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Datei
la_register.vhd
Trigger Base Register -- S = Status Base Register -- C = Control Base Register -- O = Offsets constant TRIGGER0_BASE : addr_base_t := (7 => '1', others => '0'); constant TRIGGER1_BASE : addr_base_t := (6 => '1', others => '0'); constant EXT_TRIGGER_BASE : addr_base_t := (7|6 => '1', others => '0'); constant CONTROL_BASE : addr_base_t := (5 => '1', others => '0'); constant STATUS_BASE : addr_base_t := (4 => '1', others => '0'); ---------------------
in „Modelsim Problem- bidirektionaler Bus“ · FPGA, VHDL & Co. ·
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PDF
BC368.pdf
Conditions Min Max Units OFFCHARACTERISTICS V (BR)CEO Collector-Emitter Breakdown Voltage IC= 10 mA, I B 0 20 V V Collector-Base Breakdown Voltage I = 100 A, I = 0 25 V (BR)CES C µ E V (BR)EBO Emitter-Base Breakdown Voltage E = 10µA, IC= 0 5.0 V ICBO Collector-Cutoff Current VCB= 25 V, IE= 0 10 µ A VCB= 25 V
in „Transistor - Spannungsabfall“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ET6622.pdf
applied to VLCD pin must be lower than VDD. Adjust VR to fit LCD display, at VDD=5V, VLCD=4V, VR=15k±20%. Adjust R (external pull-high resistance) to fit user’s time base clock. Note2: Initialization process required to add "NORMAL" command in order to avoid program into non-normal operating mode. 13 Rev 1.2 Package Dimension QFP64 24.7±0.4 3.35MAX 20.0±0.2 0.05MIN 51 33 52 32 2 4 8 0 6 0 7 E 3 0 0 F 0 2 4 4 1PIN INDEX 20 64 1 19 1.0TYP 0.4±0.1 0.15±0.05 φ0.20 M 0-10° 0.1 18.0REF 1.2±0.2 22.3±0.4 Unit:mm 14 Rev 1.2 LQFP64 C D 48 33 H G I 49 3 F A
in „Hilfe bei Fehlersuche auf Platine (Displayanzeige schwach)“ · Mikrocontroller und Digitale Elektronik ·
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sja1000_beschreibung.pdf
, BaseAdr + SJA1000 CTRL); /* now set the baudrate: */ switch (BaudRate) { case 10: writeb(BTR0 VALUE 10kBAUD, BaseAdr + SJA1000 BT0); writeb(BTR1 VALUE 10kBAUD, BaseAdr + SJA1000 BT1); break; case 20: writeb(BTR0 VALUE 20kBAUD, BaseAdr + SJA1000 BT0); writeb(BTR1 VALUE 20kBAUD, BaseAdr + SJA1000 BT1); break; case 50: writeb(BTR0 VALUE 50kBAUD, BaseAdr + SJA1000 BT0); writeb(BTR1 VALUE 50kBAUD, BaseAdr + SJA1000 BT1);
in „AVR und SJA1000 CAN Controller??“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX4890E-MAX4892E.pdf
. TEMPERATURE 6 c 24 c 40 c E 22 E E X 4 TA= +85°C 4 36 4 5 M 20 M 32 M A 18 A ( 28 M 4 ) 16 N / ) ( 14 R 24 ( E U E RO 3 TA= +85°C N 12 TA= +25°C E 20 TA= +25°C TA= -40°C R 10 A 16 0 8 A 9 2 TA= -40°C L 12 6 IL (OFF) 8 1 4 8 A_ ILA_ON) 4 2 4 0 0 0 X 0 0.5 1.0 1.5
in „MAX4890E Eagle Lib“ · Platinen ·
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PDF
mpsa42.pdf
C = 10 mA, VCE = 10 V 40 C = 30 mA, VCE = 10 V 40 V CEsat Collector-Emitter Saturation Voltage C = 20 mA, B = 2.0 mA 0.5 V V BE(a) Base-Emitter Saturation Voltage C = 20 mA, B = 2.0 mA 0.9 V SMALLSIGNALCHARACTERISTICS fT Current Gain - Bandwidth Product C = 10 mA, VCE = 20 V, 50 MHz f = 100 MHz Collector-Base
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D450001D.PDF
