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Datei
ioat91sam7se512.h
< 16) // (TC) Clock Enabling #define AT91C_TC_MTIOA ((unsigned int) 0x1 << 17) // (TC) TIOA Mirror #define AT91C_TC_MTIOB ((unsigned int) 0x1 << 18) // (TC) TIOA Mirror // -------- TC_IER : (TC Offset: 0x24) TC Channel
in „AT91SAM7SE512 Einstieg“ · Mikrocontroller und Digitale Elektronik ·
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zl9prg.pdf
programator nie będzie przekraczał 3 mA. Rys. 1. Schemat elektryczny programatora ZL9PRG w w w .b tc .p l 2 ZL9PRG – Programator ISP układów PLD i mikrokontrolerów firmy Atmel (v. 1.0) ZL9PRG umożliwia jednoczesne programowanie wielu układów CPLD pod warunkiem, że są one połączone w łańcuch JTAG. !
in „AT89S8253 programmieren“ · Mikrocontroller und Digitale Elektronik ·
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murata_resonators.pdf
, 4.19, 4.91, 5.00, 6.00, 8.00, 10.00MHz) *2 At -20 to +80D *3 For 10 years at room temperature *4 TC74HCU04 is used as the standard circuit for the MXJ040 series. *5 If connected with incorrect orientation, the above specification may not be guaranteed. *6 CSTCS series shall be recommended in automotive
in „Interessante Unbekannte“ · Mikrocontroller und Digitale Elektronik ·
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Thread
CNC-Fräse im Selbstbau
den rest der mechanik zu regeln: Genaue Typenbezichnungen: PM35L - 048 - HPC8 C2145 - 60012 TC4Z10B Datenblatt: http://www.eminebea.com/content/html/en/motor_list/pm_motor/pdf/pm35l048.pdf PM55L - 048 - HPB8 C2145 - 60010 TC4Z23A Datenblatt: http://www.eminebea.com/content/html/en/motor_list
(23 72 05-38) 4,50€ dazu passendes Linearkugellager (21 69 92-38) 10,95€ oder Bundbuchsen (23 74 26-38) 1,60€, wobei mir das Linearlager mehr gefällt.
Mechanik, Gehäuse, Werkzeug ·flintstone · ·659 Antworten
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Thread
TWI: keine Verbindung zw. AtMega32 und Temp.sensor TC74
Hast Du die richtige Adresse gewählt (Datenblatt S.9)? TC74A0-3.3VCT 1001 000 V0 TC74A1-3.3VCT 1001 001 V1 TC74A2-3.3VCT 1001 010 V2 TC74A3-3.3VCT 1001 011 V3 TC74A4-3.3VCT 1001 100 V4 TC74A5-3.3VCT 1001 101* V5 TC74A6-3.3VCT 1001 110 V6 TC74A7-3.3VCT 1001 111 V7 TC74A0-5.0VCT 1001 000 U0 TC74A1-5.0VCT 1001 001 U1 TC74A2-5.0VCT 1001 010 U2 TC74A3-5.0VCT 1001 011 U3 TC74A4-5.0VCT 1001 100 U4 TC74A5
Mikrocontroller und Digitale Elektronik ·dagobert · ·7 Antworten
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TIC246D.pdf
CURRENT LATCHING CURRENT vs vs CASE TEMPERATURE CASE TEMPERATURE TC08AD TC08AE 100 1000 m A - - n 10 n 100 e e u u C C n n d h o t H L -H 1 - 10 I I Vsupply GTM Vsupply VAA= ± 12 V + I = 0 + + G + - V = ± 12 V - InitiatinTMI= 100 mA - - AA - + 0·1 1 -60 -40 -20 0 20 40 60 80 100 120 -60 -40 -20 0 20 40 60 80 100 120 TC- Case Temperature - °C TC- Case Temperature - °C Figure 3. Figure 4. P R O D U C T I N F O R M A T I O N 3 TIC246 SERIES SILICON TRIACS DECEMBER 1971 - REVISED JUNE 2000 MECHANICAL DATA TO-220 3-pin
