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DatenblattOriginalLEDAiptekt20.pdf
resistance from the solder point to ambient in order to optimize lamp life and optical characteristics. 1100 800 1000 700 900 ) ) A800 A600 Graph 8 m m (7 t500 n1100 n800 e6 e Blue r000 u400 C5 C700 900 Rj-a = 10 / u4 Rj-a °C/W u300 RRj-a= 20°C/W A800 RRj-a= 15 °C/W m600 GRj-a = 30°C/W (x Rj-a °C/W x Rj-a
in „Abstrhlfläche LED“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mic920.pdf
0.05 Av =–1 -20 RF= RI= 475Ω -20 R+ = R = 475Ω 0.0-40 -20 0 20 40 60 80 100 -25 I -25 1M+6 110M6 1100M0E+6 11M6 110M6 1100M00E+6 TEMPERATURE°(C) FREQUENCY (Hz) FREQUENCY (Hz) Closed-Loop Gain Closed-Loop Gain Open-Loop Gain vs. Frequency vs. Frequency vs. Frequency 50 50 50 )40 )40 40 V± = ±5V d30 d30
in „LTspice - OPAmp Modell aus Datenblatt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TS80C51U2_ATMELCorporation.pdf
Low Voltage -0.5 0.2 CC - 0.1 V VIH Input High Voltage except XTAL1, RST 0.2 CC + 0.9 V CC+ 0.5 V V IH1 Input High Voltage, XTAL1, RST 0.7 CC V CC+ 0.5 V VOL Output Low Voltage, ports 1, 2, 3 0.3 V IOL= 100 A (4) 0.45 V (4)
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Datei
pt2262Dec.asm
equ SenderAdr1 = 0b0100_1101 ; codierte Hardware Adresse 1.Byte 433 Adresse 1 .equ SenderAdr1a =0b1100_1101 ; codierte Hardware Adresse 1.Byte alternativ Adresse 2 .equ SenderAdr2 = 0b0100_0001 ; codierte Hardware Adresse 2.Byte ;-----------------------------*/ /*----------------------------- ;Impulsdaten
in „Probleme bei 433Mhz Datenübertragung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mt7623n-bananapi-bpi-r2.dts.txt
= <0x04>; status = "okay"; }; nfi@1100d000 { compatible = "mediatek,mt7623-nfc\0mediatek,mt2701-nfc"; reg = <0x00 0x1100d000 0x00 0x1000>; interrupts = <0x00 0x38 0x08>; power-domains = <0x14 0x08>; clocks = <0x1a 0x01 0x1a 0x25>; clock-names
in „ADC- und DAC-Experimente mit PCF8591 auf Banana Pi SBCs (WiringPi, i2c-tools)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
5EINSEN.LST
1015+1+1 $rs 002A 008F 1016+1 dw val 1071+1+1 $rs 002C 0097 1072+1 dw val 1099+1+1 $rs 002E 009B 1100+1 dw val 1113+1+1 $rs 0030 009D 1114+1 dw val 1120+1+1 $rs 0032 009E 1121+1 dw val 1183+1+1 $rs 0034 00A7 1184+1 dw val 1211+1+1 $rs 0036 00AB 1212+1 dw val 1225+1+1 $rs 0038 00AD 1226+1 dw val 1232
in „Zähler“ · FPGA, VHDL & Co. ·
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Datei
crc16.c
