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PDF
Temperaturmess.pdf
43,0 0,01 Kalibrierung 2 T [C] =T [C] = 7,7285 * ((U2-b)/a) + 44,667 * (U2 -b)/a - 90,488 Ua 2 U ADC-Ref DN / 1024 T [C] =7,7285 * ((UADC-Ref DN / 1024-b)/a) + 44,667 * (ADC-Ref DN / 1024-b)/a - 90,488 UADC-Ref 5,0 Volt DN = 600 0 - 1023 a = 3,542 b = -3,587 Ua 2 2,930 Volt Ua = 1,840 Volt mit Ua2= a *
in „Suche nach einem Temperatursensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm5165.pdf
0.001 %/V LINE-REG LM5165Y, V VIN= 4.5 V to 65 V POWER GOOD UVT RISING FB voltage rising, relativeREF1V 94% PGOOD comparator UVT FALLING FB voltage falling, relativeREF1V 87% R PGOOD on-resistance V = 1 V 80 200 Ω PGOOD FB VVINfallingPGOOD = 0.1 mA, V INMIN-PGOOD Minimum VIN for valid PGOOD V < 0.5
in „Stromverbrauch Schaltregler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1933fe.pdf
( L MINIMUM C V = 24V C VIN= 12V T N 80 IN N 80 E 600 C C VIN = 24V R I I C E E H 400 T 70 70 W S 200 D1 = MBRM140 D1 = MBRM140 60 L1 = Toko D53LCB 33H 60 L1 = Toko D53LCB 22H 0 100 200 300 400 500 600 0 100 200 300 400 500 600 0 0 20 40 60 80 100 LOAD CURRENT (mA) LOAD CURRENT (mA) DUTY CYCLE (%) 1933
in „Kann ich eine BAS85 problemslos an Stelle einer 1N4148 verwenden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1933fe.pdf
( L MINIMUM C V = 24V C VIN= 12V T N 80 IN N 80 E 600 C C VIN = 24V R I I C E E H 400 T 70 70 W S 200 D1 = MBRM140 D1 = MBRM140 60 L1 = Toko D53LCB 33H 60 L1 = Toko D53LCB 22H 0 100 200 300 400 500 600 0 100 200 300 400 500 600 0 0 20 40 60 80 100 LOAD CURRENT (mA) LOAD CURRENT (mA) DUTY CYCLE (%) 1933
in „LT Spice ein IC von Texas Insturments einbinden“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
179191-da-01-en-7809_1A.pdf
20.8 V V Output voltage IO = 5mA to 1A, PO≤15W 19 20 21 V O V I= 24 to 35V V I 22.5 to 35V, J = 25°C 200 ΔV O(1) Line regulation mV V I= 26 to 32V, J = 25°C 100 IO= 5 mA to 1.5A, TJ= 25°C 200 ΔV O(1) Load regulation mV IO = 250 to 750mA, TJ= 25°C 100 Id Quiescent current T J 25°C 6 mA IO= 5mA to 1A 0.5
in „Anfängerfragen zum 7809“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
L7800_ST.pdf
20.8 V V Output voltage IO= 5mA to 1A, P O15W 19 20 21 V O V I 24 to 35V V I 22.5 to 35V, J = 25°C 200 ∆V O(1) Line regulation mV V I= 26 to 32V, J = 25°C 100 IO= 5 mA to 1.5A, TJ= 25°C 200 ∆V O(1) Load regulation mV IO = 250 to 750mA, TJ= 25°C 100 Id Quiescent current T J 25°C 6 mA IO= 5mA to 1A 0.5
in „Spannungsversorgung +5v -5v“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SMDJ12A_TVS_Diode.pdf
- 3.300 - Dimensions in inches and (millimeters) J K L J 0.094 - 2.400 - K - 0.165 4.200 I L 0.094 - 2.400 - Solder Pads ©2011 Littelfuse, Inc. SMDJ Series (all dimensions in mm) 4 Revision: November 15, 2011, 16:49 Specifications are subject to change without notice. Please refer to http
in „Frage zu TVS Diode -> Hält sie einen ESD aus?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TL783CKC.pdf
