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PDF
cc1100.pdf
35 Ordering Information Chipcon Part TI Part Number Description Minimum Order Quantity Number (MOQ) CC1100-RTY1 CC1100RTK CC1100QLP20 RoHS Pb-free 490/tray 490 (tray) CC1100-RTR1 CC1100RTKR CC1100 QLP20 RoHS Pb-free 2500/T&R 2,500 (tape and reel) CC1100-1150DK-433 CC1100-1150DK- CC1100/CC1150-433 MHz Development Kit 1 433 CC1100-1150DK-868 CC1100-1150DK- CC1100/CC1150-868/915 MHz Development 1 868 Kit CC1100EMK-433 CC1100EMK-433 CC1100 433 MHz Evaluation Module Kit 1 CC1100EMK-868 CC1100EMK-868 CC1100 868/915 MHz Evaluation
in „Scrambler für Funkstrecke“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.c
(CC1100_RXFIFO, buffer+1, buffer[0]+1); // +1 for RSSI cc1100_strobe(CC1100_SFRX); cc1100_strobe(CC1100_SIDLE); cc1100_strobe(CC1100_SNOP); cc1100_strobe(CC1100_SRX); return buffer; } void cc1100_send(uint8_t *buffer) { cc1100_strobe(CC1100_SIDLE); cc1100_strobe(CC1100_SFRX); cc1100_strobe(CC1100_SFTX); cc1100_write_burst(CC1100_TXFIFO, buffer, buffer[0]+1); // buffer[0] is length cc1100_strobe(CC1100_SFRX); cc1100_strobe
in „Alternative Firmware für Homematic Komponenten“ · Haus & Smart Home ·
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PDF
CXA1100P.PDF
1µ S4 OFF S2 P S5-2 P R22 OFF ON 5.1k R3 R4 R5 Distortion 12k 2k 510 Analyzer +15V P R S1 – 4 – CXA1100/CXA1101/CXA1102/CXA1163 Electrical Characteristics Ta = 25°C, Dolby Level: –10dBm ( = 245mVrms) at REC OUT V CC= 15V (CXA1100), VCC = 12V (CXA1101), VCC= 9V (CXA1102) V CC= 6V (CXA1163) Test Condition
in „Signalleitung eines Kassetten tonkopfes direkt verbinden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny.pdf
ATtiny12 (Unless otherwise noted) Symbol Parameter Condition Min Typ Max Units Analog Comparator V CC= 5V V ACIO Input Offset Voltage V = V /2 40 mV IN CC Analog Comparator V = 5V IACLK CC -50 50 nA Input Leakage Current V INV CC/2 T Analog Comparator V CC= 2.7V 750 ns ACPD Propagation Delay V CC= 4.0V
in „Tiny 11 ,was ist davon zu halten?“ · PC Hard- und Software ·
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PDF
Tiny12.pdf
) 2.0 mA Active 4 MHz, CC = 3V (ATtiny12L) 2.5 mA Active 6 MHz, V = 5V CC 10 mA (ATtiny11) Active 8 MHz, CC = 5V 10 mA (ATtiny12) Idle 1 MHz, CC = 3V (ATtiny12V) 0.4 mA Idle 2 MHz, V = 3V ICC Power Supply Current CC 0.5 mA (ATtiny11L) Idle 4 MHz, CC = 3V 1.0 mA (ATtiny12L) Idle 6 MHz, CC = 5V (ATtiny11) 2.0 mA Idle 8 MHz, CC = 5V (ATtiny12) 3.5 mA Power Down (5, V = 3V, CC 9.0 15 µA WDT enabled (5) Power Down , CC = 3V. <1 2 µA WDT disabled (ATtiny12
in „ATTiny12 uns SPI?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATTINY11_ATTINY12_ATM.pdf
) 2.0 mA Active 4 MHz, CC = 3V (ATtiny12L) 2.5 mA Active 6 MHz, V = 5V CC 10 mA (ATtiny11) Active 8 MHz, CC = 5V 10 mA (ATtiny12) Idle 1 MHz, CC = 3V (ATtiny12V) 0.4 mA Idle 2 MHz, V = 3V ICC Power Supply Current CC 0.5 mA (ATtiny11L) Idle 4 MHz, CC = 3V 1.0 mA (ATtiny12L) Idle 6 MHz, CC = 5V (ATtiny11) 2.0 mA Idle 8 MHz, CC = 5V (ATtiny12) 3.5 mA Power Down (5, V = 3V, CC 9.0 15 µA WDT enabled (5) Power Down , CC = 3V. <1 2 µA WDT disabled (ATtiny12