in „Triac belastbarkeit“ · Mikrocontroller und Digitale Elektronik ·
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KS0093.pdf
CONTROLLER FOR STN LCD PAD CONFIGURATION 6 8 7 ............................ 167 86 Y . . . (0,0) X 179 74 ........................... 1 7 DUMMY PAD 3 PAD Figure 2. Pad Configuration Table 1. KS0093 Pad Dimensions Size Item Pad No. Unit X Y Chip size - 7020 1620 1 ~ 73 90 Pad pitch 74 ~ 179 80 1 ~ 73 60 100 μm 74 ~ 86 100 50 Bumped pad size 87 ~ 166 50 100 167 ~ 179 100 50 Bumped pad height All pad 17 COG Align Key Coordinate ILB Align Key Coordinate 30μm 30μm 30μm 30μm 30μm 30 μ 42μm 10μ m 10μ m 42μm 0 4 4 m
in „LCD seriell ansteuern ST7093/KS0093“ · Mikrocontroller und Digitale Elektronik ·
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ETXDesignGuide120.pdf
GND 68 GND 19 VCC 20 VCC 69 AD16 70 CBE2# 21 SERIRQ 22 REQ0# 71 AD17 72 USB3 23 AD0 24 3V 73 AD19 74 AD18 25 AD1 26 AD2 75 AD20 76 USB0# 27 AD4 28 AD3 77 AD22 78 AD21 29 AD6 30 AD5 79 AD23 80 USB1# 31 CBE0# 32 AD7 81 AD24 82 CBE3# 33 AD8 34 AD9 83 VCC 84 VCC 35 GND 36 GND 85 AD25 86 AD26 37 AD10 38
in „Entwicklung eines ETX Basisbords“ · Mikrocontroller und Digitale Elektronik ·
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s1d13700.pdf
edge 0.5Tc - 5 ⎯ 0.5Tc - 4 ⎯ ns t5 FPDAT[3:0] hold from FPSHIFT falling edge 0.5Tc - 5 ⎯ 0.5Tc - 4 ⎯ ns t6 FPLINE rising edge delay from FPSHIFT rising edge 0 4 0 4 ns t7 Latch pulse width Tc - 5 ⎯ Tc - 4 ⎯ ns
in „LPC2140 an S1D13700 Display driver“ · Mikrocontroller und Digitale Elektronik ·
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solder_mask.pdf
X 12K 12K0 X 51.1K 51K1 X X X 127 127R X 2.67K 2K67 X X 12.1K 12K1 X X 53.6K 53K6 X 150 150R X X 2.74K 2K74 X 12.4K 12K4 X X 56.2K 56K2 X 200 200R X X 2.94K 2K94 X 12.7K 12K7 X 57.6K 57K6 X 215 215R X 3.01K 3K01 X X 13K 13K0 X X 60.4K 60K4 X 249 249R X X 3.09K 3K09 X X 13.3K 13K3 X X 64.9K 64K9 X 274
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irlu024N.pdf
Factor ≤ 0.1 % i r D , Fig 10a. Switching Time Test Circuit ID 5 VDS 90% 0 25 50 75 100 125 150 175 TC, Case Temperature ( C) ° 10% VGS Fig 9. Maximum Drain Current Vs. d(on) r d(off)f Case Temperature Fig 10b. Switching Time Waveforms 10 ) C t D = 0.50 Z ( 1 s 0.20 n p 0.10 s 0.05 e l 0.02 PDM a 0.1
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AD5415.pdf
±1 nA Data = 0x0000, TA= 25°C, OUT1 ±10 nA Data = 0x0000, OUT1 REFERENCE INPUT 1 Typical Resistor TC = −50 ppm/°C Reference Input Range ±10 V V REFV REFnput Resistance 8 10 12 kΩ DAC input resistance V REFo V REFnput Resistance 1.6 2.5 % Typ = 25°C, Max = 125°C Mismatch R 1 FBResistance 16 20 24 kΩ
