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PDF
ILI9325DS_V0.35.pdf
Control (R01h) R/W RS D15 D14 D13 D12 D11 D10 D9 D8 D7 D6 D5 D4 D3 D2 D1 D0 W 1 0 0 0 0 0 SM 0 SS 0 0 0 0 0 0 0 0 SS: Select the shift direction of outputs from the source driver. When SS = 0, the shift direction of outputs is from
in „[V]erkaufe TFT 2.8" und TFT 2.4" mit adapter PCB“ · Markt ·
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PDF
sd_mmc.pdf
empfangene Byte einfach ignorieren. Damit das Byte auch wirklich von der Karte empfangen wird, muss SS auf Low gezogen sein. SS soll generell wahrend einer Transaktion mit der Karte auf Low-Pegel bleiben, und danach wieder auf High gezogen werden. Siehe dazu den Abschnitt 3.4.1. 3.3 SPI-Protokoll zu Fu
in „MMC-Karte funktioniert nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
e1529_k8v.pdf
-5-B Infineon SS HYB25D256160BT-5B 256M Infineon HYS64D32300GU-5-B Infineon SS HY25D256160BT-5B 512M Infineon HYS64D32300GU-5-B Infineon DS HY25D256800BT-5B 256M Infineon HYS64D3230HU-5-C Infineon SS HYB25D256800CE-5
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ATMEGA2560_PRO_EMBED_SCHEMATIC.pdf
7 8 GND +5V M8RXD R2 D1 J1 U1 R3 D48 MOSI 1 16 RESET D49 1 4 SCK A F1 M8TXD 2 GND VCC 15 MISO 2 5 SS A +5V TXD RS232 C1 3 6 USB1 M8RXD 3 RXD RTS 14 R4 GND 4 V3 DTR 13 DTR M8TXD D0 C2 RD+ 5 12 R5 RD- RD- 6 UD+ DCD 11 1 C3 7 UD- RI 10 2 8 XI DSR 9 3 XO CTS 4 RD+ D43 R7 +5V SCL 5 R6 R8 J2 GND Y1 C5 AREF
in „RC Modellbau: Mikrocontroller und Motorstörungen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AT89C51ED2.pdf
6 6 6 6 6 P5.5 10 60 P5.0 P0.3/AD3 11 59 P2.4/A12 P0.2/AD2 12 58 P2.3/A11 P5.6 13 57 P4.7 P0.1/AD1 14 56 P2.2/A10 P0.0/AD0 15 55 P2.1/A9 54 P2.0/A8 P5.7 16 AT89C51ED2 VCC 17 53 P4.6 NIC 18 PLCC68 52 NIC 51 VSS P1.0/T2 19 P4.0 20 50 P4.5 P1.1/T2EX/SS 21 49 XTAL1 P1.2/ECI 22 48 XTAL2 P1.3/CEX0 23 47 P3.7
in „Einstieg in die C-Programmerung für µC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CT-RFM-Selfmaderecv.txt
SS High SS Output MOSI Input MISO Output SCK Dim Temp As Integer Set Spi SCK, MOSI, MISO, 1 ' Set SPI Wait 2000 InitRF Temp = SPItrans(&hCA81) Temp = SPItrans(&hCA83) Temp = SPItrans(&h0000) Do Do Loop
in „RFM12 in CuBasic, nach 25h Schrei nach Hilfe“ · HF, Funk und Felder ·
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PDF
ili9328.pdf
D12 D11 D10 D9 D8 D7 D6 D5 D4 D3 D2 D1 D0 W 1 0 0 0 0 0 SM 0 SS 0 0 0 0 0 0 0 0 SS: Select the shift direction of outputs from the source driver. When SS = 0, the shift direction of outputs is from S1 to S720 When SS = 1, the shift direction of outputs is from S720
in „VW-Werbebeilage mit Display (vidipri)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ILI9328DS_V0.1.pdf