8 17 52 376 FA X: 86 -07 55 -8 17 529 63 E-mail:trxcom@trxcom.com Http://www.trxcom.com 25 10/100Base-TX RJ45 Connector With Integrated Magnetics(Tab-Down) Trxcom Technology Inc E 15.88 15.75 11.43 1.02 21.5 8.18 BACK 12 11 10 9 3.25 13.45 4.90 3.38 1.63 3.93 3.20 3.05 6.35 LEFT LED RIGHT LED 2.54 2.54
in „Kompatible Ethernet-Buchse“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2N5088-89.pdf
Emitter Breakdown Voltage (Note 2) V(BR)CEO Vdc (C = 1.0 mAdc,BI = 0) 2N5088 30 − 2N5089 25 − Collector−Base Breakdown Voltage V(BR)CBO Vdc (I = 100 mAdc, I = 0) 2N5088 35 − C E 2N5089 30 − Collector Cutoff Current CBO nAdc (VCB = 20 Vdc,EI = 0) 2N5088 − 50 (VCB = 15 Vdc,EI = 0) 2N5089 − 50 Emitter Cutoff
in „rauscharmer NPN min 200v gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
DG24128.asm
--------------------- .equ F_CPU = 8000000 .equ CYCLES_PER_US = ((F_CPU+500000)/1000000) .equ TXT_BASE = $0000 .equ GFX_BASE = $0300 .equ FONT_SIZE = 6 .equ SPALTEN = 240/FONT_SIZE .equ GFX_ZEILEN = 128 .equ TXT_ZEILEN = 128/8 ; 0bxxxxxyyyyyyyyzzz ; x - CHR_OFFSET ; y - CHR_CODE ; z = CHR_LINE .equ CHR_OFFSET
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QM15TB-2HB.PDF
5 7 10 2 BASE CURRENT I B (A) COLLECTOR CURRENT C (A) Feb.1999 MITSUBISHI TRANSISTOR MODULES QM15TB-2HB MEDIUM POWER SWITCHING USE INSULATED TYPE SWITCHING TIME VS. BASE REVERSE BIAS SAFE OPERATING AREA CURRENT (TYPICAL) 2 32 ) VCC=600V ) 28 s 10 1 B1=90mA ( f 7 ts I=15A I , 24 t 5 T=25°C N 4 T=125°C E 20 B2=–2.5A E 3 R T=125°C I 2 U 16 T C N tf R H 10 0 T 12 C C I 7 L 8 W 5 L S 4 C 4 3 2 10 –1 2 3 4 5 7 100 2 3 4 5 7 10 1 00 200 400 600 800 1000 BASE REVERSE CURRENT –I B2(A) COLLECTOR-EMITTER VOLTAGE
in „Frequenzumrichter Ersatzteil fuer QM15TB-2H“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KSD_880.pdf
VoltagI = 50mA, I = 0 60 V CEO C B hFE1 DC Current Gain VCE = 5V,CI = 0.5A 60 300 hFE2 VCE = 5V,CI = 3A 20 VCE(sat) Collector-Emitter Saturation VoltaC = 3A,BI = 0.3A 0.4 1 V VBE(on) Base-Emitter On Voltage VCE = 5V,CI = 0.5A 0.7 1 V fT Current Gain Bandwidth Product VCE = 5V,CI = 0.5A 3 MHz C Output Capacitance
in „Suche Fairchild KSD880 und KSB 834 (Power Amplifier)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mmbt4401-d.pdf
(sat) Voltage(5) I = 500 mA, I = 50 mA 0.75 V e C B A IC= 150 mA, B = 15 mA 0.75 0.95 m V BE(sat) Base-Emitter Saturation Voltage) V p IC= 500 mA, B = 50 mA 1.20 f I = 20 mA, V = 10 V, e fT Current Gain - Bandwidth Product C CE 250 MHz r f = 100 MHz V = 5.0 V, I = 0, C cb Collector-Base Capacitance f
in „moderner Ersatztyp für BC550 Audio low noise gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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4N25.pdf
1.2 I = 5 mA F T 1.2 T 1.0 C C D IF= 10 mA D IF= 10 mA Z Z L 1.0 L 0.8 A A R R O O N 0.8 N 0.6 IF= 20 mA 0.6 0.4 Normalized to Normalized to F = 20 mA F = 10 mA F = 10 mA TA = 25°C TA= 25°C 0.4 0.2 -75 -50 -25 0 25 50 75 100 125 -60 -40 -20 0 20 40 60 80 100 TA- AMBIENT TEMPERATURE (°C) T A AMBIENT TEMPERATURE
in „optocoupler beschaltung“ · Mikrocontroller und Digitale Elektronik ·
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lg_lh-cx245_cx246_cx247_cx640__1_.pdf