in „D/A mit Stromausgang“ · Mikrocontroller und Digitale Elektronik ·
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AN920-D_MC34063_Theory_and_Applications_.pdf
regulator’s output is ↓ nominal (‘B’ = 0). Begins Ramp–Down 0 0 0 No change since ‘B’ was 0 beforeTC Ramp– Down. Ramping Down 0 0 1 0 No change even though switching regulator’s output < nominal. Output switch cannot be initiated durinT R Ramp–Down. Ramping Down 0 0 1 0 No change since output switch
in „MC34063 Strombegrenzung“ · Mikrocontroller und Digitale Elektronik ·
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LT1019.pdf
1% V IN IN 1% LT1019-5 LT1019-10 5k* TRIM 5k* TRIM –1% TRIM –1% TRIM GND GND 4.02k 4.02k 1% 1% *LOW TC CERMET 1019 TA06 *LOW TC CERMET 1019 TA04 Precision 1µA Current Source Negative Series Reference 15V V+ 11.5k OUT IN 1% R1* LT1019 LT1019-2.5 IN OUT TRIM 5k* 8.25k GND D1* GND 1% R2* – –V IN Q1 –VREF
in „Hochgenaue 2.5V Referenz“ · Mikrocontroller und Digitale Elektronik ·
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irlu024n.pdf
Factor ≤ 0.1 % i r D , Fig 10a. Switching Time Test Circuit ID 5 VDS 90% 0 25 50 75 100 125 150 175 TC, Case Temperature ( C) ° 10% VGS Fig 9. Maximum Drain Current Vs. d(on) r d(off)f Case Temperature Fig 10b. Switching Time Waveforms 10 ) C t D = 0.50 Z ( 1 s 0.20 n p 0.10 s 0.05 e l 0.02 PDM a 0.1
in „Konstantstromquelle mit JFet“ · Analoge Elektronik und Schaltungstechnik ·
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AD9833.pdf
SIGNAL DAC SPECIFICATIONS Resolution 10 Bits Update Rate 25 MSPS VOUT Max 0.65 V VOUT Min 38 mV V TC 200 ppm/∞C OUT DC Accuracy Integral Nonlinearity ±1.0 LSB Differential Nonlinearity ±0.5 LSB DDS SPECIFICATIONS Dynamic Specifications Signal-to-Noise Ratio 55 60 dB f = 25 MHz, f = f /4096 MCLK OUT
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TSL220.PDF
SOES003 – AUGUST 1990 – REVISED JUNE 1991 APPLICATION INFORMATION VCC VCC VCC VCC 14 16 6 3 4 16 5 SN74HC4024 1/2 J K SN74HC153 OUT CLK Q CK 12 6 7 2 1 15 1 QA 11 5 C0 Y Output C TSL220 SN74HC76 QB C1 4 9 4 To P 2 QC 6 3 C2 5 CLR QD C3 14 A Range 7 B 2 Select Inputs 1 8 From P NOTE: Adjust C for useful
in „timer 2 interrupt?“ · Mikrocontroller und Digitale Elektronik ·
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osd_draft.pdf
C2007 27p C3002 0 R3022 N.U. 10 R 2.2 N.U. R3031 6.8k TP3004 1 . 4 1 1 R2047 IC2002 0 . 0 0 00 470 TC7WU04FU C N 2 E C 4 k R 3 2 3 k 9 D3002 R TP3002 2 . 4 . 3 . 1 0 3 . 1 . DAP202K 3 . 0 . R 6 3 1 3 . 3 3 R N C N C R N C C2021 1000p R3039 Q3005 R2042 1M 1k 1 XN0F256 0 2 C2022 1000p 0 3 k 6 3 2 TP3001 7 . 3 . 1 0 R 0 . IC2003 R 6 3 1 TP3003 C N TC74HC4066AFT 3 C 0 2 C3013 N.U. R C3001 R3021 R3023 R3030 R3043 R3045 2.2 R3017 N.U. N.U. 6.8k C3003 47-1/4 10-1/4 0 u R2034 0 7 0 10 1k L 0 9 . 1 . IC3002 9 0 . 0 . 7 . NJM4580V 0 7 3 N 3 N IC3003 0 .