D12 D11 D10 D9 D8 D7 D6 D5 D4 D3 D2 D1 D0 W 1 0 0 0 0 0 SM 0 SS 0 0 0 0 0 0 0 0 SS: Select the shift direction of outputs from the source driver. When SS = 0, the shift direction of outputs is from S1 to S720 When SS = 1, the shift direction of outputs is from S720
in „[V]erkaufe TFT 2.8" und TFT 2.4" mit adapter PCB“ · Markt ·
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Datei
ea_dog.c
fosc/16 0 1 0 fosc/64 0 1 1 fosc/128 1 0 0 fosc/2 1 0 1 fosc/8 1 1 0 fosc/32 1 1 1 fosc/64 */ PORT_SS |= (1 << PIN_SS); //SPI Slave select ausschalten! DDR_SPI = (1<<DD_MOSI)|(1<<DD_SCK)|(1<<DD_SS); SPCR = ((1<<SPE)|(1<<MSTR)|(1<<SPR1)|(1<<SPR0));// Enable SPI, Master, set clock rate fck/128(16) SPSR
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Datei
ea_dog.c
fosc/16 0 1 0 fosc/64 0 1 1 fosc/128 1 0 0 fosc/2 1 0 1 fosc/8 1 1 0 fosc/32 1 1 1 fosc/64 */ PORT_SS |= (1 << PIN_SS); //SPI Slave select ausschalten! DDR_SPI = (1<<DD_MOSI)|(1<<DD_SCK)|(1<<DD_SS); SPCR = ((1<<SPE)|(1<<MSTR)|(1<<SPR1)|(1<<SPR0));// Enable SPI, Master, set clock rate fck/128(16) SPSR
in „DOGM - 163 Initialisierung +5V SPI“ · Mikrocontroller und Digitale Elektronik ·
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um1285-schematic.pdf
Feedback CAP NP 5.5MHZ (adjustable: 3- 9 Mhz) Audio Frequency Modulation Q1 C2 4 T1 1 Q2 NPN EBC VHF SS9018 CAP NP 2 5417 NPN ECB C3 R1 C4CAP NP 5 3 D R2 CAP NP R C5 R3 R D CAP NP L1 Audio Carier 5.5mhz Whats this? R INDUCTOR R4 R R5 R C6CAP NP Q3 C7CAP NP NPN EBC SS8050 Kanalumschalter von 3 auf 4 R6
in „VHF TV Modulator UM1285 von Pollin oä.“ · HF, Funk und Felder ·
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PDF
UNO-TH_Rev3e.pdf
PB4 TP_XT2 R ZU4 MOSI 4 11 0 P X2 C XT2 1 (PD0/MISO/PCINT3)PB3 17 MISO2 T RESET 1 RESET (SCK)PB5 19 SS 3 10 _ 9 RN3A 1 Y 2 XTAL2(PC0) (PDI/MOSI/PCINT2)PB2 16 MOSI2 D (MISO)PB4 18 2 9 8 P 1 XUSB 8 1 9 R1 (SCLK/PCINT1)PB1 15 SCK2 XTAL2 (MOSI)PB3 17 1 8 P T B 2 D- RD- C 1 XTAL1 (SS/PCINT0)PB0 14 R2 10 XTAL2 (SS)PB2 16 SS T $ $ 3 D+ RN3D T XT1 2 XT1 T (OC1)PB1 15 IO9 IOH P P 4 5 4 RD+ _ _ XTAL1 9 XTAL1 (ICP)PB0 14 IO8 5 T 32 AVCC (INT4/ICP1/CLK0)PC7 22 E T 6 4 _ 2 1 T (OC1A/PCINT8)PC6 23 t 24 AREF 21 AREF (ADC5
in „Virtueller COM Port beim Arduino Uno R3“ · Mikrocontroller und Digitale Elektronik ·
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ST24C32_ST24C64_STM.pdf
Inputs M24C64 SCL M24C32 SDA Serial Data/Address Input/ Output WC SCL Serial Clock WC Write Control V SS VCC Supply Voltage AI01844B VSS Ground July 1999 1/18 M24C64, M24C32 Figure 2A. DIP Connections Figure 2C. TSSOP Connections M24C64 M24C32 M24C64 M24C32 E0 1 14 VCC E0 1 8 V E1 2 13 WC CC E1 2 7 WC NC