l 1 r VO = 10 V o u 0.4 Co= 1 F t t TJ= 25⋅C p 0.5 u 0.2 I u i 0 O 0 e 0 1 2 3 4 – 0 40 80 120 160 200 240 n IO a Time – s Time – s C Figure 13 Figure 14 DESIGN CONSIDERATIONS The internal reference (see functional block diagram) generates 1.25 V nominal (V ref between OUT and ADJ. This voltage is developed
in „Wie im Bereich von 1,2Vdc - 117Vdc einstellbare Konstantspannung aus 20Vdc erzeugen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SH1106_V2.3.pdf
current - - 5 mA During sleep, TA= +25°C, V PP = 9V (External ) consumption in V PP VDD1 = 3V, VPP = 9V, REF = -12.5mA, RLOAD = 20kW, - -200 - mA SEG Segment output current Display ON. Contrast a = 256. VDD1 = 3V, VPP = 9V, REF = -12.5mA, RLOAD = 20kW, - -25 - mA Display ON. Contrast a = 32. ∆ISEG1 = (SEG
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PDF
SH1106.pdf
current - - 5 mA During sleep, TA= +25°C, V PP = 9V (External ) consumption in V PP VDD1 = 3V, VPP = 9V, REF = -12.5mA, RLOAD = 20kW, - -200 - mA SEG Segment output current Display ON. Contrast a = 256. VDD1 = 3V, VPP = 9V, REF = -12.5mA, RLOAD = 20kW, - -25 - mA Display ON. Contrast a = 32. ∆ISEG1 = (SEG
in „SH1106 Init-Sequenz“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MIDI_D_mpfung_Timeout_V101.bas
Com1_int Nosave Portb = 0 Portc = 32 Portd = 28 '61 '57 Portb.4 = 0 Portb.5 = 1 Set Portd.7 Waitms 200 Reset Portd.7 Set Portb.0 Waitms 200 Set Portd.7 Reset Portb.0 Waitms 200 Reset Portd.7 Set Portb.0 Waitms 200 Set Portd.7 Reset Portb.0 Waitms 200 Reset Portd.7 Set Portb.0 Waitms 200 Set Portd.7 Reset
in „Problem mit AVR OCA Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
adc_smalldemo.c
= 0 => ADC0 gewaehlt Bit3..0: Selektor Analogmultiplexer // ADMUX= 1<<REFS0; // AVcc (Betriebsspannung) als Referenz // ADMUX= 1<<REFS0 | 1<<REFS1; // int. Referenz ----------------------------------------------------- */ void adc_init(uint8_t refmode, uint8_t channel) { ADMUX
in „Fragen zu meinem Batterietester“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTC1407CMSE.pdf
Distortion 1.56MHz into CH0. Also Applicable to CH1 and CH1 Code-to-Code V = 2.5V (Note 17) 0.25 1 LSB REF RMS Transition Noise Full Power Bandwidth VIN 2.5VP-P SDO = 11585LSBP-P(–3dBFS) (Note 15) 50 50 MHz Full Linear BandwidthS/(N + D) 68dB 5 5 MHz U U U I TER AL REFERE CE CHARACTERISTICS TA= 25°C. VDD
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PDF
Optical-Incremental-Encoder-Modules.pdf
0.004) (0.096/0.095X0.110) 2.44/2.41DIA. DEEP 8.64(0.340) 2.44/2.41X2.79 2.16(0.085)DEEP (0.096/0.095) REF. 17.27 (0.096/0.095X0.110) 2.92±0.10** 2.16(0.085)DEEP (0.680) 2.16(0.085)DEEP (0.115±0.004) 10.16 OPTICAL 4.11(0.162) 20.96 OPTICALCENTER (0.400) CENTER (0.825) 6.35(0.250)REF. TYPICALDIMENSIONSINMILLIMETERSAND
in „Inkrementalgeber HEDS 9000, TTL, Impulsmessung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tl494.pdf
Electrostatic discharge Charged device model (CDM), per JEDEC specification JESD22- V C101, all pins 200 7.3 Recommended Operating Conditions MIN MAX UNIT VCC Supply voltage 7 40 V VI Amplifier input voltage –0.3 VCC – 2 V VO Collector output voltage 40 V Collector output current (each transistor) 200