in „Attiny12 Datenblatt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATTiny15L.pdf
00 0_0110_1100_00 Byte goes high PB2 x_xxxx_xxxx_xx x_xxxx_xxxx_xx 0_0000_0000_00 Read PB0 0_0000_0011_00 0_00bb_bbbb_00 Repeat Instr.2 for each new EEPROM PB1 0_0100_1100_00 0_0000_1100_00 Low Address PB2 x_xxxx_xxxx_xx
in „ATtiny 15 Datenblatt nicht auffindbar??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tiny13_doc2535.pdf
V IL1 CLKI pin CC CC Input High-voltage VCC = 1.8V - 2.4V 0.8VCC(3) V IH1 (3) VCC +0.5 V CLKI pin VCC = 2.4V - 5.5V 0.7VCC V Input Low-voltage V = 1.8V - 5.5 -0.5 0.2V V IL2 RESET pin CC CC Input High-voltage V IH2 VCC
in „Atmel AVRs: SRAM so unwichtig?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tiny13.pdf
Read SII 0_0100_1100_00 0_0000_1100_00 0_0111_1000_00 0_0111_1100_00 Calibration Byte SDO x_xxxx_xxxx_xx x_xxxx_xxxx_xx x_xxxx_xxxx_xx p_pppp_pppx_xx Load “No SDI 0_0000_0000_00 Operation” SII 0_0100_1100_00 Command SDO
in „ATtiny13 Datenblatt External Clock Source on T0-Pin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc2535.pdf
V CC= 2.4V - 5.5V -0.5 0.3VCC (2) V VIL Input Low Voltage, (2) RESET Pin as Reset (3) V CC= 1.8V - 5.5 -0.5 0.2VCC V V = 1.8V - 2.4V 0.7V (4) V + 0.5 V Input High Voltage, CC CC CC Any Pin as I/O V = 2.4V - 5.5V 0.6V (4) V + 0.5 V VIH CC CC CC Input High Voltage, (3) V CC= 1.8V - 5.5V 0.9V CC(4) VCC + 0.5 V RESET Pin as Reset Output Low Voltage, IOL= 20 mA, V CC = 5V 0.7 V Pins PB0 and PB1 (5) IOL= 10 mA, V CC = 3V 0.5 V VOL Output Low
in „RGB PWM mit Attiny13“ · Mikrocontroller und Digitale Elektronik ·
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doc2535.pdf
V CC= 2.4V - 5.5V -0.5 0.3VCC (2) V VIL Input Low Voltage, (2) RESET Pin as Reset (3) V CC= 1.8V - 5.5 -0.5 0.2VCC V V = 1.8V - 2.4V 0.7V (4) V + 0.5 V Input High Voltage, CC CC CC Any Pin as I/O V = 2.4V - 5.5V 0.6V (4) V + 0.5 V VIH CC CC CC Input High Voltage, (3) V CC= 1.8V - 5.5V 0.9V CC(4) VCC + 0.5 V RESET Pin as Reset Output Low Voltage, IOL= 20 mA, V CC = 5V 0.7 V Pins PB0 and PB1 (5) IOL= 10 mA, V CC = 3V 0.5 V VOL Output Low
in „ATtiny13 mit 20MHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DD19FCD3d01.pdf
- 5.5V -0.5 0.3V CC(1) V VIL Input Low Voltage, (1) RESET Pin as Reset (2) VCC = 1.8V - 5.5 -0.5 0.2V CC V V = 1.8V - 2.4V 0.7V (3) V + 0.5 V Input High Voltage, CC CC CC Any Pin as I/O V = 2.4V - 5.5V 0.6V (3) V + 0.5 V VIH CC CC CC Input High Voltage, (2) VCC = 1.8V - 5.5V 0.9V CC(3) V CC+ 0.5 V RESET Pin as Reset Output Low Voltage, OL = 20 mA, VCC = 5V 0.7 V Pins PB0 and PB1 (4) OL = 10 mA, VCC = 3V 0.5 V VOL Output Low
in „HV-Prog für ATtiny13“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RDR-158.pdf