in „I²c mit Bascom und ATmega“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcd.c
0x00, // sp 0x00, 0x00, 0x00, 0x2f, 0x00, 0x00, // ! 0x00, 0x00, 0x07, 0x00, 0x07, 0x00, // " 0x00, 0x14, 0x7f, 0x14, 0x7f, 0x14, // # 0x00, 0x24, 0x2a, 0x7f, 0x2a, 0x12, // $ 0x00, 0x62, 0x64, 0x08, 0x13, 0x23, // % 0x00, 0x36, 0x49, 0x55, 0x22, 0x50, // & 0x00, 0x00, 0x05, 0x03, 0x00, 0x00, // ' 0x00,
in „RS485 von ms - immer noch Einschaltprobleme“ · Mikrocontroller und Digitale Elektronik ·
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PWM_Tiefpass_Restwelligkeit.pdf
interessiert nicht ur die Restwelligkeit- 5 samplitude): welle 2U 0 Uout (t) = p 2 2 2 ▯ sin(2▯fPWM t) (14) ▯ 1 + C R ! Die maximale Spitze-Spitze Restwelligkeit ▯U bei 50 % PWM Tast- ss verha tnis und einem einfachen RC-Filter betragt lso: 4U 0 ▯U ss= p 2 2 2 (15) ▯ 1 + C R ! 2.2 2-facher RC Tiefpass▯lter
in „PWM Tiefpass Restwelligkeit Berechnung“ · Mikrocontroller und Digitale Elektronik ·
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messung0_Ver.1.0.pdf
VCC PD6(AIN0) 10 C IC1A R34 PD7(AIN1) 11 GND 1 A B 2 C6 C PB0(ICP) 12 13 C GND PB1(OC1A) 13 +C3 PB2(SS/OC1B) 14 4066D C2 PB3(MOSI/OC2) 16 SV1-4 PB4(MISO) 17 SV1-1 PB5(SCK) SV1-3 GND IC3 D D 1 2 3 4 5 6 1 2 3 4 5 6 C / C V 22-05-7028-02 C 4230V~ C SV4-3 C J2-1 V C 2 T V V SV3-2 4 C C SV4-4 SV3-6 J2-2 1
in „Cadsoft Eagle“ · Platinen ·
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L298.pdf
stg j Storage and JunctionTemperature –40 to 150 ⋅C PIN CONNECTIONS (top view) 15 CURRENT SENSING B 14 OUTPUT 4 13 OUTPUT 3 12 INPUT 4 11 ENABLE B 10 INPUT 3 9 LOGIC SUPPLY VOLTAGE V Multiwatt15 SS 8 GND 7 INPUT 1 6 ENABLE A 5 INPUT 1 4 SUPPLY VOLTAGE VS 3 OUTPUT 2 2 OUTPUT 1 1 CURRENT SENSING A TAB CONNECTEDTO
in „Motortreiber“ · Analoge Elektronik und Schaltungstechnik ·
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STM.pdf
stg j Storage and JunctionTemperature –40 to 150 ⋅C PIN CONNECTIONS (top view) 15 CURRENT SENSING B 14 OUTPUT 4 13 OUTPUT 3 12 INPUT 4 11 ENABLE B 10 INPUT 3 9 LOGIC SUPPLY VOLTAGE V Multiwatt15 SS 8 GND 7 INPUT 1 6 ENABLE A 5 INPUT 1 4 SUPPLY VOLTAGE VS 3 OUTPUT 2 2 OUTPUT 1 1 CURRENT SENSING A TAB CONNECTEDTO
in „Motor mit automatischer Drehzahlanpassung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
usart_status.usart_ready =0; } // RoBue: // Uhrzeit bestimmen hh = (time/3600)%24; mm = (time/60)%60; ss = time%60; if (var_array[9] == 1) { if(ss!=ss_alt) { ss_alt=ss; time1++; if (bit_is_set(PINC, 0)) { if(time1>=var_array[10]) { time1=0; PORTC &= ~(1 << PC0); PORTC |= (1 << PC1); } } } else { if(time1
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Datei
main.c
