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T7-mod-obelix2007.pdf
r 6 D STDBY GND 11 PD2 PC4 23 470k i Shield E 6 PROG CHRG 1 þÿ! Hold power o3 4 5 6 7 C D 0 1 2 3 RL3 3 M L I D D D D C N C C C C microUSB power input. GND r g Rk ÿ P P P P V G P P P P 1 1þ 1 _ r1 1 1 1 1 1 L 2 H 2 L 2 H u d d R R R R þÿ! n n C ’ 5 ’ 6 7 90 1 0 10 1 0 Battery charge circuit. V VCC þ
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T7-mod-obelix2007.pdf
PC5 RH3 680 S B 5 VCC BAT U V GND 1 5 STDBY GND 2 11 23 R14 i Shield 6 D 6 1 þÿ! Hold power on PC4 RL3 470k 3 M L PROG CHRG 3 4 5 6 7 C N 0 1 2 3 GND e r 26 C ’ P P P P V G P P P P microUSB power input. r g R1 C 2þ 3 A4 5 6 7 8 9 1 0 1 1 2 2 2 V 1 1 t e1 e 1 1 1 1 R 2 R 2 R 2 R þÿ! c o k E E 9 0 k 1
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AD5241_5242-1501681.pdf
°C 16-LeadTSSOP RU-16 AD5242BRUZ100 2 100 kΩ –40°C to +105°C 16-LeadTSSOP RU-16 AD5242BRUZ100-RL7 2 100 kΩ –40°C to +105°C 16-LeadTSSOP RU-16 AD5242BRZ1M 2 1 MΩ –40°C to +105°C 16-Lead SOIC_N R-16 AD5242BRUZ1M 2 1 MΩ –40°C to +105°C 16-LeadTSSOP RU-16 AD5242BRUZ1M-REEL7 2 1 MΩ –40°C to +105°C 16
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sn74lvc245a.pdf
SCAS218R – JANUARY 1993 – REVISED AUGUST 2003 PARAMETER MEASUREMENT INFORMATION VLOAD S1 From Output RL Open TEST S1 Under Test GND PLH PHL Open C L (see Note A) RL PLZ PZL VLOAD PHZ PZH GND LOAD CIRCUIT INPUTS V V V C R V CC V I tr f M LOAD L L ∆ 1.8 V ± 0.15 V CC ≤2 ns VCC/2 2 × CC 30 pF 1 kΩ 0.15 V
in „Suche 74LCX04“ · Mikrocontroller und Digitale Elektronik ·
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HCPL-4731.pdf
0.010) TYPE NUMBER 8 7 6 5 6.35 ± 0.25 OPTION CODE* (0.250 ± 0.010) A XXXXZ DATE CODE YYWW 1 2 3 4 1.78 (0.070) MAX. 1.19 (0.047) MAX. + 0.076 5° TYP. 0.254 - 0.051 (0.010+ 0.003) 3.56 ± 0.13 4.70 (0.185) MAX. - 0.002) (0.140 ± 0.005) 0.51 (0.020) MIN. 2.92 (0.115) MIN. DIMENSIONS IN MILLIMETERS AND (INCHES
in „High-Side-Strom auf Low-Side spiegeln (Stromspiegel?!)“ · Analoge Elektronik und Schaltungstechnik ·
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Befehlsliste_80C517A__und_C8051F340__2_.pdf
XRL direct, #data Exclusive-OR immediate to direct byte 3 3 CLR A Clear A 1 1 CPL A Complement A 1 1 RL A Rotate A left 1 1 RLC A Rotate A left through Carry 1 1 RR A Rotate A right 1 1 RRC A Rotate A right through Carry 1 1 SWAP A Swap nibbles of A 1 1 Data Transfer MOV A, Rn Move Register to A 1 1 MOV
in „Microcontrolelr aufgabe“ · Mikrocontroller und Digitale Elektronik ·
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TM1637_V2.4_EN.pdf
frequency fosc - 450 - KHz tPLZ - - 300 ns CLK → DIO Transmission delay time tPZL - - 100 ns CL = 15pF, RL = 10K Ω GRID1~ TTZH 1 - - 2 μs CL = GRID6 Rise time 300p F SEG1~ TTZH 2 - - 0.5 μs SEG8 Fall time TTHZ - - 120 μs CL = 300pF,Segn, Gridn Maximum clock 占空比50% frequency Fmax - - 500 KHz 50% duty ratio
in „TM1637, 4-stellige LED 7-Segmentanzeige mit AVR-GCC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_TM1637.pdf
frequency fosc - 450 - KHz tPLZ - - 300 ns CLK → DIO Transmission delay time tPZL - - 100 ns CL = 15pF, RL = 10K Ω GRID1~ TTZH 1 - - 2 μs CL = GRID6 Rise time 300p F SEG1~ TTZH 2 - - 0.5 μs SEG8 Fall time TTHZ - - 120 μs CL = 300pF,Segn, Gridn Maximum clock 占空比50% frequency Fmax - - 500 KHz 50% duty ratio