0x9719,0x8738,0xf7df,0xe7fe,0xd79d,0xc7bc, 0x48c4,0x58e5,0x6886,0x78a7,0x0840,0x1861,0x2802,0x3823, 0xc9cc,0xd9ed,0xe98e,0xf9af,0x8948,0x9969,0xa90a,0xb92b, 0x5af5,0x4ad4,0x7ab7,0x6a96,0x1a71,0x0a50,0x3a33,0x2a12, 0xdbfd,0xcbdc,0xfbbf,0xeb9e,0x9b79,0x8b58,0xbb3b,0xab1a, 0x6ca6,0x7c87,0x4ce4,0x5cc5,0x2c22,0x3c03,0x0c60,0x1c41
in „Checksumme "reversen"“ · Mikrocontroller und Digitale Elektronik ·
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PDF
drv8811.pdf
2) (3) MIN MAX UNIT VMX Power supply voltage range –0.3 40 V V Power supply voltage range –0.3 7 V CC Digital pin voltage range –0.5 7 V VREF Input voltage range –0.3 V CC V ISENSEx (4) Pin voltage range –0.875 0.875 V O(peak) Peak motor drive output current, t < 1 μs Internally limited PD Continuous
in „UV-Laserdrucker II“ · Platinen ·
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PDF
lmx1602.pdf
(1) 2.5 mA (1) 500 MHz Only Crystal Mode 1.5 mA I Power Down Current EN = LOW, EN = LOW 1 µA CC-PWDN MAIN AUX fin fin Operating Frequency fin Main 2 GHz Option 200 2000 MHz fin Main and Aux 1.1 GHz Option 100 1100 MHz fin Aux 500 MHz Option 40 500 MHz OSC Oscillator Operating Frequency Logic Mode
in „Software <> Funkgerät, Kommunikation“ · HF, Funk und Felder ·
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PDF
AV02-0717EN.pdf
IN+ E 0.1 0.1 0.1 µF VIN- VLED2+ µF VIN- VLED2+ µF + 5 V + 5.5 V – – 30 V I VCC1 DESAT VCC1 DESAT CC1 ICC2 GND1 V CC2 GND1 VCC2 0.1 µF RESET V C RESET VC + FAULT V FAULT V – OUT OUT 0.1 µF 30 V VLED1+ VEE VLED1+ VEE V V V V LED1- EE LED1- EE Figure38.CC1Lestcircuit. Figure39.I testcircuit. CC2H HCPL
in „Mosfet/IGBT und Treiber für einenMosfet/IGBT“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Panasonic_Ni-MH_Batteries_Handbook.pdf
Discharge temperature: -10 to 65°C Rapid* 4(mA x hrs.) 1,900 x 1.2 ) 1.4 Charge: 950mA -dV = 5mVC 0°CC ( 1.7 Discharge: 380mA (0.2lt) 20°CC Standard 0 to 45 g1.53 Cut off voltage: 1.0V0°C 45°CC Charge (°C) t 1.6 Discharge temperature: -10 to 65°C 65°CC Rapid 0 to 40 )1.42 Cut off voltage: 1.0V 45°C e
in „Langlebige Sub-C Zelle gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FARNELL_STM25P40.pdf
CCV INV SS or VCC 50 µA ICC2 Deep Power-down Current S = V CCV INV SS or VCC 5 µA C = 0.1VCC / 0.9.CC at 25 MHz, ICC3 Operating Current (READ) 4 mA Q = open ICC4 Operating Current (PP) S = V CC 15 mA ICC5 Operating Current (WRSR) S = V CC 15 mA ICC6 Operating Current (SE) S = V CC 15 mA ICC7 Operating Current (BE) S = V CC 15 mA VIL Input Low Voltage – 0.5 0.3VCC V V Input High Voltage 0.7V V +0.4 V IH CC CC VOL Output Low Voltage IOL= 1.6 mA 0.4 V V OH Output High Voltage IOH = –100 A V CC–0.2 V 27/34 M25P40 Table 13.