-08 RDR-158 – 5 V, 1 A, LNK616PG CV/CC Charger 6 0 °C External Case Ambient 5 ) C4 Minimum Limit V Maximum Limit ( g 85 VAC l3 115 VAC o 230 VAC t u 265 VAC t2 u O 1 0 0 100 200 300 400 500 600 700 800 900 1000 1100 1200 Output Current (mA
in „Trafo oder schaltnetzteil“ · Analoge Elektronik und Schaltungstechnik ·
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cpu6801.pdf
<= fetch_state; end end 4'b 1100 : begin // bge if(((cc[NBIT] ^ cc[VBIT] )) == 1'b0) begin next_state <= branch_state; end else begin next_state <= fetch_state; end end 4'b 1101 : begin // blt if(((cc[NBIT] ^ cc[VBIT] )) == 1'b1) begin
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BettyHHU.pdf
AMB_D3 KBDI1 5 109 AMB_D4 HWID4 0R 1 R41 0 P022/CAP00/MAT00 P24/D4 VDD3ARM 0R1 R32 0R 1 R45 GND K CS_CC1100 6 P023 114 AMB_D5 NA 0 Y NA 1% 3 1R ICT68 CC1100_GDO2 P25/D5 115 AMB_D6 1% T 1% optionaler Bypass ICT69 8 P024 P26/D6 I KBDI2 23 P027/AIN0/CAP01/MAT01 116 AMB_D7 % R P27/D7 VDD3ARM 0R1 R30 HWID3
in „Innenleben von Betty TV“ · Mikrocontroller und Digitale Elektronik ·
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AT89S8253-24PU.pdf
, V CC = 2V to 5.5V VCC I CC RST VCC VCC P0 EA (NC) XTAL2 XTAL1 VSS 51 3286I–MICRO–10/05 45. I CC (Active Mode) Measurements o AT89S8253 I CC Active @ 25 C With Internal Clock Oscillator x1 Mode 4.00 A3.50
in „AT89S8253-24PU ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Attiny24a-44a-84a.pdf
_0000_00 0_0000_0000_00 Calibration SII 0_0100_1100_00 0_0000_1100_00 0_0111_1000_00 0_0111_1100_00 Byte SDO x_xxxx_xxxx_xx x_xxxx_xxxx_xx x_xxxx_xxxx_xx p_pppp_pppx_xx Load “No SDI 0_0000_0000_00 Operation” SII 0_0100_1100_00 Command SDO x_xxxx_xxxx_xx
in „Kann jemand über meine Inialisierung drüberfliegen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR_ATtiny_24_44_84.pdf
Symbol Parameter Condition Min Typ Max Units V Input Offset Voltage V = 5V, V = V / 2 < 10 40 mV AIO CC IN CC I Input Leakage Current V = 5V, V = V / 2 -50 50 nA LAC CC IN CC V = 2.7V 750 Analog Propagation Delay CC (from saturation to slight overdrive) V = 4.0V 500 tAPD CC ns VCC = 2.7V 100 Analog Propagation
in „AVR Programm brennen ohne Bootloader“ · Mikrocontroller und Digitale Elektronik ·
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PDF
attiny84.pdf
0.3V V CC CC Input High-voltage V = 1.8V - 2.4V 0.7VCC (2) V IH CC (2) VCC +0.5(3) V Except RESET pin VCC = 2.4V - 5.5V 0.6VCC V Input High-voltage V = 1.8V to 5.5V 0.9V (2) V +0.5(3) V IH1 RESET pin CC CC CC
in „Attiny 84 ISP?!“ · Mikrocontroller und Digitale Elektronik ·
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Datei
7810dasm.c
,"A,ANM" }, /* c8: 0100 1100 1100 1000 */ /* 7810 */ {MOV,"A,SMH" }, /* c9: 0100 1100 1100 1001 */ {illegal,0 }, /* ca: 0100 1100 1100 1010 */ {MOV,"A,EOM" }, /* cb: 0100 1100 1100 1011 */ {illegal,0 }, /* cc: 0100 1100 1100 1100