in „TM1637 wie funktioniert die Strombegrenzung?“ · Mikrocontroller und Digitale Elektronik ·
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picastar-all.pdf
transceiver. VOX PREREQUISITES C80 C20 IC14 +10V TO BE EFFECTIVE, any VOX system +12V IC13 +5V 100n 220 7810 78L05 µ C75 C79 needs both T/R transitions to be free from C77 R52 C76 C78 33µ 100n clicks and thumps - both electrical and 100n 2k2 33µ 100n mechanical. The first step to achieving this 14 10 R50 V is
in „Projekt Kurzwellenempfänger Doppelsuper welcher VCO?“ · HF, Funk und Felder ·
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Datei
DC_3840EEprom_cut.lst
0343 22 ret 0344 7F 00 mov r7, #00h ; 0d 0346 90 15 75 mov dptr, #1575h 0349 EF mov a, r7 034A 23 rl a 034B 23 rl a 034C 23 rl a 034D F5 08 mov 08h, a 034F 12 03 94 lcall 0394h 0352 F5 4A mov 4Ah, a 0354 12 03 94 lcall 0394h 0357 F5 32 mov 32h, a 0359 12 13 73 lcall 1373h 035C 20 06 2D jb 20h.6, 038Ch
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L272M.pdf
Separation f = 1 kHz; L =10 , Gv= 30dB dB Vs= 24V 60 Vs= 〉 6V 60 d Distortion f = 1kHz, Gv= 3 dB, s = 24V, RL= 0.5 % T Thermal Shutdown Junction 145 ⋅C sd Temperature 3/10 L272 Figure 1 : QuiescentCurrent versus Figure2 : QuiescentDrain Current versus SupplyVoltage Temperature Figure 3 : Open LoopVoltageGain
in „sehr kleiner DC-Motor, Baustein zur Ansteuerung?“ · Mikrocontroller und Digitale Elektronik ·
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Component_tester_T7-dreieck.pdf
r 6 E 6 1 Tantalum 11 PD2 PC4 23 470k M Shield L PROG~{CHRG} þÿ! Hold power o3 4 5 6 7 C D 0 1 2 3 RL3 3 r g 2 0 C I D D D D C N C C C C microUSB power input. GND Rk 2 6 6 C OVP ÿ P P P P V G P P P P 1 þ 4 V 1þ 1 _ r1 1 1 1 1 1 L 2 H 2 L 2 H k u o d R R R R 6 t 2 þÿ! n n 4 w ’ 5 ’ 6 7 90 1 0 10 1 0 Battery
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Component_tester_T7-dreieck.pdf
r 6 E 6 1 Tantalum 11 PD2 PC4 23 470k M Shield L PROG~{CHRG} þÿ! Hold power o3 4 5 6 7 C D 0 1 2 3 RL3 3 r g 2 0 C I D D D D C N C C C C microUSB power input. GND Rk 2 6 6 C OVP ÿ P P P P V G P P P P 1 þ 4 V 1þ 1 _ r1 1 1 1 1 1 L 2 H 2 L 2 H k u o d R R R R 6 h 2 þÿ! n n 4 i ’ 5 ’ 6 7 90 1 0 10 1 0 Battery
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Datei
Eeprom_2.txt
2911 15DA 20 02 JR NZ,L0367 2912 15DC 06 08 LD B,08H 2913 15DE 21 0D D3 L0367: LD HL,0D30DH 2914 15E1 78 LD A,B 2915 15E2 AE XOR (HL) 2916 15E3 77 LD (HL),A 2917 15E4 E6 78 AND 78H 2918 15E6 47 LD B,A 2919 15E7 23 INC HL 2920 15E8 79 LD A,C 2921 15E9 AE XOR (HL) 2922 15EA 77 LD (HL),A 2923 15EB E6 18 AND
in „Hilfe bei Z80 Opcodes“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Eeprom1.txt
02 jr nz,0x15de .data:000015dc 06 08 ld b,0x08 .data:000015de 21 0d d3 ld hl,0xd30d .data:000015e1 78 ld a,b .data:000015e2 ae xor (hl) .data:000015e3 77 ld (hl),a .data:000015e4 e6 78 and 0x78 .data:000015e6 47 ld b,a .data:000015e7 23 inc hl .data:000015e8 79 ld a,c .data:000015e9 ae xor (hl) .data
in „Hilfe bei Z80 Opcodes“ · Mikrocontroller und Digitale Elektronik ·
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22103a.pdf