14, 32 Base Assembly P2 6Chasses A-8 B 23 25,31 /Base Assembly P3 27 25,31 33 Base Loading 3 Hooks A-8 B 22 29 2,3,14 34 Base Tension Chassis Embossing A-9 T 26 30 35 Arm Assembly IdleJog LockingTab A-9 T B:Bottom
in „Netzteil von LG LH-C360 defekt“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
same70j21.h
GPBR (0x400E1890) /**< \brief (GPBR ) Base Address */ #define ICM (0x40048000) /**< \brief (ICM ) Base Address */ #define ISI (0x4004C000) /**< \brief (ISI ) Base Address */ #define MATRIX (0x40088000) /**< \brief (MATRIX ) Base Address */ #
in „SAM Atmelstudio7 Interupts ohne ASF“ · Mikrocontroller und Digitale Elektronik ·
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PDF
WW23N3SWT4-W.pdf
Ta = 25 C Allowable Forward Current ) 100 A 4.0 ) 200 P 50 u 3.5 Ta = 25 C m Ta = 25 C I ( F 100 e 20 i 3.0 t u n 2.5 e d m C 50 a 10 L 2.0 r o i 1.5 w 30 F 5 l F R 1.0 l 20 a 0.5 o 1 0 A 10 2.5 3.0 3.5 4.0 4.5 5.0 0 20 40 60 80 100 120 1 5 10 20 50 100 Forward Voltage ( V ) Forward CurrentFP (mA) Duty
in „LEDs: Konstantstrom-Multiplexing. Schaltung & Teile so ok?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
18481_BC547_data.pdf
4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C R 60 B R 4 T T 9 C IB= 20µA C / L L 5 L 40 I = 15µA L 5 C B C 1 ] ] 0 A IB= 10µA A C 20 C I I IB= 5µA 0 00.0 0.2 0.4 0.6 0.8 1.0 1.2 0 2 4 6 8 10 12 14 16 18 20 V [V], COLLECTOR-EMITTER VOLTAGE VBEV], BASE-EMITTER VOLTAGE CE
in „NPN Transistor Kennlinie verstehen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC547.pdf
4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C R 60 B R 4 T T 9 C IB= 20µA C / L L 5 L 40 I = 15µA L 5 C B C 1 ] ] 0 A IB= 10µA A C 20 C I I IB= 5µA 0 00.0 0.2 0.4 0.6 0.8 1.0 1.2 0 2 4 6 8 10 12 14 16 18 20 V [V], COLLECTOR-EMITTER VOLTAGE VBEV], BASE-EMITTER VOLTAGE CE
in „Arduino. Transistor schaltet nicht richtig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BC547B.pdf
4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C R 60 B R 4 T T 9 C IB= 20µA C / L L 5 L 40 I = 15µA L 5 C B C 1 ] ] 0 A IB= 10µA A C 20 C I I IB= 5µA 0 00.0 0.2 0.4 0.6 0.8 1.0 1.2 0 2 4 6 8 10 12 14 16 18 20 V [V], COLLECTOR-EMITTER VOLTAGE VBEV], BASE-EMITTER VOLTAGE CE
in „Basiswiderstand richtig berechnet?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC547_datasheet.pdf
4µA T VCE= 5V 5 N N 4 E 80 B = 350 A E 8 R IB= 30µA R U U 10 5 C I = 25µA C R 60 B R 4 T T 9 C IB= 20µA C / L L 5 L 40 I = 15µA L 5 C B C 1 ] ] 0 A IB= 10µA A C 20 C I I IB= 5µA 0 00.0 0.2 0.4 0.6 0.8 1.0 1.2 0 2 4 6 8 10 12 14 16 18 20 V [V], COLLECTOR-EMITTER VOLTAGE VBEV], BASE-EMITTER VOLTAGE CE
in „Frage zur Berechnung von Basiswiderstand BC547B mit Motor 5V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KSH13007A_datasheet.pdf
Characteristi( Continued ) ◎ SEMIHOW REV.A1,Oct 2007 K S Package Dimension 1 3 0 7 A TO-220 (A) ±0.20 0 9.90 ±0. 4.50±0.20 60 3 1.30±0.20 φ 2 ± 0 . . 2 6 ± ± 7 0 5 . . 1 2 ± 1 9 2.40 ±0.20 1.27±0.20 . 0 ± 1.52±0.20 0 8 2 . . 1 3 0.80±0.20 2.54typ 2.54typ 0.50±0.20 Dimensions in Millimeters ◎ SEMIHOW REV.A1,Oct 2007 K S Package Dimension 1 3 0 7 A TO-220 (B) ±0.20 0 4.57 ±0.20 ±02 .84 φ3 1.27±0.20 . ± 3 0 6 0 . 4 ± . 7 0 5 2 0 1 ±4 . 9 2.67±0.20 0 1.27 ±0.20 0 8 . . ± 3 6 1 2 0.81 ±0.20 2.54typ 2.54typ 0.40±0.20 Dimensions in Millimeters ◎ SEMIHOW REV.A1,Oct 2007