usart_status.usart_ready =0; } // RoBue: // Uhrzeit bestimmen hh = (time/3600)%24; mm = (time/60)%60; ss = time%60; if (var_array[9] == 1) { if(ss!=ss_alt) { ss_alt=ss; time1++; if (bit_is_set(PINC, 0)) { if(time1>=var_array[10]) { time1=0; PORTC &= ~(1 << PC0); PORTC |= (1 << PC1); } } } else { if(time1
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Datei
main.c
usart_status.usart_ready =0; } // RoBue: // Uhrzeit bestimmen hh = (time/3600)%24; mm = (time/60)%60; ss = time%60; if (var_array[9] == 1) { if(ss!=ss_alt) { ss_alt=ss; time1++; if (bit_is_set(PINC, 0)) { if(time1>=var_array[10]) { time1=0; PORTC &= ~(1 << PC0); PORTC |= (1 << PC1); } } } else { if(time1
in „AVR NET IO RoBue 1.5 Automatischer Ablauf“ · Mikrocontroller und Digitale Elektronik ·
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AD5290.pdf
Input Capacitance CIL 5 pF POWER SUPPLIES Positive Supply Current DD V IH +5V orV IL0V, 15 50 μA V DD SS±15V Negative Supply Current SS V IH+5V orV =ILV, −0.01 −1 μA V DD SS±15V Power Dissipation7 P V = +5V orV = 0V, 765 μW DISS IH IL V DD SS±15V Power Supply Rejection Ratio PSRR ΔV DDV =SS15V ± 10% −0.15
in „DigiPot AD5290 und Schaltregler TPS5430 laufen nicht zusammen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
93AA86C_SPI_2.c
! lcd_string( sss ); } } // */ return SPDR; } void EWEN_93AA86C (void) //Erase/Write Enable (EWEN) 14 clock-cycles { CS_h; SPI_MasterTransmit(EWEN_high); SPI_MasterTransmit(EWEN_low); CS_l; } void EWDS_93AA86C (void) //Erase/Write Enable (EWEN) 14 clock-cycles { CS_h; SPI_MasterTransmit(EWDS_high); SPI_MasterTransmit
in „Ansteuerung EEPROM 93AA96C funktioniert nicht richtig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Schematic_10W_RGB_LED_Driver_PT4115_Sheet_1_20200312221026.pdf
ADC RXD 21 RX 1 A 3 EN IO5 20 dim TX 2 2 C1 GND 1 C2 C15 4 IO16 IO4 19 b RX 3 220uF 100uF 100n 5 IO14 IO0 18 g0 g0 4 6 17 g RST 5 GND GND +3V3 7 IO12 IO2 16 6 8 IO13 IO15 15 r GND GND GND 9 VCC GND 14 GND 10 CS0 SCLK 13 11 MISO MOSI 12 GND IO9 IO10 R G B B Screw Terminal Screw Terminal Screw Terminal B 2 1 2 1 2 1 C7 C10 C8 1uF 1uF 1uF D2 D3 D4 U1 VCC L1 SS34_C98442 L4 SS34_C98442 L3 SS34_C98442 VCC TC4420EOA713 VCC 220uH 220uH 220uH 1 VDD VDD 8 R1 dim 2 INPUT OUTPUT 7 10 U3 Vled U6 Vled U5 Vled 3 NC OUTPUT 6 Q1 PT4115 PT4115 PT4115 4 GND GND 5 IRLR120NTRPBF
in „Problem bei LEDKSQ“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX152.pdf
/°C above +70°C) ....................640mW VREF+ to GND.....................SS.- 0.3V) to DD + 0.3V) CERDIP (derate 11.11mW/°C above +70°C)...............889mW A VREF- to GND.....................SS.- 0.3V) to DD + 0.3V) Operating Temperature Ranges: VIN to GND..................