in „Taktquelle umschalten“ · Mikrocontroller und Digitale Elektronik ·
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21483b.pdf
TC9400/9401/9402 Voltage-to-Frequency/Frequency-to-Voltage Converters Features General Description VOLTAGE-TO-FREQUENCY The TC9400/TC9401/TC9402 are low cost voltage-to- frequency (V/F) converters, utilizing
in „Frequenzen vervielfachen“ · Mikrocontroller und Digitale Elektronik ·
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EN0170EJ1V0DS00.PDF
TIMING (1) mode: NTSC, internal CLK Parameter Symbol min. typ. max. Unit Remarks CLK Frequency 1 / tc – 6.36 – MHz – – 157.32 – ns Rise/fall tcrf – – 70 ns – Duty tch / tc 0.4 0.5 0.6 – – HS Frequency th 60.38 63.56 66.74 s 15.734 kHz – 404 – CLK (typ.) Display thd – 50.34 – s – – 320 – CLK Pulse-width
in „Luminance Control Signal“ · Mikrocontroller und Digitale Elektronik ·
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CSTCW-Series.pdf
, 4.19, 4.91, 5.00, 6.00, 8.00, 10.00MHz) *2 At -20 to +80D *3 For 10 years at room temperature *4 TC74HCU04 is used as the standard circuit for the MXJ040, MX03 and MX01 series (Except MX series 60.01-70.00MHz). SN74AHCU04 is used as the standard circuit for MX series (60.01-70.00MHz) *5 If connected
in „AVR+interner RC Oszillator extrem ungenau“ · Mikrocontroller und Digitale Elektronik ·
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ks0066u.pdf
- Data Hold Time tH2 10 - - E Cycle Time tc 500 - - E Rise / Fall Time tR F - - 20 E Pulse Width (High, Low) tw 230 - - Read Mode R/W and RS Setup Time tsu 40 - - ns (Refer to Fig-7) R/W and RS Hold Time tH 10 - - Data Output Delay Time tD - -
in „4x40 LCD Display ohne HD Controller ansteuern.“ · Mikrocontroller und Digitale Elektronik ·
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LT1300.pdf
82 IN PGND I V = 2.0V GND E 80 IN 8 1 78 L1 =COILCRAFT DO1608-103 LT1300 TA1 76 OR SUMIDA CD54-100 74 C1 =AVX TPSD107M010R0100 1 10 100 500 OR SANYO OS-CON 16SA100M LOAD CURRENT (mA) D1 =MBRS130LT3 LT1300 TA2 OR 1N5817 1 LT1300 W W W U U W U ABSOLUTE MAXIMUM RATINGS PACKAGE/ORDER INFORMATION V INltage
in „Regulierte 3.3v spannung bei 3.7v batterie?“ · Analoge Elektronik und Schaltungstechnik ·
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Manual_netX_Program_Reference_Guide_Rev02_GB.pdf
Register 0x00100850 GPIO_TC4 GPIO 4 Threshold or Capture Register 0x00100854 GPIO_TC5 GPIO 5 Threshold or Capture Register 0x00100858 GPIO_TC6 GPIO 6 Threshold or Capture Register 0x0010085c GPIO_TC7 GPIO 7 Threshold or Capture
in „netX500 mit ARM-Kern“ · Mikrocontroller und Digitale Elektronik ·
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TDA1562_PHI.pdf
input MID LOW Vref reference VRT voltage 0 HIGH status I/O input MID LOW HIGH status I/O MID class-H (Tc< 120 °C) output class-B (Tc> 120 °C) LOW output voltage 0 across load quick start zerocross change fast mute zerocross mute supply mute mute class B/H-operation function function function MGL272 Fig.3
in „Frage zu TDA1562 I/O Pin“ · Mikrocontroller und Digitale Elektronik ·
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555an.pdf
monostable operation at low standby power. This circuit interfaces directly with CMOS 4000 series and 74L00 series. During the monostable time, the current drawn is 4.5mA for T=1.1RC. The rest of the time the current drawn is less than 50 A. (Circuit submitted by Karl Imhof, Executone Inc., Long Island
in „Nachbau NE555 ->interner Aufbau“ · Mikrocontroller und Digitale Elektronik ·
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cfspc3_0.pdf
........................................................................................132 Figure 74: Recalibrate...............................................................................................................................133 Figure 75: Request Sense................................