in „Molch-Cooler mit Frustration!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MJW3281A.pdf
1000 N A A 25°C T G N TJ= 100°C 25°C N TJ= 100°C R R U R C 100 C100 D C -25°C ,E -25°C , hF F h VCE= 20 V VCE= 20 V 10 10 0.1 1.0 10 100 0.1 1.0 10 100 C , COLLECTOR CURRENT (AMPS) C, COLLECTOR CURRENT (AMPS) Figure 3. DC Current Gain, V = 20 V Figure 4. DC Current Gain, V = 20 V CE CE PNP MJW1302A NPN
in „[V] 8x MJW3281A (NPN, 230 V, 15 A, 200 W, TO-247)“ · Markt ·
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MC14503B.pdf
BSC 0.050 BSC J 0.19 0.25 0.008 0.009 C K 0.10 0.25 0.004 0.009 −T− M 0_ 7_ 0_ 7_ SEPLANE P 5.80 6.20 0.229 0.244 M J R 0.25 0.50 0.010 0.019 D 16 PL 0.25 (0.010) M T B S A S STYLE 1: STYLE 2: STYLE 3: STYLE 4: PIN 1. COLLECTOR PIN 1. CATHODE PIN 1. COLLECTOR, DYE #1 PIN 1. COLLECTOR, DYE #1 2. BASE
in „Dipl. Ing Heinz Ahborn Orgel - Keine Töne mehr“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
NCP5104-D.PDF
L120 E E TOFF Low Side D100 D100 O O T 80 T 80 A TOFF Low Side A A A P 60 P 60 R R P 40 P 40 F F O 20 O 20 T T 0 0 10 12 14 16 18 20 −40 −20 0 20 40 60 80 100 120 VCC, VOLTAGE (V) TEMPERATURE (°C) Figure 10. Turn OFF Propagation Delay vs. Figure 11. Turn OFF Propagation Delay vs. Supply Voltage (VCC
in „Suche SMD Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC549-550.pdf
0) BC549B,C 30 — — C B BC550B,C 45 — — Collector–Base Breakdown Voltage V(BR)CBO Vdc (C = 10 Adc, E = 0) BC549B,C 30 — — BC550B,C 50 — — Emitter–Base Breakdown Voltage V(BR)EBO 5.0 — — Vdc (I = 10 ▯Adc, I = 0) E C Collector Cutoff Current I CBO (VCB= 30
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PDF
AN758.pdf
was chosen. This supply voltage to a level below 40 V, which is the maximum represents a 5.55 Ohm base-to-base source impedance. In a Class C push-pull circuit, where the conduction angle input voltage of the regulator. D1 is the base-emitter junction of a 2N5190, in a Case is less than 180⋅, the base-to-base
in „Stackpole Ferrit Kerne für RF Verstärker“ · HF, Funk und Felder ·
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PDF
_Motorola_AN758.pdf
was chosen. This supply voltage to a level below 40 V, which is the maximum represents a 5.55 Ohm base-to-base source impedance. In a Class C push-pull circuit, where the conduction angle input voltage of the regulator. D1 is the base-emitter junction of a 2N5190, in a Case is less than 180⋅, the base-to-base
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PDF
SR0604100MSB.PDF
SR0603271KS ¡… 270.0 10% 26 1K 796K 4.9 2.400 0.24 ¡… ¡Ó SR0603331KS 330.0 10% 28 1K 796K 4.7 3.200 0.20 SR0603391KS ¡… 390.0 10% 28 1K 796K 4.1 3.400 0.18 SR0603471KS ¡… 470.0 10% 29 1K 796K 3.5 4.550 0.15 1).¡…¡GPackaging information¡A Bulk B¡GTaping Reel 2). IDC base on temp. rise max. &¡µ L/L0A=10%
in „Pollin SMD-Induktivitäten identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