in „suche Disassembler für NEC µPD78C10 (87AD Series)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „TOCPMSA1 und TOCPMCOE Verhalten beim Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny441_841.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „Suche nach ATtiny mit ADC und Gain > 20x“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „sleep und Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „Takt-Vorskalierungsregister beim Attiny841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
80C51.pdf
PARAMETER TEST UNIT CONDITIONS MIN TYP 1 MAX V Input low voltage 4.5V < V < 5.5V –0.5 0.2V –0.1 V IL CC CC V Input high voltage (ports 0, 1, 2, 3, EA) 0.2V +0.9 V +0.5 V IH CC CC V Input high voltage, XTAL1, RST 0.7V V +0.5 V IH1 CC CC V = 4.5V VOL Output low voltage, ports 1, 2, 3 CC 2 0.4 V IOL= 1.6mA
in „Prüfen von Chips“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TP4067.pdf
Top Power ASIC Corp. TP4067 电特性 凡表注●表示该指标适合整个工作温度范围,否则仅指 TA=25℃,V =5V,除非特别注明。 CC 符号 参数 条件 最小值 典型值 最大值 单位 VCC 输入电源电压 ● 4.0 5 8.0 V 充电模式,R PROG10K ● 65 μA 130 待机模式(充电终止) ● 65 μA I 输入电源电流 停机模式(R 未连 ● 40 130 μA CC PROG 110 接 , V <CC BAT, 或 V <VUV) CC 4.306 4.35 4.394 V 0℃≤TA≤85℃, VFLOAT
in „LiFePo4 3,2V Ladegerät“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
robot-mit-cplusplus-anteilen-noheap-trotzdem-grosz.objdump.txt
: 4557 cmp r7, sl 8006cb4: f804 8003 strb.w r8, [r4, r3] 8006cb8: f8c4 1100 str.w r1, [r4, #256] ; 0x100 8006cbc: f884 8104 strb.w r8, [r4, #260] ; 0x104 8006cc0: f000 8199 beq.w 8006ff6 <d_print_comp+0x133e> 8006cc4: 29ff cmp r1, #255 ; 0xff 8006cc6: f817 8f01 ldrb.w r8, [
in „ROM-Auslastung von C++-Programm reduzieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
siggen1-F_Fab.pdf
o o 100pF20402 o 1n_060E 3 3 o 3 R74 C86 C )10R790C762 1kC C100 08000 C R114 R 1 0 ( 095 U8 5 U191nCC1710C MountingHole_Pad_MP 1k S Z 11kn_C606 C138 0 1100nF 100 CCnn 3 1_ 3_MountingHole_Pad_MP 9 5 B _ 1n_0603 5 U10pHMC316MS8(E) C00 0G9Ln-81L16 0 U RUPotDntiometern C 0CM2 3 )11R70 C 1 3 0 3 10uF/251/
in „KiCAD: durchsuchbarer Bestück-Plan als pdf?“ · Platinen ·
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PDF
488161_1_.pdf
5300 100 300 / 10,0 M43 204 / 304 XK 1:8,8 3 1400 31,0 / 6000 100 300 / 10,0 M75 204 / 304 XL3S 4 1100 17,0 / 4500 100 300 / 10,0 M3 203 1300cc 5 1000 34,0 / 4200 100 300 / 17,0 XC1 404 XC1 (1960) 6 1000 29,0 / 5000 100 300 / 10,0 M48 404 / 504 / 505 XC5, XB5, XC6, XC7, XM7, XN1 7 1000 21,0 / 5500 100
in „Funktionsweise von analogen elektronischen Drehzahlmessern?“ · Analoge Elektronik und Schaltungstechnik ·
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super.pdf
...............................................96 11.4.3 Compare-Modus 0 mit den Registern CRC und CC1 bis CC3..................................98 11.4.4 Initialisierung von CRC und CC1 bis CC3................................................................99 11.4.5 Interrupts mit CRC und CC1 bis CC3
in „Handyansteuerung über uC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
super.pdf
...............................................96 11.4.3 Compare-Modus 0 mit den Registern CRC und CC1 bis CC3..................................98 11.4.4 Initialisierung von CRC und CC1 bis CC3................................................................99 11.4.5 Interrupts mit CRC und CC1 bis CC3