in „Ansteuerung A/D-Wandler MX152 (+/-Vref) Wechselspannungsmessung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
esp32_devkitc_v4-sch.pdf
IO25 IO5 22uF/10V(20%) 22uF/10V(20%) IO27 12 IO27 IO16 27 IO16 IO26 11 IO26 NC2 28 IO17 RED LED IO14 13 IO14 IO4 26 IO4 IO27 12 IO27 NC1 27 IO16 GND IO12 14 IO12 IO0 25 IO0 IO14 13 IO14 IO4 26 IO4 IO12 14 25 IO0 VDD33 D 3 D 5 GND 15 IO12 IO0 24 IO2 N 1 D D M L D D 1 2 IO13 16 GND2 IO2 23 IO15 R11 G
in „Arduino IDE 1.8.9 buggy?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
esp32_devkitc_v4-sch.pdf
IO25 IO5 22uF/10V(20%) 22uF/10V(20%) IO27 12 IO27 IO16 27 IO16 IO26 11 IO26 NC2 28 IO17 RED LED IO14 13 IO14 IO4 26 IO4 IO27 12 IO27 NC1 27 IO16 GND IO12 14 IO12 IO0 25 IO0 IO14 13 IO14 IO4 26 IO4 IO12 14 25 IO0 VDD33 D 3 D 5 GND 15 IO12 IO0 24 IO2 N 1 D D M L D D 1 2 IO13 16 GND2 IO2 23 IO15 R11 G
in „ESP32 NodeMCU: Versorgung mit USB und EXT 5V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
esp32_devkitc_v4-sch.pdf
IO25 IO5 22uF/10V(20%) 22uF/10V(20%) IO27 12 IO27 IO16 27 IO16 IO26 11 IO26 NC2 28 IO17 RED LED IO14 13 IO14 IO4 26 IO4 IO27 12 IO27 NC1 27 IO16 GND IO12 14 IO12 IO0 25 IO0 IO14 13 IO14 IO4 26 IO4 IO12 14 25 IO0 VDD33 D 3 D 5 GND 15 IO12 IO0 24 IO2 N 1 D D M L D D 1 2 IO13 16 GND2 IO2 23 IO15 R11 G
in „Stromversorgung für ESP32 aus 13V Quelle“ · Mikrocontroller und Digitale Elektronik ·
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PDF
s-cu20049-uw2j_e03.pdf
Symbol Min. Typ. Max. Unit Condition Logic Input Voltage "H" VIH1 2.0 – VCC V - V DB0-DB7, RS, V DC CC SS R/W(WR), E(RD), "L" V IL1 V SS – 0.8 = 5.0V SCK, STB Logic Input Voltage "H" VIH2 0.7VCC – VCC V CC- VSS SI/SO "L" V V – 0.3V V DC = 5.0V IL2 SS CC Logic Input Voltage "H" VIH3 0.8VCC – VCC V CC– V SS /RESET "L" V IL3 V SS – 0.2V CC V DC = 5.0V Power supply Voltage V CC SS 4.75 5.00 5.25 V DC – Note: "/RESET" must be driven by open-collector or open-drain because this module has an internal Reset-IC. V CC /RESET R 10K
in „[V] VFD, 4x20, CU20049-UW2J von Noritake itron“ · Markt ·
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PDF
Computer_Kontakt_1986-08_09_-_21.pdf
Kontakt B-9/36 COMMODORE M™ 87 SM 30 DfiTfl 33 DfiTfi MM™ III',™ 000:000 Commodore- 43 MTA ?ip Fensterli 14 DHTH *e : 4B c 491 50 FORM B!REflDPS(N>IMM 52 REAM ?; M-4THEN *>S M 71 -O.hCMTNi WN1 nic ^"™S49 ss?^ 56 POKE ai. 31 POKES £, 131POKE 13 3,£ gedruckt. Lisiingsiiiiehncllcrt'olgi.Superbase Tips & Tricks
in „ZX Spectrum => Upgrade von 16 auf 48 KB RAM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
arm.pdf