RIN32M3_CL.h
+ 0x00300UL) #define RIN_UART1_BASE (PERI_BASE + 0x00400UL) #define RIN_IIC0_BASE (PERI_BASE + 0x00500UL) #define RIN_IIC1_BASE (PERI_BASE + 0x00600UL) #define RIN_WDT_BASE (PERI_BASE + 0x00700UL) #define RIN_SYS_BASE (PERI_BASE + 0x10000UL
in „R-IN32M3-CL (Cortex-M3): Wie funktioniert Senden/Empfangen auf dem Feldbus?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2SD965.pdf
1 ■ Absolute Maximum Ratings T = 25°C a Parameter Symbol Rating Unit 0.4–0.15 0.4–0.15 Collector-base voltage (Emitter open) VCBO 40 V 2.–0.2 2.–0.2 Collector-emitter voltage (Base open) VCEO 20 V 1 2 3 2 Emitter-base voltage (Collector open) VEBO 7 V ± 1: Emitter 2 Collector current IC 5 A 2: Collector
in „CCFL Displaybeleuchtung steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DatenblattOriginalLEDAiptekt20.pdf
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 = C/W t700 Rj-a = 20 / (200 Rj-a = 40° M t500 Blue e600 e u r100 C500 u400 m Rj-a = 10°C/W C u400 m 0 Rj-a = 20°C/W i 0 Rj-a25 15°C/W 50
in „Abstrhlfläche LED“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2SC3940.pdf
max Unit Collector cutoff current CBO V CB = 20V, E = 0 0.1 µA Collector to base 2SC3940 V I = 10µA, I = 0 30 V voltage 2SC3940A CBO C E 60 Collector to emitter2SC3940 25 V I = 2mA, I = 0 V voltage 2SC3940A CEO C B 50 Emitter to base voltage VEBO
in „2SC3940 Safe Operating Area“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
bcm846s.pdf
Parameter Symbol Values Unit min. typ. max. AC Characteristics Transition frequency f - 250 - MHz T IC= 20 mA, V CE = 5 V, f = 100 MHz Collector-base capacitance C cb - 0.95 - pF V = 10 V, f = 1 MHz CB Emitter-base capacitance C eb - 9 - VEB = 0.5 V, f = 1 MHz Short-circuit input impedance h11e - 4.5 - kΩ
in „BC547 matched“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
sevs_rech_CPUZ.txt
18 (0x12), function 2 (0x02) Common header Vendor ID 0x1022 Model ID 0x7808 Revision ID 0x11 PI 0x20 SubClass 0x03 BaseClass 0x0C Cache Line 0x10 Latency 0x20 Header 0x00 PCI header Address 0 (memory) 0xFEB4F000 Subvendor ID 0x1565 Subsystem ID 0x3709 Int. Line 0x11 Int. Pin 0x02 PCI capability Caps
in „Rechner bei Video-Aufnahmen zu lahm“ · PC Hard- und Software ·
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Datei
log.txt
WiFi, silicon revision 1, 2MB external flash start scanning WiFi init esp wiFi I (321) system_api: Base MAC address is not set, read default base MAC address from EFUSE I (334) system_api: Base MAC address is not set, read default base MAC address from EFUSE phy_version: 1163.0, 665d56c, Jun 24 2020,
in „Merkwürdiges verhalten bei einem ESP8266 und dem RTOS SDK“ · Mikrocontroller und Digitale Elektronik ·
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Datei
compilerlauf-kicad-gcc7.txt
/CMakeFiles/bitmaps.dir/cpp_26/net_unlocked.cpp.o [ 20%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/new_board.cpp.o [ 20%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/new_component.cpp.o [ 20%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/new_cvpcb.cpp.o [ 20%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/new_document.cpp.o [ 20%] Building CXX object bitmaps_png/CMakeFiles/bitmaps.dir/cpp_26/new_footprint.cpp.o [ 20%] Building CXX object