in „TL494 - LED-Strip soft Start und dimmen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
mic2950.pdf
1.200 1.270 V MIC2951-3.3 (±1%) 1.210 1.235 1.260 V 1.200 1.270 V MIC2951-4.8 (±1%) 1.210 1.235 1.260 V 1.200 1.270 V Reference Voltage MIC295x-02/-05 (±0.5%), Note 14 1.190 1.270 V MIC295x-03/-06 (±1%),
in „Spannungsstabilisieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KM416C1204C.pdf
Page Mode with Extended Data Out) • 2 CAS Byte/Word Read/Write operation - KM416C1004C/C-L (5V, 4K Ref.) • CAS -before-RAS refresh capability - KM416C1204C/C-L (5V, 1K Ref.) - KM416V1004C/C-L (3.3V, 4K Ref.) • RAS-only and Hidden refresh capability - KM416V1204C/C-L (3.3V, 1K Ref.) • Self-refresh capability
in „Suche DRAM Chips“ · Mikrocontroller und Digitale Elektronik ·
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Datei
T13.asm
OUTPUT2 .def A2HO3 = r4 ;AINP-2 HIGH, OUTPUT3 (+MS1H,DIx,CS) .def A1H = r5 ;AINP-1 HIGH .equ AINP1REF = 0 ;AINP1 REFERENZ (VCC) .equ AINP2REF = 0 ;AINP2 REFERENZ (VCC) ;equ AINPxREF = $c0 ;USING INTERNAL REFERENCE (1,1V) ;------------------------------------------------------------------------------
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Datei
T13.asm
OUTPUT2 .def A2HO3 = r4 ;AINP-2 HIGH, OUTPUT3 (+MS1H,DIx,CS) .def A1H = r5 ;AINP-1 HIGH .equ AINP1REF = 0 ;AINP1 REFERENZ (VCC) .equ AINP2REF = 0 ;AINP2 REFERENZ (VCC) ;equ AINPxREF = $c0 ;USING INTERNAL REFERENCE (1,1V) ;------------------------------------------------------------------------------
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Datei
T13.asm
OUTPUT2 .def A2HO3 = r4 ;AINP-2 HIGH, OUTPUT3 (+MS1H,DIx,CS) .def A1H = r5 ;AINP-1 HIGH .equ AINP1REF = 0 ;AINP1 REFERENZ (VCC) .equ AINP2REF = 0 ;AINP2 REFERENZ (VCC) ;equ AINPxREF = $c0 ;USING INTERNAL REFERENCE (1,1V) ;------------------------------------------------------------------------------
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Datei
T13.asm
OUTPUT2 .def A2HO3 = r4 ;AINP-2 HIGH, OUTPUT3 (+MS1H,DIx,CS) .def A1H = r5 ;AINP-1 HIGH .equ AINP1REF = 0 ;AINP1 REFERENZ (VCC) .equ AINP2REF = 0 ;AINP2 REFERENZ (VCC) ;equ AINPxREF = $c0 ;USING INTERNAL REFERENCE (1,1V) ;------------------------------------------------------------------------------
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Datei
programme.c
; tachowert= (int)g; // ladezahl(20,20,tachowert); ladetacho(tachowert); */ t200ms=0; var=ReadChannel(3)/2,04; g+=var; // g+=0,5; if(t1s) { g/=5; g+=0,5; ladetemp(20,20,g); g=0; t1s=0; } } if(t50ms==1) { // ladezahl(200,150,zustand); var=ReadChannel(0); OCR3A=var; if(var<1){ TCCR3A
in „Problem ATmega2561 PWM nur 2,5V Spitze“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HRP_200_XX.pdf
‧ 1U low profile 38mm ‧ Built-in remote sense function ‧ 5 years warranty SPECIFICATION MODEL HRP-200-3.3 HRP-200-5 HRP-200-7.5 HRP-200-12 HRP-200-15 HRP-200-24 HRP-200-36 HRP-200-48 DC VOLTAGE 3.3V 5V 7.5V 12V 15V 24V 36V 48V RATED CURRENT 40A 35A 26.7A 16.7A 13.4A 8.4A 5.7A 4.3A CURRENT RANGE 0 ~