in „Facharbeit Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
P89C51RC_IN.pdf
PARAMETER TEST UNIT CONDITIONS MIN TYP 1 MAX V Input low voltage 4.5 V < V < 5.5 V –0.5 0.2V –0.1 V IL CC CC V Input high voltage (ports 0, 1, 2, 3, EA) 0.2V +0.9 V +0.5 V IH CC CC V Input high voltage, XTAL1, RST 0.7V V +0.5 V IH1 CC CC V = 4.5 V VOL Output low voltage, ports 1, 2, 3 CC 2 0.4 V OL = 1.6
in „[V] 8St. 8051er Philips P89C51RC+IA PLCC44 (6€)“ · Markt ·
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PDF
27920-Humidity-Sensor-Datasheet.pdf
productionMore information are available on request ● Environmental and recycling information : - HS1100/HS1101 sensors are lead free components - HS1100/HS1101 sensors are free of Cr (VI), Cd and Hg. PACKAGE A Dim Min(mm) Max(mm) C B OUTLINE HS1100 E A 9.70 10.20 D B 5.70 6.20 Dim Min(mm) Max(mm) 2 1
in „Sensor anschließen ?“ · Mikrocontroller und Digitale Elektronik ·
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schematic.PDF
PIV101 PIV102 +5V POLLO1_N PIC902 PIC901 P20 C02 P12 P52 CC10 P102 C2 CC11 I1 22 GND P20 C121 C0 CC13 P10 C141 P50 C151 B ~ 160Hz 100n 100n +5V 100n 100n 100n 100n R19 GND GND C0 R200 10k GND GND GND GND GND 100k C2 CC16 PIR1901 PIR1902 100n PIR2001 PIR2002 B
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PDF
ixTDM-Schematic-PCB-v1.1.pdf
M 1 0P I M 1 0 4 VDD PIP402 PB 4 Pin PC Header 2H VCC U2U2 GND D1D1 1: Black 2: Brown VCC PA MBRS1100 P2 P I U 2 VCC (PCINT0/CLKO/ICP1) PB0 2 0 1 2 B CC44 P I U 2 VCC (PCINT1/OC1A) PB1 U 2 0 1 3TCH1 PDQ2030COQ1 B P1 100nSemi (PCINT2/SS/OC1B) P15014 MOSICH2 COC9 VCC GND IRF7403 GND (PCINT3/OC2A/MOSI)
in „Sammelbestellung? Mini-Platine: 3 Kanal Power-PWM mit ATMega+IR+RS485“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_V2Xe_2-Axis_Compass_Module.pdf
voltage 3.0 VDC Idle current 0.20 mA Continuous current 2.0 mA Processor frequency (V = 3V) 8 MHz CC Low-level input (CC = 3V) V SS V SS0.6 VDC High-level input (V = 3V) 0.8 x V V CC CC CC Low-level output (CC = 3V) V SS V SS0.25 VDC High-level output (V = 3V) V – 0.25 VDC V CC CC CC Operating Temperature
in „V2Xe 2-Axis Compass Modul“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IR21844.pdf
0.3 HO S B VCC Low side and logic fixed supply voltage -0.3 25 V VLO Low side output voltage -0.3 V CC+ 0.3 DT Programmable dead-time pin voltage (IR21844 only) V - 0.3 V + 0.3 SS CC V IN Logic input voltage (IN & SD) V SS- 0.3 VSS+ 10 VSS Logic ground (IR21844 only) V CC - 25 V CC+ 0.3 dVS/dt Allowable
in „Simulation IR2183 Halbbrückentreiber“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
meincode.c
1101nnnn - Befehl Programmchange, nnnn ist der Kanal // 0ppppppp - neues Program //midi_controlchange // 1100nnnn - Befehl Programmchange, nnnn ist der Kanal // 0ccccccc - zu ändernder Parameter (0 -119, 120 - 127 systemintern) // 0vvvvvvv - neuer Wert (1-127) #define MIDI_CC 0xB0 #define MIDI_CHANMASK 0x0F