in „KiCad 5.0.2 - Absturz beim Footprint-Editor Aufruf“ · Platinen ·
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PDF
KB.pdf
0.5 1.0 2.0 5.0 10 20 50 100 200 B, BASE CURRENT (mA) C, COLLECTOR CURRENT (mA) Figure 8. Collector Saturation Region Figure 9. Base–Emitter Temperature Coefficient 1.0 0.7 D = 0.5 T 0.5 E E 0.2 S C 0.3 A A 0.1 T I 0.2 0.05
in „Unbekanntes Bauteil - Aufschrift KB50“ · Mikrocontroller und Digitale Elektronik ·
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PDF
M500_Askoll__No_Variations__2018-12-02.PDF
16 PU P C21 P PI 1k P2 1k P6 P1 PR +B +B +B Uref VCC R12 VCC R23 VCC R35 PI PI1 PR0 PI21 P2 P0 PI3 P20 P0 P1 PI32 PR0 PQ R45 C C8 68R Q1 C11 68R Q4 CO18 68R Q6 4k7 C PI2 D2 P0 D5 P1 D7 R40 PI PD0 PIPIQ11 PI5 PDPQ40 PI7K PDPI601 P0 PR2 PIP2 PI U5 BAS16T U6 BAS16T U8 BAS16T R38 CQ8 560R C26 R46 3 8 C9 3
in „RX und TX Schaltung beim Askoll M505“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
t6963c.h
glcd_FONT_WIDTH 6 // pixel width #define glcd_BYTES_PER_ROW 21 // 40 chars per row #define glcd_G_BASE 0x0000 // base address of graphics memory #define glcd_T_BASE 0x0400 // base address of text memory #define glcd_wr_high() glcd_wr_PORT |= _BV(glcd_wr_PIN); #define glcd_wr_low() glcd_wr_PORT &= ~_BV
in „T6963C an Mega16 - Einige Pixel verirren sich ^^“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mode.pas
I2C_UART_IOCR = $0E; { I/O control register } Var i,j,p: Integer; Buffer: String[128]; Param: String[20]; Baud: Real; Code: Integer; { ------------------------------------- } Procedure DumpRegister ( Register: Integer ); Var Status: Byte; i: Integer; Buffer: String[20]; Begin Status := Port[I2C_UART_BASE
in „CP/M auf ATmega88“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Motorola_tech_info.pdf
100 30 1.5 10 CNY17–3 100–200 10 5 0.4 10 2.5 1.6/2.3 5 75 10 70 1.65 60 H11AV1 100–300 10 10 0.4 20 2 5*/4* 2 10 100 70 1.5 10 H11AV2 50 10 10 0.4 20 2 5*/4* 2 10 100 70 1.5 10 Table 2. Transistor Output with No Base Connection Pinout: 1–Anode, 2–Cathode, 3–N.C., 4–Emitter, 5–Collector, 6–Base (Style
in „Isolationsspannung zwischen Doppel-FETs in einem SO8-Gehäuse“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
GRAPHICS.s
ccol = 7 linsiz = 8 cgen = 10 lmult = 12 cmult = 14 hfp = 16 hbp = 17 vfp = 18 vbp = 19 q .common 20 lin = 0 col = 1 flags = 2 inten = 3 flash = 4 s common 5 flags2 .common 1 flags3 .common 1 top .common 1 bot .common 1 base .common 2 cstackp .common 1 sbase .common 2 scroll .common 1 scrsz .common
in „Retro Fieber: Z80 oder 68000 ?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
GRAPHICS.s
ccol = 7 linsiz = 8 cgen = 10 lmult = 12 cmult = 14 hfp = 16 hbp = 17 vfp = 18 vbp = 19 q .common 20 lin = 0 col = 1 flags = 2 inten = 3 flash = 4 s common 5 flags2 .common 1 flags3 .common 1 top .common 1 bot .common 1 base .common 2 cstackp .common 1 sbase .common 2 scroll .common 1 scrsz .common
in „Gibt es eine Programmiersprache mit diesem Schleifentyp?“ · Offtopic ·