in „SPI Flash Speicher beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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Datei
WCU_Kilobot_Schematic.txt
5960 -150 0 0 100 10 0 "Default Font" DATED: -7460 -150 0 0 100 10 0 "Default Font" CHECKED: -4960 1100 0 0 100 10 0 "Default Font" COMPANY: -4960 600 0 0 100 10 0 "Default Font" TITLE: -2150 -200 0 0 100 10 0 "Default Font" DRAWING NO: -1750 -1100 0 0 100 10 0 "Default Font" SHEET: OF -2200 8150 0 0
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25P40_STMicroelectronics.pdf
. If 22/35 M25P40 POWER-UP AND POWER-DOWN At Power-up and Power-down, the device must – tPUW after CC passed the V WI threshold not be selected (that is Chip Select (S) must follow the voltage applied on V ) until V reaches the – tVSL afterVCC passed the V CC (min) level CC CC These values are specified in Table 7. correct value: – V CC (min) at Power-up, and then for a further de- If the delay,VSL, has elapsed, after CC has risen lay ofVSL above V CC(min), the device can be selected for READ instructions even if the PUW delay is not
in „SMD EEPROM: Reparatur gebrochenes Beinchen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Bildschirmfoto_2026-02-01_um_16.11.33.pdf
. These are stress ratings only and functional operation of the device at Front plane FPL GND to V CC+0.5 these or any other conditions beyond Digital input voltage RST PCLK GND to V CC+0.5 those indicated in the operational sections of this specification is not Storage temperature Tstg -50 to +95 implied
in „Atmel Fingerchip —> welches Flexkabel?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ScanResult_-_Kopie.xml
OffenerPort>1068</OffenerPort><OffenerPort>1081</OffenerPort><OffenerPort>1090</OffenerPort><OffenerPort>1100</OffenerPort><OffenerPort>nfsd-status [1110]</OffenerPort><OffenerPort>1131</OffenerPort><OffenerPort>1152</OffenerPort><OffenerPort>1210</OffenerPort><OffenerPort>1449</OffenerPort><OffenerPort>1527
in „Rausfinden, welches Port für VPN geeignet ist“ · PC Hard- und Software ·
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PDF
LIION.pdf
GND SW 5 47µ tantal 1206V 0 1 + 0Q Q 0 - L l l M GND i i GND GND R D1 3,9V ausgerechnet 4 5 k 1 mbrs1100t3g 1A R 1 4 S U1 T 0 H R 2 µ +C4 R8 4 1 SENSE+ SDA 4 R10 GND 220µ ~AL/CC 5 1k k R9 3 SCL 1k 1 0 6 R 1 1k SENSE- 2 7 GND EP GND GND LTC2941IDCB-1TRPBF
in „LIION Lade IC MCP73832 Schutz IC BQ29732 Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
db_atmega8.pdf
2486P–AVR–02/06 ATmega8(L) Internal Oscillator Speed Figure 169. Watchdog Oscillator Frequency vs. V CC WATCHDOG OSCILLATOR FREQUENCY vs. V CC 1260 -40°C 25°C 1240 85°C 1220 1200 z k (C1180 FR 1160 1140 1120 1100 2.5 3 3.5 4 4.5 5 5.5 VCC (V) Figure 170. Calibrated 8 MHz RC Oscillator Frequency vs. Temperature
in „ADC-Input und Auswahlverfahren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMEGA8_DATENBLATT.pdf
(L) 2486X–AVR–06/10 ATmega8(L) Internal Oscillator Figure 169. Watchdog Oscillator Frequency vs. V CC Speed WATCHDOG OSCILLATOR FREQUENCY vs. V CC 1260 -40°C 25°C 1240 85°C 1220 )1200 H ( 1180 R F 1160 1140 1120 1100 2.5 3 3.5 4 4.5 5 5.5 V CC(V) Figure 170. Calibrated 8 MHz RC Oscillator Frequency vs
in „I2C/TWI TWBR > 10 warum?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CS5532-34-BS_F3.pdf