in „Lucky-page@gmx.de“ · Mikrocontroller und Digitale Elektronik ·
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KTY81.pdf
990 1020 ±3.02 −50 −58 0.98 990 1019 1049 ±2.92 1010 1040 1070 ±2.92 −40 −40 0.96 1094 1123 1153 ±2.74 1116 1146 1176 ±2.74 −30 −22 0.93 1205 1235 1264 ±2.55 1230 1260 1290 ±2.55 −20 −4 0.91 1325 1354 1382 ±2.35 1352 1381 1410 ±2.35 −10 14 0.88 1452 1480 1508 ±2.14 1481 1510 1538 ±2.14 0 32 0.85 1587
in „Spannungsquelle für KTY - gegeneinander entkoppeln?“ · Analoge Elektronik und Schaltungstechnik ·
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LCD_Display_1602.pdf
ns DB0 ~ DB7 Write cycle (Figure 5) Parameter Symbol Min. Type Max. Unit Test PIN Enable cycle time tc 500 - - ns E Enable H level pulse width tw 220 - - ns E Enable rise/fall time tr,tf - - 25 ns E RS, R/W setup time tsul 40 - - ns R/W, RS RS, R/W address hold time th1 10 - - ns R/W, RS Date setup time
in „AT89S8252 in C programmieren“ · Mikrocontroller und Digitale Elektronik ·
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191655-as-01-de-Gleichstromzaehler.pdf
a e t l 4 z 1 z 1 g i t e b s n w m i s i s g n w t ) i e e t 5 6 7 8 e u e u s e e e A p e d i V TC TC V n fi n fi e g d ö u a t e e S S . g . g k n n - f y - n r t - , 2 4 2 1 1 d t x x x x x s t M Sc A St ä Z A u h s f h h n S M S e a a e e e h h t h r b d s m m u u r u M e b e o o ß e e 3 M o - u
in „Akkustandkontrolle“ · Mikrocontroller und Digitale Elektronik ·
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ds1879a.pdf
02h (LDN number) to 01h. Then program device registers “2” = DRQC/DACKBC are unused 60h-65h, 70h, 74h, and 75h. Leave register 72h set at “0” = DRQD/DACKBD are unused 00h (second interrupt not used). Finally, set register 30h to 01h in order to activate the audio device. register 74h, LDN 1 = 01h register
in „Informationen über ISA-Karten“ · Mikrocontroller und Digitale Elektronik ·
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KTY81-2_PHI.pdf
990 1020 ±3.02 −50 −58 0.98 990 1019 1049 ±2.92 1010 1040 1070 ±2.92 −40 −40 0.96 1094 1123 1153 ±2.74 1116 1146 1176 ±2.74 −30 −22 0.93 1205 1235 1264 ±2.55 1230 1260 1290 ±2.55 −20 −4 0.91 1325 1354 1382 ±2.35 1352 1381 1410 ±2.35 −10 14 0.88 1452 1480 1508 ±2.14 1481 1510 1538 ±2.14 0 32 0.85 1587
in „KTY 81 110 an Mega“ · Mikrocontroller und Digitale Elektronik ·
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sn75lvds82.pdf
2(see Figure 7) |Input clock jitter| < 50 ps 490 ps d Delay time, CLKIN↑ to CLKOUT↓ (see Figure 7) tc= 15.38 ns (±0.2%), C L 8 pF 3.7 ns tc= 15.38 + 0.75 sin (2π500E3t) ±0.05 ns, See Figure 8 ±80 tc(o) Cycle time, change in output clock period(4) ps tc= 15.38 + 0.75 sin (2π3E6t) ±0.05 ns, See Figure
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mc68hc11a1.pdf
SCI interrupt requested when TDRE status flag is set TCIE — Transmit Complete Interrupt Enable 0 = TC interrupts disabled 1 = SCI interrupt requested if TC is set to one RIE — Receiver Interrupt Enable 0 = RDRF and OR interrupts disabled 1 = SCI interrupt requested when RDRF flag or the OR status flag
in „mc68hc11a1fn-uC-8bit“ · Markt ·
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mpsa42.pdf
Data, continued SOT-23 Embossed Carrier Tape Configuration: Figure 3.0 P0 P2 D0 D1 T E1 F W E2 B0 Wc Tc P1 A0 K0 User Direction of Feed Dimensions are in millimeter Pkg type A0 B0 W D0 D1 E1 E2 F P1 P0 K0 T Wc Tc SOT-23 3.15 2.77 8.0 1.55 1.125 1.75 6.25 3.50 4.0 4.0 1.30 0.228 5.2 0.06 (8mm) +/-0.10 +
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kurs_ss05_050531.pdf
E • Phasenverschiebung durch Transistoreigenschaften - Verwendung als Phasen- umkehrstufe d Y g V 74 0 Akademische Funkgruppe der Universität Stuttgart e.V. – DKØSU © Amateurfunk-Vorbereitungskurs Klasse A Studium Generale Universität Stuttgart Schaltungsparameter (Kollektorschaltung, Emitterfolger)
in „selfmade Quartzoszillator“ · Mikrocontroller und Digitale Elektronik ·
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Adapter.pdf.pdf
programator nie będzie przekraczał 3 mA. Rys. 1. Schemat elektryczny programatora ZL9PRG w w w .b tc .p l 2 ZL9PRG – Programator ISP układów PLD i mikrokontrolerów firmy Atmel (v. 1.0) ZL9PRG umożliwia jednoczesne programowanie wielu układów CPLD pod warunkiem, że są one połączone w łańcuch JTAG. !