P3.10 / D10PID20208 D11 100n PO SPI_MOSI 122 P0.18 / DCD1 / MOSI0 / MOSI P3.11 / D11 1 D12 PO\LLED_SS 120ID20P0.19 / DSR1 / MCICLK / SDA1 P3.12 / D12PID701 D13 PIC2801 PIC2802 PID20P0.20 / DTR1 / MCICMD / SCL1 P3.13 / D13PID207 POFPGA_CONF_DONE 11PID20P0.21 / RI1 / MCIPWR / RD1 P3.14 / D14PID2021 D14
in „ARM Board Layout“ · Platinen ·
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PDF
MCP73832T.pdf
Bypass to V SS with a minimum of supply. 4.7 µF. 3.5 Current Regulation Set (PROG) 3.2 Battery Charge Control Output Preconditioning, fast charge and termination currents (VBAT ) are scaled by placing a resistor from PROG to V SS Connect to positive terminal of battery. Drain terminThe charge management controller can be disabled by of internal P-channel MOSFET pass transistor. Bypass allowing the PROG input to float. to SS with
in „LiPo-Charger mit MCP73832T“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MCP73831-2_ENG_TDS.pdf
Bypass to V SS with a minimum of supply. 4.7 µF. 3.5 Current Regulation Set (PROG) 3.2 Battery Charge Control Output Preconditioning, fast charge and termination currents (VBAT ) are scaled by placing a resistor from PROG to V SS Connect to positive terminal of battery. Drain terminThe charge management controller can be disabled by of internal P-channel MOSFET pass transistor. Bypass allowing the PROG input to float. to SS with
in „LiPo-IC MCP73831 kennt keine Ladeschlussspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
CU40025SCPB-W6J_E02.pdf
"L" VIL V SS - VSS+0.6 VCC-V SS Logic Input Voltage"H" VIH 0.7VCC - V CC = 5.0V VDC RS,R/W(WR),E(RD) "L" VIL V SS - 0.3VCC Power supply Voltage V CC-VSS 4.75 5.00 5.25 VDC - 4. Electrical Characteristics Conditions
in „Labels oder so was ähnliches“ · Mikrocontroller und Digitale Elektronik ·
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Datei
p24FJ64GB004.h
RPINR20bits.SCK1R2 #define _SCK1R3 RPINR20bits.SCK1R3 #define _SCK1R4 RPINR20bits.SCK1R4 /* RPINR21 */ #define _SS1R RPINR21bits.SS1R #define _SS1R0 RPINR21bits.SS1R0 #define _SS1R1 RPINR21bits.SS1R1 #define _SS1R2 RPINR21bits.SS1R2 #define _SS1R3 RPINR21bits.SS1R3 #define _SS1R4 RPINR21bits.SS1R4 /* RPINR22 */ #
in „PIC24FJ64GB004 eclipse“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89S8253-24PU.pdf
deacti- vated and the MOSI/P1.5 pin can be used as a general-purpose input. Figure 14-1. SPI Master-Slave Interconnection MSB MASTER LSB MISO MISO MSB SLAVE LSB 8-BIT SHIFT REGISTER 8-BIT SHIFT REGISTER MOSI MOSI SPI SCK SCK CLOCK GENERATOR SS SS VCC 23 3286I–MICRO–10/05 Figure 14-2.