Channel-Setup Registers 110 Reserved 111 Reserved D7(MSB) D6 D5 D4 D3 D2 D1 D0 1 MC CSRP2 CSRP1 CSRP0 CC2 CC1 CC0 BIT NAME VALUE FUNCTION D7 Command Bit, C 0 These commands are invalid if this bit is logic 0. 1 Must be logic 1 for these commands. D6 Multiple Conver- 0 Perform fully settled single conversions
in „CS5534 Referenzspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
STM8_Programming_Manual.pdf
: 0x00 7 6 5 4 3 2 1 0 CC2NP CC2NE CC2P CC2E CC1NP CC1NE CC1P CC1E rw rw rw rw rw rw rw rw Bit 7 CC2NP: Capture/compare 2 complementary output polarity Refer to CC1NP description. Bit 6 CC2NE: Capture/compare 2 complementary
in „STLINK V2 und China Boards“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SFH_7060__Lead__Pb__Free_Product_-_RoHS_Compliant.pdf
td ( e o ns or e). o u rus OTNO 1425 M U ag E SO ND a b singn n dii ˚ , co d 72 8 Ho ou urs (1)L 1100 A s bUiM I 0˚ e suces y co ± 5 date ime e 4 24 6H o DNO: C T ISTS E t lt p).i ct r 3 ˚C w ih ort ti i e er )RO MPT O s atahe ˚ C a tf at2 re. ical Floloo o trtir (X O on tesqhui ab el w ,i:r ad edu
in „Wie funktioniert der O2-Sensor von einem Pulsoximeter?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SFH_7060__Lead__Pb__Free_Product_-_RoHS_Compliant.pdf
td ( e o ns or e). o u rus OTNO 1425 M U ag E SO ND a b singn n dii ˚ , co d 72 8 Ho ou urs (1)L 1100 A s bUiM I 0˚ e suces y co ± 5 date ime e 4 24 6H o DNO: C T ISTS E t lt p).i ct r 3 ˚C w ih ort ti i e er )RO MPT O s atahe ˚ C a tf at2 re. ical Floloo o trtir (X O on tesqhui ab el w ,i:r ad edu
in „Transimpedanzwandler für SFH7060“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
sms.c
der ausgeloesten Sensoren wird // xxx durch "1 ", "2 ", oder "1+2" ersetzt. #include "C:\programme\cc5\16C84.H" // kompatibel mit PIC16F84 #include <stdio.h> #include "villa.h" #FUSES XT, NOPROTECT #use DELAY(CLOCK=4000000) #use RS232 (Baud=2400, Xmit=PIN_17, Rcv=PIN_18) #BYTE PORT_B=6 int ctrl_z = 26
in „C-Code in PIC16F84A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A300_ATMEGA8xxx.pdf
MHz, V = 3V I CC 2 mA CC (ATmega8L) Idle 8 MHz, CC = 5V 7 mA (ATmega8) (5) WDT enabled, V CC = 3V 25 µA Power-down mode WDT disabled, VCC = 3V 2 µA V Analog Comparator V CC= 5V 20 mV ACIO Input Offset Voltage V inV CC
in „atMega8-16 Au beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Sony_STR-DE585_Service_Manual.pdf
27) C490 C497 Q471 Q379 C467 J401 R471 C466 R381 CC61 R461 C461 R463 R472 CC62 R462 C462 R464 CC32 R432 C432 R436 CC42 R412 C412 R416 D802 R469 RY560 C800 J405 C471 CC31 R431 C431 R435 R470 C400 CC41 R411 C411 R415 R532 R474 C498 C472 CNP801 C803 C805
in „Reparaturanleitung Sony STR-DE585 FM STEREO/FM-AM RECEIVER Surround“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DA6180D_003.pdf
Product Description Capacitance Option MAS6180D1WA313 Single Band AM-Receiver IC EWS-tested non-inked CC= 0.75 pF with Differential Input wafer with wafer map, diameter 8”, thickness 406 µm ± 5%. MAS6180D1WA305 Single Band AM-Receiver IC EWS-tested dies on tray; CC= 0.75 pF with Differential Input thickness
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PDF
DA6180D_003.pdf