in „AT89S52 ISP“ · Mikrocontroller und Digitale Elektronik ·
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RequiresAcrobat6-5.pdf
Absolute Maximum Ratings Parameter Max. Units I @ T = 25°C Continuous Drain Current, @ 10V 30 D C GS D @ TC= 100°C Continuous Drain CurrenGS @ 10V 21 A DM Pulsed Drain Current 120 PD@T =C25°C Power Dissipation 94 W Linear Derating Factor 0.63 W/°C VGS Gate-to-Source Voltage ± 16 V EAS Single Pulse Avalanche
in „Power Mosfet Hexfet wie ansteuern ?“ · Analoge Elektronik und Schaltungstechnik ·
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Pcm4823.pdf
DOC® 2000 Installation Guide ............ 73 C.1 DiskOnChip® 2000 quick installation guide......... 74 C.1.1DiskOnChip®2000installationinstructions...............74 C.1.2Additionalinformationandassistance........................75 Appendix D Programming the Watchdog Timer .... 77 D.1 Programming the Watchdog
in „Hitachi SP10Q003 // SP10Q005 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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LM340.pdf
Short-Circuit T = 25˚C 2.1 1.5 1.2 A J Current Peak Output TJ = 25˚C 2.4 2.4 2.4 A Current Average TC of 0˚C ≤ TJ≤ +150˚C, I O 5 mA −0.6 −1.5 −1.8 mV/˚C V OUT VIN Input Voltage TJ= 25˚C, IO≤ 1A Required to 7.5 14.6 17.7 V Maintain Line Regulation LM340 Electrical Characteristics (Note 4) 0˚C ≤ TJ≤ +125
in „Suche Schaltung für Spannungsverdoppler von 12V auf 24V“ · Analoge Elektronik und Schaltungstechnik ·
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ks0066u.pdf
- Data Hold Time tH2 10 - - E Cycle Time tc 500 - - E Rise / Fall Time tR F - - 20 E Pulse Width (High, Low) tw 230 - - Read Mode R/W and RS Setup Time tsu 40 - - ns (Refer to Fig-7) R/W and RS Hold Time tH 10 - - Data Output Delay Time tD - -
in „LCD einfach nur ansteuern.“ · Mikrocontroller und Digitale Elektronik ·
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sed1335.pdf
Table 2. LCD parameters Parameter W/S = 0 W/S = 1 IV = 1 IV = 0 IV = 1 IV = 0 C/R C/R C/R C/R C/R TC/R TC/R TC/R (See note 1.) TC/R TC/R L/F L/F L/F L/F L/F 00H to L/F + 1 SL1 00H to L/F (See note 2.) (L/F) / 2 (L/F) / 2 00H to L/F + 1 SL2 00H to L/F (See note 2.) (L/F) / 2 (L/F) / 2 SAD1 First screen
in „Extrem schwere Frage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MC34063_AN920-D.PDF
regulator’s output is ↓ nominal (‘B’ = 0). Begins Ramp–Down 0 0 0 No change since ‘B’ was 0 beforeTC Ramp– Down. Ramping Down 0 0 1 0 No change even though switching regulator’s output < nominal. Output switch cannot be initiated durinT R Ramp–Down. Ramping Down 0 0 1 0 No change since output switch
in „Spule für Schaltnetzteil“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN920-D.PDF