in „AT89S8253-24PU ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A4963-Datasheet.pdf
GHLIMDN GHx Output Voltage High (off) V -10 µA < I < 10 µA V –0.2 – – V GHH GH BB IGH= 10 mA, V BB= 14.5 V 0.9 – 2.6 V -10 µA < GH < 10 µA, VBB≥ 14.1 V V BB–14.1 – VBB –11.3 V GHx Output Voltage Low (active) VGHL -10 µA < GH < 10 µA, 9.6 ≤ BB < 14.1 V 0 – VBB–9.4 V -10 µA < GH < 10 µA, VBB< 9.6 V 0 –
in „A4963 BLDC Motor Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SG3525_AppNote.pdf
by SS AnimportantpartofanyPWMcontrolleristheability Q 5hich, with R , 9ecomes a 100 A net current to shut it down at any time for a variety of reasons, sink. including system sequencing requirements or fault
in „SG3525 synchronisieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ad420_datasheet.pdf
BIT SAMPLE BIT 15 t 1 1 1 1 CK B B B B CLOCK tCL CLOCK t 0 1 2 8 16 24 CH START BIT DATA BIT 15 BIT 14 tDS DH DATA IN DATA IN EXPANDED TIME VIEW BELOW DW tACK tLD ACL t CLOCK LATCH LL t tACH LH ADS ADH tSD tADW DATA OUT DATA IN Figure 2. Timing Diagram for Three-Wire Interface Figure 3. Timing Diagram
in „Suche AD420 in SMD Format“ · Mikrocontroller und Digitale Elektronik ·
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PDF
zukunft67.pdf
M ik ro elek tro n ik b ezeich n eten B au elem en te. In F ach k reisen ist m an sich einig, d a ß M ikroelektronik b esser integrierte E lektronik heißen sollte. D en n m a n v e rste h t d a ru n te r, d a ß m ö g lich st viele a k tiv e (T ran sisto ren ) u n d passive (W id erstän d e, K o n d
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Datei
spi.c
TRISGbits.TRISG6 = 0; // SCK TRISGbits.TRISG7 = 1; // MISO TRISGbits.TRISG8 = 0; // MOSI TRISGbits.TRISG14 = 0; // SS1 / G2.0 // TODO SS2 LATGbits.LATG14 = 1; SPI2STATbits.SPIEN = 1; // module enabled delay_us( 20 ); } //======================================================================== uint16_t spi_request_s1( uint8_t x ) { uint8_t tmp = SPI2BUF; // dummy LATGbits.LATG14 = 0; // Beginne Senden SPI2BUF = x; SPI2BUF = 0x00; // 11bit Antwort abwarten SPI2BUF = 0x00; while( !SPI2STATbits.SPITBF ); LATGbits.LATG14 = 1; // Ende Senden uint16_t r = SPI2BUF; // erstes Byte überspringen
in „dsPIC33E SPI Probleme und Verständnis“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX3816A.pdf
Figure 6. I C Display-Side Clock, CMOS Input/Output. Connect a 2.2k▯ pullup resiDDofor DD = 3.3V, 14 CLOCK_D or a 3.3k▯ pullup resistorDDoforDD = 5V. 15 VSS_T Must Be Connected to SS for Normal Operation Mode Setting Input, LVTTL/LVCMOS. Force high for parallel mode (normal operation) and force low
in „[S] Extender für HDMI über CAT5e (1080p@60Hz)“ · Markt ·
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PDF
ELKOS_FritzBox_Fon_WLAN_7270_V1.pdf
°C h Ripple current Ordering code 1 Radial lead electrolytic capacitor 47 16 5,0 7,0 2,5 2,5 YAGEO SS (Supper Miniature) 105 1000 75 mA (rms) @ 105 °C, 120 Hz SS016M0047AZF 0507 SS016M0047AZS 0507 2 Radial lead electrolytic capacitor 1000 16 10,0 12,5 5,0 5,0 CapXon KM (Standard type) 105 2000 540 mA
in „Defekte (Standard-)Elkos in Fritz!Box Fon WLAN 7270 durch Standard- oder Low-ESR Elkos ersetzen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
arduino-uno-schematic.pdf