1RWH/ IPWR5VURYP[5R)EWWUX5R0L)(LFUR<WL%,XF[&R0NUL[UR[UUR5VUR\,)WP)V,0R8L)(LF,XFR60U),/,)L5,PXRNP)L5U<RL5R V550122%%%3Y,)WP)V,03)PY20L)(LF,XF DS22103A-page 46 © 2008 Microchip Technology Inc. MCP23018/MCP23S18 DG3OHVLF6KVUWQNFP2XQ±%FP\VKKF>@WKQ±HF'PP,F:F&▯ !F\\F"RL#F$PP>6% 1RWH/ IPWR5VURYP[5R)EWWUX5R0L)(LFUR<WL%,XF[&R0NUL[UR[UUR5VUR\,)WP)V,0R8L)(LF,XFR60U),/,)L5,PXRNP)L5U<RL5R V550122%%%3Y,)WP)V,03)PY20L)(LF,XF D N E E1 1 2 NOTE 1 b e c φ A A2 A1 L1 L 5X,5[\Z66Z\0J0;6 ',YUX[,PXR6,Y,5[ \Z7 78\ \D9 7EY UWRP/R8,X[7 Q7 8,5)V U $3:±R364 8:UWLNNR;U,FV5 D < < Q3$$ \PN<U<R8L)(LFURJV
in „MCP23S18 I/O Expander“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HSMP3864_datasheet.pdf
Capacitance Resistance Resistance [1] HSMP- Code Code Configuration 5082- VBR (V) RS( ) C TpF) RH( ) RL( ) 3800 D0 0 Single 3080 100 2.0 0.37 1000 8 3802 D2 2 Series 3804 D4 4 Common Cathode 3810 E0 0 Single 3081 100 3.0 0.35 1500 10 3812 E2 2 Series 3813 E3 3 Common Anode 3814 E4 4 Common Cathode Test
in „Diskretes Bauteil für HSMP3864 PIN Diode“ · Mikrocontroller und Digitale Elektronik ·
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Datei
JU1-V2-5-mod.asm
mov A,38h rl A mul AB mov A,B jnz B0d58 inc A sjmp B0d58 A0d52: mul AB mul AB mul AB mov A,38h rl A B0d58: mov DPTR,#0xc00c movx @DPTR,A ret G0d5d: jb 0x78,A0d91 mov A,#0xe0 add A,R7 mov R1,A mov A,@R1 mov R2,A inc
in „8051 Disassembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LH1505.pdf
100 ) L = 50 mA ( N o O 80 a t A1.0 a e m V S . B c a = ( 60 n a I n V =10V s D a0.5 t P s t n o 40 RL=50Ω - e t I n l c c a i 0 / r e 20 a N S 0 -0.0 4 8 12 16 20 102 10 3 104 105 106 107 ilh1505ab_06 LED Forward Current (mA) ilh1505ab_09 Frequency (Hz) Figure 7. Variation in ON-Resistance vs. LED Current
in „Wechselspannung mit uC schalten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Hargassner_Datenprotokoll_155_Pakete.pdf
Kaskade Soll Temperatur 4 77 /'77/' name=/'KaskIstTmp_1/' unit=/'°C/'//> **** Kaskade Ist Temperatur 1 78 /'78/' name=/'KaskIstTmp_2/' unit=/'°C/'//> \ **** Kaskade Ist Temperatur 2 79 /'79/' name=/'KaskIstTmp_3/' unit=/'°C/'//> **** Kaskade Ist Temperatur 3 80 /'80/' name=/'KaskIstTmp_4/' unit=/'°C/'//>
in „Hargassner Pelletheizung Betriebsdatenerfassung“ · Haus & Smart Home ·
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PDF
Hargassner_Datenprotokoll_155_Pakete.pdf
Kaskade Soll Temperatur 4 77 /'77/' name=/'KaskIstTmp_1/' unit=/'°C/'//> **** Kaskade Ist Temperatur 1 78 /'78/' name=/'KaskIstTmp_2/' unit=/'°C/'//> \ **** Kaskade Ist Temperatur 2 79 /'79/' name=/'KaskIstTmp_3/' unit=/'°C/'//> **** Kaskade Ist Temperatur 3 80 /'80/' name=/'KaskIstTmp_4/' unit=/'°C/'//>
in „Hargassner / Rennergy Touchtronic Netzwerkanbindung/Visualisierung“ · Haus & Smart Home ·
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PDF
Resources_an5457-rf-matching-network-design-guide-for-stm32wl-series-stmicroelectronics.pdf
Γ VSWR = VZ min = 1 − Γ, 1 ≤ VSWR ≤ ∞ If VSWR = 1.0, there is no reflected power. The return loss (RL) is a function of the reflection coefficient but expressed in dB. P RL = 10 × log10 incident = P incident− Preflected Preflected Preflected in dB = Pincident in dB − RL Preflected in dB = Pincident in dB − RL Numerically, RL has a value between 0 dB and ∞. When RL = 0 dB, the reflected power is equal to the incident power and no power reaches the load. The RL is always positive (see document [1]). See Appendix