regulator’s output is ↓ nominal (‘B’ = 0). Begins Ramp–Down 0 0 0 No change since ‘B’ was 0 beforeTC Ramp– Down. Ramping Down 0 0 1 0 No change even though switching regulator’s output < nominal. Output switch cannot be initiated durinT R Ramp–Down. Ramping Down 0 0 1 0 No change since output switch
in „Frage zu Schaltregler“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
fft3.asm
---------------; ; Program code area .cseg rjmp reset ; RESET rjmp 0 ; INT0 rjmp 0 ; INT1 rjmp 0 ; TC2 COMP rjmp 0 ; TC2 OVF rjmp 0 ; TC1 CAPT rjmp 0 ; TC1 COMPA rjmp 0 ; TC1 COMPB rjmp 0 ; TC1 OVF rjmp isr_adc ; TC0 OVF rjmp 0 ; SPI rjmp 0 ; USART RXC rjmp 0 ; USART UDRE rjmp 0 ; USART TXC rjmp isr_adc
in „Schnelle FFT in Assembler“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
fft232slow.asm
----------; ; Program code area .cseg rjmp reset ; RESET rjmp SyncIn ; INT0 rjmp 0 ; INT1 rjmp 0 ; TC2 COMP rjmp 0 ; TC2 OVF rjmp 0 ; TC1 CAPT rjmp 0 ; TC1 COMPA rjmp 0 ; TC1 COMPB rjmp 0 ; TC1 OVF rjmp adcint ; TC0 OVF rjmp 0 ; SPI rjmp RXData ; USART RXC rjmp 0 ; USART UDRE rjmp 0 ; USART TXC rjmp
in „Schnelle FFT in Assembler“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
fft3.asm
---------------; ; Program code area .cseg rjmp reset ; RESET rjmp 0 ; INT0 rjmp 0 ; INT1 rjmp 0 ; TC2 COMP rjmp 0 ; TC2 OVF rjmp 0 ; TC1 CAPT rjmp 0 ; TC1 COMPA rjmp 0 ; TC1 COMPB rjmp 0 ; TC1 OVF rjmp isr_adc ; TC0 OVF rjmp 0 ; SPI rjmp 0 ; USART RXC rjmp 0 ; USART UDRE rjmp 0 ; USART TXC ; rjmp isr_adc
in „Schnelle FFT in Assembler“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
FFT232b.asm
---------------; ; Program code area .cseg rjmp reset ; RESET rjmp 0 ; INT0 rjmp 0 ; INT1 rjmp 0 ; TC2 COMP rjmp 0 ; TC2 OVF rjmp 0 ; TC1 CAPT rjmp 0 ; TC1 COMPA rjmp 0 ; TC1 COMPB rjmp 0 ; TC1 OVF rjmp 0 ; TC0 OVF rjmp 0 ; SPI rjmp 0 ; USART RXC rjmp 0 ; USART UDRE rjmp 0 ; USART TXC ; rjmp isr_adc
in „Schnelle FFT in Assembler“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
FFT232b.asm
---------------; ; Program code area .cseg rjmp reset ; RESET rjmp 0 ; INT0 rjmp 0 ; INT1 rjmp 0 ; TC2 COMP rjmp 0 ; TC2 OVF rjmp 0 ; TC1 CAPT rjmp 0 ; TC1 COMPA rjmp 0 ; TC1 COMPB rjmp 0 ; TC1 OVF rjmp 0 ; TC0 OVF rjmp 0 ; SPI rjmp 0 ; USART RXC rjmp 0 ; USART UDRE rjmp 0 ; USART TXC ; rjmp isr_adc
in „Schnelle FFT in Assembler“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
fft232.asm
---------------; ; Program code area .cseg rjmp reset ; RESET rjmp 0 ; INT0 rjmp 0 ; INT1 rjmp 0 ; TC2 COMP rjmp 0 ; TC2 OVF rjmp 0 ; TC1 CAPT rjmp 0 ; TC1 COMPA rjmp 0 ; TC1 COMPB rjmp 0 ; TC1 OVF rjmp 0 ; TC0 OVF rjmp 0 ; SPI rjmp 0 ; USART RXC rjmp 0 ; USART UDRE rjmp 0 ; USART TXC ; rjmp isr_adc
in „Schnelle FFT in Assembler“ · Digitale Signalverarbeitung / DSP / Machine Learning ·