in „Midi Programm Change wird von Midigerät nicht erkannt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
89C51RD2.pdf
when a 100mV change from OH/OLolevel occuOH OL↓ 〉 20mA. SU00011 Figure 38. Float Waveform VCC V –0.5 CC 0.5V CC CHCX VCC tCHCL tCLCX tCLCH V CC VCC t 89C51RB2 CLCL RST P0 89C51RC2 SU01297 89C51RD2 EA (NC) XTAL2 Figure 41. Clock Signal Waveform for I CC Tests in Active and Idle Modes. CLOCK SIGNAL XTAL1 tCLCL = tCHCL = 10 ns VSS VCC SU01294 CC Figure 39. I Test Condition, Active Mode. CC VCC All other pins are disconnected RST VCC EA P0 89C51RB2 VCC 89C51RC2 89C51RD2 CC (NC) XTAL2 VCC XTAL1 RST VCC VSS EA 89C51RB2 P0 89C51RC2 89C51RD2 SU01296
in „P89C51RC2 12Clock mod“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IGBT_Datenblatt.pdf
Value Parameter Symbol Conditions Unit min. typ. max. Dynamic Characteristic Input capacitance C - 1100 - ies Output capacitance Coes V CE 25V, V GE0V, f = 1MHz - 70 - pF Reverse transfer capacitance Cres - 32 - Gate charge QG V CC 480V, I C= 20.0A, - 120.0 - nC V GE 15V Internal emitter inductance measured
in „Verluste eines IGBTs mit integrierter, antiparalleler Diode“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
ISP.txt
0C00n2802+0C00n2002-0D00n2802+0D00n2002-0E00n2802+0E00n2002-0F00n2802+0F00n2002-1000n2802+1000n2002-1100n2802+1100n2002-1200n2802+1200n2002-1300n2802+1300n2002-1400n2802+1400n2002-1500n2802+1500n2002-1600n2802+1600n2002-1700n2802+1700n2002-1800n2802+1800n2002-1900n2802+1900n2002-1A00n2802+1A00n2002-1B00n2802
in „Warum ließt AtmelStudio vor Programmieren?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ir2183.pdf
0.3 HO S B VCC Low side and logic fixed supply voltage -0.3 25 V VLO Low side output voltage -0.3 V CC+ 0.3 DT Programmable dead-time pin voltage (IR21834 only) V - 0.3 V + 0.3 SS CC V IN Logic input voltage (HIN ) V SS- 0.3 VSS+ 10 VSS Logic ground (IR21834 only) V CC - 25 V CC+ 0.3 dVS/dt Allowable
in „Simulation IR2183 Halbbrückentreiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1776fs.pdf
(Pin2):Thispinisusedtopowertheinternalcontrol CC Applications Information). circuitryoffoftheswitchingsupplyoutput.Properuseof SYNC(Pin6): Pinusedtosynchronizeinternal oscillator thispinenhancesoverallpowersupplyefficiency.During to the external frequency
in „Stromausfall Datensicherung auf EEprom“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Controller.pdf
PIU105 R R PIR20 CJ11 1PIQ101 PIQ105 ECC55 R1R CO1 0 C C2C1C 3 C3C C1C COP1C R2R PIJ101 P4Q104 E C6C C1100N 10K C010U 02 C0 PIU104BYPASS GND PIU102C010U C2 P2 3K3 6AminIN PIJ102 2 220U 52 PIR10 1 CC10N LP2985AIM5-3,3 1 PIR201 Prog. Stecker CON_2_Screw DA +5V GND GND GND GND IA +3.3V +3.3V CJ22 TC2030 DKN0603
in „RTC Kapazitäten abgleichen, Genauigkeit erhöhen (STM32)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX31855.pdf