USBVCC (T1/PCINT4)PB4 RESET R MOSI 11 X2 500mA XT2 (PD0/MISO/PCINT3)PB3 17 MISO2 T 1 RESET (SCK)PB5 19 SS 3 10 22R RN3A 2 XTAL2(PC0) (PDI/MOSI/PCINT2)PB2 16 MOSI2 D (MISO)PB4 18 2 9 1 XUSB 8 1 R1 N Y1 (SCLK/PCINT1)PB1 15 SCK2 Y2 XTAL2 (MOSI)PB3 17 1 8 B 2 D- RD- 1M G 1 XTAL1 (SS/PCINT0)PB0 14 10 XTAL2 (SS)PB2 16 SS 2 1 3 D+ XT1 XT1R R2 (OC1)PB1 15 IO9 IOH P P 4 225 RN3D4RD+ 16MHz 1M 9 XTAL1 (ICP)PB0 14 IO8 R 7 32 AVCC (INT4/ICP1/CLK0)PC7 22 XTAL1 6 0 0 +5V 2 (OC1A/PCINT8)PC6 23 GND 16MHz AREF 21 (ADC5)PC5 28 AD5
in „Speisung umschalten“ · Analoge Elektronik und Schaltungstechnik ·
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PVG1216031CL05Main-transmiss.pdf
SPECIFICATIONS ITEM SYMBOL CONDITIONS MIN TYP MAX UNITS Power-supply voltage V -V T = 25 ℃ 1.7 3.0 3.3 DD SS a V IH V DD=3.0 V 0.8×V DD — V DD V Input voltage VIL 0 — 0.2×VDD Supply current for logicDD VDD = 3.0V — 2.56 — mA LCD driving voltage V LCDV SS T a 25 °C — 13.1 — V Brightness ILED=45mA Ta = 25 °C
in „LCD Graphik Display mit µController ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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MCP3221.pdf
first code transition is located I C specification where the frequency of SCL is at 1/2 LSB above V SS . 100 kHz. 2 4.13 I C Fast Mode Timing 2 I C specification where the frequency of SCL is 400 kHz. DS21732B-page 14 2003 Microchip Technology Inc. MCP3221 5.0 SERIAL COMMUNICATIONS Each data transfer
in „Suche Bauteilbezeichnung 5-Pin SOT-23 mit "S1SD" Marking“ · Mikrocontroller und Digitale Elektronik ·
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3971fd.pdf
VIEW BD 1 10 SYNC TOP VIEW BD 1 16 GND BD 1 10 SYNC NC 2 15 SYNC BOOST 2 9 PG BOOST 2 11 9 PG BOOST 3 14 PG SW 3 GND 8 RT SW 3 GND 8 RT NC 5 17 13 RT V 4 7 SS V IN4 7 SS SNC 6 GND 11 NC IN EN 5 6 FB V 7 10 FB EN 5 6 FB EN 8 9 FB MSE PACKAGE DD PACKAGE 10-LEAD PLASTIC MSOP MSE PACKAGE 10-LEAD (3mm × 3mm)
in „[V] LT3971IDD-5PBF-ND“ · Markt ·
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171050601.pdf
AGND 1.5 - - V SYNC Synchronization duty 15 50 85 % d.c. cycle range Dmax Maximum duty cycle - 83 - % SS Soft-start source current V SS= 0V 40 50 60 µA Internal soft-start time tss - 1.6 - ms In-regulation feedback V SS>+ 0.8V V FB voltage IOUT = 5A 0.776 0.796 0.816 V Feedback over-voltage V FB-OVP - 0.86
in „Stromverbrauch eines Abwärtswandlers“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
171050601.pdf
AGND 1.5 - - V SYNC Synchronization duty 15 50 85 % d.c. cycle range Dmax Maximum duty cycle - 83 - % SS Soft-start source current V SS= 0V 40 50 60 µA Internal soft-start time tss - 1.6 - ms In-regulation feedback V SS>+ 0.8V V FB voltage IOUT = 5A 0.776 0.796 0.816 V Feedback over-voltage V FB-OVP - 0.86
in „Berechnung der Ausgangskapazität“ · Analoge Elektronik und Schaltungstechnik ·
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CR-10_Schematic.pdf
P0U6016 X-STEP R 13 P0U8013 P0U8166 Y-STEP R 3 C24 RESET PA2 (ADC2/PCINT2) P0U5036 36 EXT-A1EXT0A1 9 14 ROSC STEP P0U6015 P 9 14 ROSC STEP P0U8155 P C PA1 (ADC1/PCINT1) R18 R P0SLEEP VDD VCC5V-M R28 R PSLEEP4 VDD VCC5V-M P 7 P0U507 P0U5037 37 SD-SSSD0SS P P C23 P0C2401 P0C2400 XTAL2 PA0 (ADC0/PCINT0) VCC5V-M
in „Problem mit SD Card Melzi Creality3D V1.1.3 Sanguino Atmega 1284“ · Mikrocontroller und Digitale Elektronik ·