in „Auslegung Positionierung Schrittmotor“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
adc.h
AVR_ATmega8__) || \ defined(__AVR_ATmega16__) || \ defined(__AVR_ATmega32__) typedef enum { aref = (0 << REFS1) | (0 << REFS0), avcc = (0 << REFS1) | (1 << REFS0), internal2V56 = (1 << REFS1) | (1 << REFS0) }adcref_t; #elif defined(__AVR_ATmega164A__) || \ defined(__AVR_ATmega164P__) || \ defined(__AVR_ATmega164PA
in „Library für alle AVRs erstellen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ina105.pdf
systems. ® INA105 2 PIN CONFIGURATIONS Top View TO-99 Top View DIP/SOIC Tab No Internal Connection 8 Ref V+ 1 7 Ref 1 8 No Internal Connection (1) –In 2 7 V+ –In 2 6 Output 3 Output +In 6 V– 4 5 Sense 3 5 +In Sense 4 INA105AM INA105BM V– NOTE:(1)Performancegradeidentifierboxforsmalloutlinesurfacemount.
in „"Hallsonde für Oszilloskop" im Eigenbau?!“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Sinuswechselrichter.pdf
Mikrocontroller High wird. 3.5.11 Erzeugung der Sinus-Referenz mittels DAC +12V DAC0801 8-BIT-SINE-REF 12 B8 V+ 13 C79 8-BIT-SINE-REF1 11 B7 0.01uF +5V 8-BIT-SINE-REF2 10 B6 9 GND 8-BIT-SINE-REF3 B5 8-BIT-SINE-REF4 8 4 R116 K +12V B4 IOUT 8 3 8-BIT-SINE-REF5 7 470R GND R 1 B3 4 8-BIT-SINE-REF6 6 B2 IOUT
in „Wechselrichter Spannung und Frequenz steuerbar für Teichpumpe“ · Haus & Smart Home ·
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PDF
ac_ac-at_ac-ni.pdf
AC, AC-AT, AC-NI www.vishay.com Vishay Draloric Standard: AC, AEC-Q200 Qualified: AC-AT, Non-Inductive AC-NI Cemented Leaded Wirewound Resistors FEATURES • Standard: AC series • AEC-Q200 qualified: AC-AT series • AEC-Q200 qualified, non-inductive: AC-NI series • High power
in „Miele Trockner ELP305 Ladekondensator defekt“ · Haus & Smart Home ·
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PDF
UC3842B.pdf
Typ. Max. Min. Typ. Max. OUTPUT SECTION V OL Output Low Level ISINK= 20mA 0.1 0.4 0.1 0.4 V ISINK= 200mA 1.6 2.2 1.6 2.2 V VOH Output High Level ISOURCE = 20mA 13 13.5 13 13.5 V ISOURCE = 200mA 12 13.5 12 13.5 V V UVLO Saturation VCC = 6V; I = 1mA 0.1 1.1 0.1 1.1 V OLS SINK tr Rise Time T = 25 ° C =
in „Reparatur Schaltnetzteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
uc3842b.pdf
Typ. Max. Min. Typ. Max. OUTPUT SECTION V OL Output Low Level ISINK= 20mA 0.1 0.4 0.1 0.4 V ISINK= 200mA 1.6 2.2 1.6 2.2 V VOH Output High Level ISOURCE = 20mA 13 13.5 13 13.5 V ISOURCE = 200mA 12 13.5 12 13.5 V V UVLO Saturation VCC = 6V; I = 1mA 0.1 1.1 0.1 1.1 V OLS SINK tr Rise Time T = 25 ° C =
in „40-390V HV DC-DC-Wandler vom Chinamann“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM2585.pdf