Power-Supply Voltage VCC (Note 2) 3.0 3.3 3.6 V Input Logic 0 VIL -0.3 +0.8 V V + Input Logic 1 VIH 2.1 CC V 0.3 DC Electrical Characteristics (3.0V ≤ V P 3.6V, T = -40°C to +125°C, unless otherwise noted.) CC A PARAMETER SYMBOL CONDITIONS MIN TYP MAX UNITS Power-Supply Current I 900 1500 µA CC TA= -40°C
in „Thermoelementcontroller MAX31855 conversion time“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CONTROL_IC_IR2109PBF_DIP_8__IR.pdf
output voltage -0.3 VCC + 0.3 DT Programmable dead-time pin voltage (IR21094 only) V - 0.3 V + 0.3 SS CC V IN Logic input voltage (IN & SD) V SS- 0.3 V CC+ 0.3 VSS Logic ground (IR21094/IR21894 only) V CC - 25 V CC+ 0.3 dVS/dt Allowable offset supply voltage transient — 50 V/ns PD Package power dissipationA
in „1. Schaltung Mosfet Treiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FUTABA_LCD_Emulators.pdf
NA402SD10AA/BA-### - 220 300 High-level input voltage (see Note) (E,R/W,RD/,SCK,RST/) V IH1 0.8*VCC - V CC V Low-level input voltage (see Note) V IL1 0.0 - 0.2*V CC V (E,R/W,RD/,SCK,RST/) High-level input voltage (see Note) (all inputs except E,R/W,RD/,SCK,RST/) V IH2 0.7*VCC - V CC V Low-level input voltage (see Note) V IL2 0.0 - 0.3*V CC V (all inputs except E,R/W,RD/,SCK,RST/) High-level output voltage (I = -0.1mA) V OH V CC-0.5 - - V OH Low-level output voltage V OL - - 0.5 V (OL = 0.1mA) Input current (see Note) II -500 - 1.0 uA Note
in „AVR Futaba Parallel "I80-Type" adaptieren auf "M68-Type"“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Futaba_LCD_Emulators.pdf
NA402SD10AA/BA-### - 220 300 High-level input voltage (see Note) (E,R/W,RD/,SCK,RST/) V IH1 0.8*VCC - V CC V Low-level input voltage (see Note) V IL1 0.0 - 0.2*V CC V (E,R/W,RD/,SCK,RST/) High-level input voltage (see Note) (all inputs except E,R/W,RD/,SCK,RST/) V IH2 0.7*VCC - V CC V Low-level input voltage (see Note) V IL2 0.0 - 0.3*V CC V (all inputs except E,R/W,RD/,SCK,RST/) High-level output voltage (I = -0.1mA) V OH V CC-0.5 - - V OH Low-level output voltage V OL - - 0.5 V (OL = 0.1mA) Input current (see Note) II -500 - 1.0 uA Note
in „Hat schon jemand was mit dem FUJITSU VF60 Display gemacht?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dtmf-decoding-encoding.txt
866.66667) 25.560 (26) 0.440 * 900 (900.00000) 27.000 (27) 0.000 * 941 (933.33333) 28.230 (28) 0.230 * 1100 (1100.00000) 33.000 (33) 0.000 * 1209 (1200.00000) 36.270 (36) 0.270 * 1300 (1300.00000) 39.000 (39) 0.000 * 1336 (1333.33333) 40.080 (40) 0.080 **** I took out 1477.. too close to 1500 * 1477 (1466.66667
in „CTCSS decoder / encoder“ · Mikrocontroller und Digitale Elektronik ·
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PDF
177932_1.pdf
1.6 mA 5 Output high voltage (CMOS) VOHC V – 0.4 — V V –I = 0.6 mA 6 CC CC OH Output low voltage (CMOS) VOLC 0 — 0.4 V OL= 0.6 mA 6 Input leakage current IN –5 — 5 A VIN = 0 –CC 7 Three-state leakage current TSL –10 — 10 A VOUT = 0 – CC 8 Power dissipation (1) PW1 — 10 15
in „GrafikLCD an ATmega328“ · Mikrocontroller und Digitale Elektronik ·