RGS = 50 Turn-off timetofftofftd(off
in „BTS 100 Ersastzlösung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRF830.pdf
Capacitance V = 25 V f = 1 MHz V = 0 610 pF iss DS GS Coss Output Capacitance 120 pF Crss Reverse Transfer 10 pF Capacitance 2/8 IRF830 ELECTRICAL CHARACTERISTICS (continued) SWITCHING ON Symbol Parameter Test Conditions Min. Typ. Max. Unit td(on) Turn-on Time VDD = 250 V ID= 2.9 A 11.5 ns tr Rise Time
in „Spannunngsübertragung mit Luftspulen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTM8522.pdf
nm I=20mA Luminous Intensity Matching Ratio IV-m 2:1 IB=0.4mA FUNCTIONAL DESCRIPTION Serial data transfer from the data source to the display driver is accomplished with 2 signals serial data and clock. Using a format of a leading “1” followed by the 35 data bits allow data transfer without an additional
in „(V) 7-Segment Display, 3-stellig, mit integrierter Elektronik (NOS)“ · Markt ·
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PDF
LTM8522.pdf
nm I=20mA Luminous Intensity Matching Ratio IV-m 2:1 IB=0.4mA FUNCTIONAL DESCRIPTION Serial data transfer from the data source to the display driver is accomplished with 2 signals serial data and clock. Using a format of a leading “1” followed by the 35 data bits allow data transfer without an additional
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PDF
8810-TuofengSemiconductor_002.pdf
iss Input Capacitance 1160 pF C oss Output Capacitance VGS0V, V =DSV, f=1MHz 187 pF C rss Reverse Transfer Capacitance 146 pF R g Gate resistance VGS =0V, VDS0V, f=1MHz 1.5 Ω SWITCHING PARAMETERS Q g Total Gate Charge 16 nC Q gs Gate Source Charge VGS4.5V, V =DSV, I =7D 0.8 nC Q gd Gate Drain Charge 3.8
in „LiPo Tiefentladeschutz 1S/Einzel-Zellen "Mini/Nano"“ · Platinen ·
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PDF
DAC014N120Z5.pdf
Characteristics Input Capacitance C iss - 6300 - VDS1000V - 260 pF Output Capacitance Coss - VGS =0V Reverse Transfer Capacitance C rss Freq.=100kHz - 16 - C ossStored Energy Eoss - 150 - μJ Turn-On Switching Energy E on VDS800V,V GS=-4V/+15V - 1380 - ID=80A,R G(ext).0Ω μJ Turn-Off Switching Energy E off L=100μH
in „Doppelter Sourceanschluss bei SiC-Mosfets“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTM8522.pdf
nm I=20mA Luminous Intensity Matching Ratio IV-m 2:1 IB=0.4mA FUNCTIONAL DESCRIPTION Serial data transfer from the data source to the display driver is accomplished with 2 signals serial data and clock. Using a format of a leading “1” followed by the 35 data bits allow data transfer without an additional
in „[V] 7-Segment Display, 3-stellig, mit integrierter Elektronik (NOS)“ · Markt ·
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PDF
IRL540N-UMW.pdf
Capacitance - 2000 - PF V DS5V,V =0GS Coss Output Capacitance - 300 - PF F=1.0MHz Crss Reverse Transfer Capacitance - 250 - PF (Note 4) Switching Characteristics d(on) Turn-on Delay Time - 7 - nS t Turn-on Rise Time V =50V,R =5Ω - 7 - nS r DD L t Turn-Off Delay Time VGS10V,R GEN =3Ω - 29 - nS d(off)
in „Problem mit Mosfet IRL540 an 52V, öffnet nicht mehr“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
WS2812D-F8_datasheet.pdf
current control part, effectively ensuring the pixel point light color height consistent. The data transfer protocol use single NZR communication mode. After the pixel power-on reset, the DIN port receive data from controller, the first pixel collect initial 24bit data then sent to the internal data latch
in „WS2812 vs PL9823 vs APA106 und sonstige adressierbare RGB“ · Offtopic ·
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PDF
mcp23008.pdf
etc.) must be met to Data is written to the MCP23008 after every byte ensure proper operation. transfer. If a STOP or RESTART condition is generated during a data transfer, the data will not be 1.3 Serial Interface written to the MCP23008. This block handles the functionality of the I C 2 Byte writes
in „MCP23008 Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN-9010b_MOSFET_Basics__FAI.pdf
of the gate oxide W : channel width L : channel length In logic-level device, it shows parabolic transfer curve according to above equation, but the power MOSFET follows the above equation, only in low i inDtransfer curve, and other areas show linearity. It is because the mobility of the carrier is not
in „mit 2,7V schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pITX-SP_M02.pdf
causes Logical Block Addressing Auto Block (Multi-Sector Disabled, Block mode enables Multi-Sector Transfer and increase Transfer) Auto the performance PIO Mode Auto Define the PIO mode if DMA not possible. Auto selects the optimum transfer mode 0, 1, 2, 3, 4 DMA Mode Auto, SWDMA0 - 2 Define the Async or Ultra DMA mode. Auto selects the MWDMA0 - 2, UDMA0 - 6 optimum transfer mode S.M.A.R.T. Auto Show if the device is capable of using the error prede- Disabled diction tool Enabled 32Bit Data Transfer Disabled Enable 32 bit communication between CPU and IDE Enabled controller
in „PAL / LVDS Konverter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
dac8512.pdf
REF02 6 III provides the relationship between the digital codes and out- 0.1 F put voltage. 4 The transfer function of the circuit is given by: 1 CS 2 VDD R4 R4 CLR 6 V O –1 mV × Digital Code × + 2.5 × DAC8512 R1 R2 LD 5 8 V OUT and, for the circuit values shown, becomes: SCLK 3 V O = –2.44 mV × Digital
in „µC soll Strom rausgeben“ · Mikrocontroller und Digitale Elektronik ·