12.0 11.52/11.40 12.48/12.60 V ILOAD = 0.2A to 0.8A V OUT/ Line Regulation V IN= 4V to 10V 20 100/200 mV V IN ILOAD = 0.2A V OUT/ Load Regulation V IN= 10V 20 100/200 mV ILOAD ILOAD = 0.2A to 0.8A η Efficiency V IN= 10V, LOAD = 0.6A 93 % UNIQUE DEVICE PARAMETERS (Note 5) VREF Output Reference Measured at Feedback Pin 1.230 1.208/1.205 1.252/1.255 V Voltage V COMP = 1.0V V REF Reference Voltage V IN= 4V to 40V 1.5 mV Line Regulation G M Error Amp ICOMP = −30 µA to +30 µA 3.200 1.800 6.000 mmho Transconductance V COMP = 1.0V AVOL Error Amp V COMP = 0.5V to 1.6V 670 400/200
in „12V + 12V = 24V ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
7912CV.pdf
ELECTRICALCHARACTERISTICS FOR L7915C(refer to the test circuits, T = 0 to 150 C, j V i= -23V, Io= 500mA, C = 2.i F, C = 1 F onless otherwisespecified) Symbol Parameter Test Conditions Min. Typ. Max. Unit Vo OutputVoltage T j 25 C -14.4 -15
in „7912CV und "min load current"“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0093.pdf
1080 -700 109 SEG23 1400 700 169 COM23 -3400 280 50 VEXT 1170 -700 110 SEG24 1320 700 170 COM22 -3400 200 51 VSS 1260 -700 111 SEG25 1240 700 171 COM21 -3400 120 52 VSS 1350 -700 112 SEG26 1160 700 172 COM16 -3400 40 53 VSS 1440 -700 113 SEG27 1080 700 173 COM15 -3400 -40 54 REF 1530 -700 114 SEG28 1000
in „LCD seriell ansteuern ST7093/KS0093“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ncp1200.pdf
636 111 Fax: 33 (0)4 76 22 64 89 Fax : +39−031−636 280 Email: asb@wanadoo.fr Email: eldor@eldor.it ref. 1: NCP1200−10 W−UM: 10 W for USB www.eldor.it (Lp = 1.8 mH, 60 kHz, 1:0.1, RM8 pot core) ref. 1: 2262.0058C: 3.5 W version Coilcraft (Lp = 2.9 mH, Lleak = 80 ▯H, E16) 1102 Silver Lake Road ref. 2:
in „NCP1200D6 Schaltnetzteil IC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NCP1200.pdf
636 111 Fax: 33 (0)4 76 22 64 89 Fax : +39−031−636 280 Email: asb@wanadoo.fr Email: eldor@eldor.it ref. 1: NCP1200−10 W−UM: 10 W for USB www.eldor.it (Lp = 1.8 mH, 60 kHz, 1:0.1, RM8 pot core) ref. 1: 2262.0058C: 3.5 W version Coilcraft (Lp = 2.9 mH, Lleak = 80 ▯H, E16) 1102 Silver Lake Road ref. 2:
in „Datenblatt gesucht DAP07“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Burr-Brown-ADS1230.pdf
= 80SPS 700 300 600 c c 250 e 500 e r r 200 c 400 c O O 150 300 200 100 100 50 0 0 1 2 3 -5 -4 -3 -2 -1 0 1 2 Output Code (LSB) Output Code (LSB) Figure 3. Figure 4. NOISE PLOT NOISE PLOT 0 8 PGA = 128 PGA = 128 Data Rate = 10SPS 6 Data Rate = 80SPS -1 4 ) ) S-2 S 2 ( ( e e 0 o-3 o t t -2 p p u-4 u -4 O O -6 -5 -8 -6 -10 0 200 400 600 800 1000 0 200 400 600 800 1000 Time (Reading Number) Time (Reading Number) Figure 5. Figure 6. Copyright © 2006–2007, Texas Instruments Incorporated Submit Documentation Feedback 7 Product
in „Konzept für eine Waage gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT3092fb.pdf
LT3092 200mA 2-Terminal Programmable Current Source FEATURES DESCRIPTION n Programmable 2-Terminal Current Source The LT 3092 is a programmable 2-terminal current n MaximumOutput Current: 200mA source. It requires
in „Konstantstromquelle LT3092 - Widerstandswahl“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TEA5768HL_2.pdf