Product Description Capacitance Option MAS6180D1WA313 Single Band AM-Receiver IC EWS-tested non-inked CC= 0.75 pF with Differential Input wafer with wafer map, diameter 8”, thickness 406 µm ± 5%. MAS6180D1WA305 Single Band AM-Receiver IC EWS-tested dies on tray; CC= 0.75 pF with Differential Input thickness
in „[V] MAS6180D | AM Receiver IC für DCF77 Empfänger im TSSOP-16 Package“ · Markt ·
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PDF
Datasheet_ILI9225DS_V022.pdf
depends on external resistance and capacitance. Power Supply ON (V , V , IOV ) Display ON Setting CC CI CC Normal Display D[1:0]=11 V IOV V GON=1 CC CC CI GND V IOV V or Display OFF CC CC CI Sequence V IOV V Simultaneously CC, CC, CI Display OFF Setting 1ms or more Power On Reset DTE = 0 and GON = 0
in „STM32F103 TFT SPI ILI9225“ · Mikrocontroller und Digitale Elektronik ·
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Datei
readme.txt
external signal is connected to TIM3 Channel2 used as input pin. To measure the frequency we use the TIM3 CC2 interrupt request, so In the TIM3_IRQHandler routine, the frequency of the external signal is computed. The "TIM3Freq" variable contains the external signal frequency: TIM3Freq = TIM3 counter clock
in „Timer/Counter STM32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
software_of_MI0283QT-2_CPU_.pdf
0x005B);WMLCDDATA(0x000D); // WMLCDCOM(0x005C);WMLCDDATA(0x001D); // WMLCDCOM(0x005D);WMLCDDATA(0x00CC); // //Power Voltage Setting WMLCDCOM(0x001B);WMLCDDATA(0x001B); //VRH=4.65V WMLCDCOM(0x001A);WMLCDDATA(0x0001); //BT (VGH~15V,VGL~-10V,DDVDH~5V) WMLCDCOM(0x0024);WMLCDDATA(0x002F); //VMH(VCOM High voltage
in „HX8347 Display Treiber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm1881.pdf
LM1881 V = 5V; R = 680 kΩ; T = 0°C to +70°C by correlation with 100% electrical testing at T =25°C CC SET A A Parameter Conditions Min Typ (1) Max Units Supply Current Outputs at V CC= 5V 5.2 10 mA Logic 1 V CC= 12V 5.5 12 DC Input Voltage Pin 2 1.3 1.5 1.8 V Input Threshold Voltage (2) 55 70 85 mV Input
in „Videopfad - LM1881 -Sync-Problem“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX44009.pdf
SDA, A0 Input Current IIH IL TA= +25NC 0.01 20 nA 0.3 x I C Input Low Voltage VIL_I2C SDA, SCL V V CC 0.7 x I C Input High Voltage VIH_I2C SDA, SCL V V CC Address Input Low Voltage VIL_A0 A0 0.3 V Address Input High Voltage VIH_A0 A0 VCC - V 0.3V Input Capacitance 3 pF 2 Maxim Integrated MAX44009 Industry
in „Helligkeitssensor Threshold festlegen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATmega8.pdf
(2) V + 0.5 IH1 XTAL 1 pin CC CC CC Input Low Voltage V IL2 V CC= 2.7V - 5.5V -0.5 0.2 VCC RESET pin V Input High Voltage (2) V IH2 RESET pin V CC= 2.7V - 5.5V 0.9VCC VCC + 0.5 Input Low Voltage V IL3 V CC= 2.7V - 5.5V -0.5 0.2VCC
in „Mikrocontroller und 15'' TFT LCD“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LP171WE2-TLA4.pdf
) FieldName andComments (HEX) (binary) 54 36 Pixel Clock/10,000(LSB)=>main clock =119MHz 7 C 0111 1100 55 37 Pixel Clock/10,000(MSB) 2 E 0010 1110 56 38 Horizontal Active =1680pixels 9 0 1001 0000 57 39 Horizontal Blanking =160pixels A 0 1010 0000 58 3A Horizontal Active : Horizontal Blanking 6 0 0110
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PDF
_Elmos__981_03.pdf