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Datei
t6963c_main_v2.asm
unterdrücken .INCLUDE <m88def.inc> ; Controllertyp .equ F_CPU = 7372800 ; Systemtakt in Hz .equ TXT_BASE = 0x0000 .equ GFX_BASE = 0x0300 .equ FONT_SIZE = 6 ; änderbar über FS-Pin am Display .equ LCDMode = 0b10000000 .equ SPALTEN = 128/FONT_SIZE .equ GFX_ZEILEN = 64 .equ TXT_ZEILEN = 64/8 ;=============
in „Optimierung ASM-Code für GLCD“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT91SAM7S256.h
) 0xFFFFF400) // (PIOA) Base Address #define AT91C_BASE_CKGR ((AT91PS_CKGR) 0xFFFFFC20) // (CKGR) Base Address #define AT91C_BASE_PMC ((AT91PS_PMC) 0xFFFFFC00) // (PMC) Base Address #define AT91C_BASE_RSTC ((AT91PS_RSTC) 0xFFFFFD00) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „C Datein werden in Eclipse nicht kompiliert“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT91SAM7S256.h
) 0xFFFFF400) // (PIOA) Base Address #define AT91C_BASE_CKGR ((AT91PS_CKGR) 0xFFFFFC20) // (CKGR) Base Address #define AT91C_BASE_PMC ((AT91PS_PMC) 0xFFFFFC00) // (PMC) Base Address #define AT91C_BASE_RSTC ((AT91PS_RSTC) 0xFFFFFD00) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „AT91SAM7S256 Timer Counter PWM“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT91SAM7.h
) 0xFFFFF400) // (PIOA) Base Address #define AT91C_BASE_CKGR ((AT91PS_CKGR) 0xFFFFFC20) // (CKGR) Base Address #define AT91C_BASE_PMC ((AT91PS_PMC) 0xFFFFFC00) // (PMC) Base Address #define AT91C_BASE_RSTC ((AT91PS_RSTC) 0xFFFFFD00) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „arm-elf-ld problem, undefined reference to `__gccmain'“ · µC & Digital Electronics ·
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Datei
AT91SAM7S64.h
) 0xFFFFF400) // (PIOA) Base Address #define AT91C_BASE_CKGR ((AT91PS_CKGR) 0xFFFFFC20) // (CKGR) Base Address #define AT91C_BASE_PMC ((AT91PS_PMC) 0xFFFFFC00) // (PMC) Base Address #define AT91C_BASE_RSTC ((AT91PS_RSTC) 0xFFFFFD00) // (RSTC) Base Address #define AT91C_BASE_RTTC ((AT91PS_RTTC) 0xFFFFFD20) // (RTTC) Base Address #define AT91C_BASE_PITC ((AT91PS_PITC) 0xFFFFFD30) // (PITC) Base Address #define AT91C_BASE_WDTC ((AT91PS_WDTC) 0xFFFFFD40
in „arm-elf-ld problem, undefined reference to `__gccmain'“ · µC & Digital Electronics ·
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PDF
LED_WEISS_5MM_18000_MCD_TYP15.pdf
diagram. (3) Ranking (Ta=25°C) Item Symbol Condition Min. Max. Unit Rank V Iv F=20[mA] 22000 31000 mcd Luminous Intensity Rank U Iv F=20[mA] 15500 22000 mcd Rank T Iv F=20[mA] 11000 15500 mcd Luminous Intensity Measurement allowance is ± 10%. Color Ranks (I=20mA,Ta=25°C) Rank a0 Rank
in „LED Helligkeit mit 8-bit steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SMBTA56.pdf
SOT-23 Maximum Ratings Parameter Symbol Value Unit Collector-emitter voltage VCEO 80 V Collector-base voltage VCBO 80 Emitter-base voltage V 4 EBO DC collector current IC 500 mA Peak collector current ICM 1 A Base current I 100 mA B Peak base current IBM 200 Total power dissipatiSn, T = 79 °C Ptot 330
in „Constant Current Source“ · Mikrocontroller und Digitale Elektronik ·