kHz; − 2 3.5 V fmod = 1 kHz; (S+N)/N = 26 dB; de-emphasis = 75 s; L = R; B AF= 300 Hz to 15 kHz S−200 LOW side 200 kHz selectivity f = −200 kHz;RF = 76 to 108 MHz; note 1 32 36 − dB S HIGH side 200 kHz f = +200 kHz; f = 76 to 108 MHz; note 1 39 43 − dB +200 RF selectivity VAFL; VAFR left and right audio
in „Einfaches Radio basteln“ · Mikrocontroller und Digitale Elektronik ·
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PDF
0s922lq6p7gwsc2hhzx6z4e3pl3y.pdf
0.254) M T G R C 0.170 0.180 4.318 4.572 D 0.026 0.036 0.660 0.914 E 0.045 0.055 1.143 1.397 F 0.051 REF 1.295 REF G 0.100 BSC 2.540 BSC H 0.539 0.579 13.691 14.707 C J 0.125 MAX 3.175 MAX K 0.050 REF 1.270 REF L 0.000 0.010 0.000 0.254 M 0.088 0.102 2.235 2.591 N 0.018 0.026 0.457 0.660 P 0.058 0.078 1.473 1.981 R 5 REF 5 REF S 0.116 REF 2.946 REF U 0.200 MIN 5.080 MIN V 0.250 MIN 6.350 MIN SOLDERING FOOTPRINT* 8.38 0.33 10.66 1.016 0.04 5.08 0.42 0.20 3.05 0.12 17.02 0.67 SCALE 3:1 ▯ mm ▯ inches *For additional information
in „LM317 Spannungsregler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A3967-Datasheet.pdf
Typ. Max. Units Control Logic (cont’d) Mixed Decay Trip Point PFDH – 0.6VCC – V PFDL – 0.21VCC – V Ref. Input Voltage Range VREF Operating 1.0 – VCC V Reference Input Impedance ZREF 120 160 200 kΩ Gain (m ) Error EG VREF = 2 V, Phase Current = 38.37% † – – ±10 % (note 3) VREF = 2 V, Phase Current = 70.71%
in „Vref Dual Step Motor Shield (Arduino) iteadstudio.com“ · Mikrocontroller und Digitale Elektronik ·
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PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Lithium-Ionen-Kondensator Haltbarkeit?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „ESP8266 verhalten bei Unterspannung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Eigenartiges Verhalten von Li-Batterien“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Vergleich Alkali mit LiClO2 AA Primärzellen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Vollständige Abschaltung ESP8266-12“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Austausch von Lithium-Thionyl-Chlorid Batterien im Betrieb“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Elko oder anderen Kondesnsator“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Bauteilsuche? Stepup um 1,5V Batterien leer zu lutschen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „Eigenschaften Alkali Batterien (Innenwiderstand)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
THT_SUPER-KONDENSATOR_3_8V_20F_30X10MM.pdf
value. Please refer as a reference value. There is no previous notice and the design and the specification might be changed. This document is VINATech's proprietary material, and the distribution and the presentation
in „ESP8266 verhalten bei Unterspannung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DLO2416.pdf
RED DLR2416 HIGH EFFICIENCY RED DLO2416 GREEN DLG2416 .200”4-Character 5x7 Dot Matrix Alphanumeric IntelligentDisplay ® with Memory/Decoder/Driver Package Dimensions in inches (mm) .031 .250 .136 .260 (.79) (6.35) (3.45) (6.60) ref. (.79) .800 .600 .020 (20.32