length is between 2 0xBC 1011 1100 and 64 byte. the preceding data tel- acknowledge egram is busy acknowl- (BUSY) 0xC0 1100 0000 edged by any of the receiv- ing nodes.1) the preceding data tel- acknowledge egram is positive acknowl- (ACK) 0xCC 1100 1100 edged by all of the receiv- ing nodes.1) Elmos Semiconductor AG reserves the right to change the detail specifications as may be required to permit improvements in the design of its products
in „Exposed Pad anschließen? (ATSAMD20E18A-MU und ELMOS E981.03)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX4210-MAX4211.pdf
_______________ 3 High-Side Power and Current Monitors ELECTRICAL CHARACTERISTICS (continued) 1 1 (CC = 5.0V, RS+ = 25V, VSENSE = 5mV, VIN= 1.0V, LE = 0V, IOUT = RPOUT = 1MΩ, VCIN1+ = VCIN2+= VREF, VCIN1-= VCIN2-= GND, VINHIBIT 0V, RCOUT1 = RCOUT2 = 5kΩ connected to CC , A = -40°C to +85°C, unless otherwise
in „Überstromschalter für Fensterheber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc4113.pdf
conditions. 7. For other values, please contact your sales office. 61 4113D–8051–01/09 Figure 17-1. I CC Test Condition, Active Mode VCC ICC VCC V CC P0 VCC RST EA (NC) XTAL2 CLOCK XTAL1 SIGNAL V SS All other pins are disconnected. Figure 17-2. I CC Test Condition, Idle Mode VCC CC VCC V CC P0 RST EA (NC
in „STC12C5A60S2 (a.k.a 80C51) programieren mit mySmartUSB light“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2CDC400002D0104_1_.pdf
Sicherungsautomaten im Vergleich 120 In DIN VDE 0100-430 sind die Anfor- I1 I 1 = 1.13nx 2 = 1.45nxJRR 30ß CC 60 derungen für den „Schutz von Kabeln 40 20 1 = Grenzkennlinie aus dem kalten Zustand und Leitungen bei Überstrom“ fest- 10 1 n 6 gelegt. Sicherungsautomaten dienen u 4 1 i z M 2 dem Kabel- und Leitungsschutz
in „Leitungsschutzschalter wechseln?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
abb-Ausloese-Charateristiken-B-C-D-K-Z.pdf
Sicherungsautomaten im Vergleich 120 In DIN VDE 0100-430 sind die Anfor- I1 I 1 = 1.13nx 2 = 1.45nxJRR 30ß CC 60 derungen für den „Schutz von Kabeln 40 20 1 = Grenzkennlinie aus dem kalten Zustand und Leitungen bei Überstrom“ fest- 10 1 n 6 gelegt. Sicherungsautomaten dienen u 4 1 i z M 2 dem Kabel- und Leitungsschutz
in „Selektivität von LS-Schaltern“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A25L080_Flash.pdf
Current ± 2 µA ICC1 Standby Current S = VCC V INV SS or VCC 25 µA I Deep Power-down Current 25 µA CC2 S = VCC V INV SS or VCC C= 0.1V / 0.9.V at 100MHz, DO = open 25 mA CC CC I Operating Current (READ) CC3 C= 0.1V CC / 0.9.CC at 50MHz, DO = open 20 mA C= 0.1V / 0.9.V at 33MHz, DO = open 15 mA CC CC I Operating Current (PP) S 15 mA CC4 = V CC ICC5 Operating Current (WRSR) S 15 mA = V CC ICC6 Operating Current (SE) S 15 mA = V CC ICC7 Operating Current (BE) S 25 mA = V CC VIL Input Low Voltage –0.5 0.3VCC V V Input High Voltage 0.7V
in „MSP430 SPI A25L080 Flash“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.asm
; CC5X Version 3.2K, Copyright (c) B Knudsen Data ; C compiler for the PICmicro family ; ************ 30. Nov 2006 11:48 ************* processor 16F88 radix DEC TRISB EQU 0x86 RP0 EQU 5 RP1 EQU 6 TXREG EQU
in „16F88 Kommunikation und Messung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
am29dl323db.pdf
Parameter Description Test Conditions Min Typ Max Unit VIN V SSto VCC ILI Input Load Current V = V ±1.0 µA CC CC max I A9 Input Load Current V = V ; A9 = 12.5 V 35 µA LIT CC CC max V = V to V , LO Output Leakage Current OUT SS CC ±1.0 µA VCC = VCC max CE# = V IL, V ,= IH 5 MHz 10 16 Byte Mode VCC Active Read
in „55 Stk. Flashbausteine 32Mbit, TSSOP48, 3,3V AM29DL323DB-90“ · Markt ·
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Datei
stm32f4_discovery_lcd.c
0x0180, 0x0180, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, /** * @brief '"' */ 0x0000, 0x0000, 0x00CC, 0x00CC, 0x00CC, 0x00CC, 0x00CC, 0x00CC, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, 0x0000, /** * @brief '#' */ 0x0000, 0x0000
in „STM32F4Discovery mit CooCox CoOS-RTOS und printf“ · Projekte & Code ·
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PDF
emmc.pdf
Write (Cache On) 2000 - 3500 500 - 2800 3500 - 6000 1000 - 4500 Write (Cache Off) 1000 - 1300 900 - 1100 1000 - 1300 900 - 1100 Read n/a 3000 - 5000 n/a 3000 - 5000 Note: 1. Bus in x8 I/O and HS400 modes. Random access of 4KB chunk over various spans (1GB to full card). Addition- al performance data, such
in „Pin-Swap/Cross IC?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AMIS-30543-D.pdf
Before Rising Edge of CLK 100 ns tSET_CLK CLK Set Up Time, CLK Low Before Rising Edge of CS 100 ns 0.2 CC 0.2 CC CS tSET_CSB tCLK tSET_CLK 0.8 CC CLK 0,2 CC 0.2 CC tCLK_HI tCLK_LO tSET_DI HOLD_DI ÌÌÌ 0.8 CC ÌÌÌÌÌÌÌÌÌÌÌ DIÌÌÌ VALID ÌÌÌÌÌÌÌÌÌÌÌ ÌÌÌ ÌÌÌÌÌÌÌÌÌÌÌ Figure 6. SPI Timing http://onsemi.com 9 AMIS−
in „Puls aus Sinuswelle herausrechnen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
fn8271_1_.pdf
sawtooth ramp offset voltage is 1V (equal to 0.8V*1.25), and the 0.0V peak of the sawtooth is limited to CC - 1.4V. With CC =5.4V,the ramphas amaximum peak-to-peak amplitudeofV - 2.4V (equal -100mV 2560 CC ss ≈-f - to 3V); so the feed-forward voltage effective range is typically 3x SW as the ramp amplitude
in „Spannungsregler 5V 10A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AD7607.pdf
, ±5VRange ) 1.00 2.5010 S ( 0.75 N 5V RANGE 2.5005 AV CC = 5.25V H AV CC= 5V C 0.50 ) A ( M E2.5000 R 0.25 G O A R 10V RANGE L E 0 O2.4995 E V D T AV CC= 4.75V O–0.25 O C F2.4990 R R E–0.50 Z A 2.4985 L–0.75 200kSPS O AV CC, VDRIVE= 5V I EXTERNAL REFERENCE
in „Unterschiedliches Verhalten innerhalb der gleichen IC-Reihe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AV02-1132EN_DS_HEDS-9x40_2014-03-17__3_.pdf
.......................................................................................-0.5V to 7V CC OutputVoltage,V ..O............................................................CC............................-0.5V toV Output Current per Channel, I OUT...............................................
in „Incremental Encoder läuft nicht an 2 µC“ · Mikrocontroller und Digitale Elektronik ·
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W7ZOI_Q_TwoFaces.pdf
load. b) The insertion loss should be 30 dB or more. If the loss is less than 30 dB, the values of Cc should be decreased and the procedure should be repeated. Remember to keep the Cc values approximately equal to each other. c) Assuming IL> 30 dB, the exact value of IL is carefully measured and recorded
in „Kann man einen Parallelschwingkreis mit einem nanoVNA ausmessen und die Ergebnisse nachvollziehen?“ · HF, Funk und Felder ·