in „STM32WLE5CCU6 LoRa-Antennenendesign review“ · HF, Funk und Felder ·
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PDF
AN5457.pdf
Γ VSWR = VZ min = 1 − Γ, 1 ≤ VSWR ≤ ∞ If VSWR = 1.0, there is no reflected power. The return loss (RL) is a function of the reflection coefficient but expressed in dB. P RL = 10 × log10 incident = P incident− Preflected Preflected Preflected in dB = Pincident in dB − RL Preflected in dB = Pincident in dB − RL Numerically, RL has a value between 0 dB and ∞. When RL = 0 dB, the reflected power is equal to the incident power and no power reaches the load. The RL is always positive (see document [1]). See Appendix
in „868MHz Impedanzmatching - Fragen zum Matching-vorgehen“ · HF, Funk und Felder ·
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PDF
MCP4261-DigitalPot-2Fach-50kDATASHEET.pdf
<,L2OXFN/R0GULNURNUUR)YURQO\,3\YO0REL\;LFOXFR60U\O&O\L)O3XRG3\L)U<RL)R Y))0133222W8O\,3\YO0W\3830L\;LFOXF D N E E1 NOTE 1 1 2 e b c φ A A2 A1 L1 L 4XO)NQI55IQ:V:J6 'O8UXNO3XR5O8O)N QI6 67Q QD8 6(81U,R3&REOXN6 9 EO)\Y U $W:.R 6 7ZU,LGGR;UOFY) D = = PWP$ Q3G<U<REL\;LFURVYO
in „Step Down Regler zu heiss & Fragen zur Umsetzbarkeit einer Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
hc595.pdf
. . . . . 113⋅C/W N package . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 78⋅C/W Storage temperature range, T . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . –65⋅C to 150⋅C stg †Stressesbeyondthoselistedunder“absolutemaximumratings
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MAX9217.pdf
Notes 1, 2) X PARAMETER SYMBOL CONDITIONS MIN TYP MAX UNITS 9 2 Differential Output Resistance R O 78 110 147 Ω 3MHz 15 25 1 RL= 100Ω ± 1%, 7 CL= 5pF, 5MHz 18 25 Worst-Case Supply Current CCW continuous 10 10MHz 23 28 mA transition words, 20MHz 33 39 modulation off 35MHz 50 70 Power-Down Supply Current
in „Suche Ersatz für Ford werkseitige Rückfahrkamera“ · Fahrzeugelektronik ·
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Datei
font_graph.c
0x01,0x01,0x01,0x01,0x3D,0x23,0x41,0x41,0x41,0x41,0x23,0x1D,0x00,0x00, // 98 = 0x62 <b> 0x00,0x00,0x00,0x00,0x78,0x04,0x02,0x02,0x02,0x02,0x04,0x78,0x00,0x00, // 99 = 0x63 <c> 0x40,0x40,0x40,0x40,0x5C,0x62,0x42,0x42,0x42,0x42,0x62,0x5C,0x00,0x00, // 100 = 0x64 <d> 0x00,0x00,0x00,0x00,0x38,0x44,0x42,0x7E,0x02,0x02,0x04,0x78,0x00,0x00
in „Lib für Arduino Giga machen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Disassembler8048_mc1981.pdf
ADD A,R6",6F,"ADD A,R7",70,"ADDC A,&RO",71 350 DATA "ADDC A,&R1",E3,"MOVP3 A,&A",75,ENTO CLK,77,RR A,78 355 DATA "ADDC A,RO",79 360 DATA "ADDC A,R1",7A,"ADDC A/R2",7B/"ADDC A/R3"/7C/"ADDC A,R4",7D 370 DATA "ADDC A,R5",7E,"ADDC A,R6",7F/"ADDC A/R7",80/"MOVX A,&RO",81 380 DATA "MOVX A,&R1",83,RET,85,CLR
in „80C48 MCS48 Assembler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DeviceList.txt
W78E54F W78E054DDG W78E054DPG W78E054DFG W78LE54 W78LE54C W78LE54C(PLCC) W78LE54C(QFP) W78LE54P W78LE54F W78L054 W78LE054C W78LE054C(PLCC) W78LE054C(QFP) W78L054P W78L054F W78E54B W78E54BP W78E54BF W78E58 W78E58P W78E58F W78E058DDG W78E058DPG W78E058DFG W78LE58 W78LE58P W78LE58F W78E58B W78E58BP W78E58BF W78E058B W78E058BP W78E058BF W78E62B W78E62BP W78E62BF W78E062B W78E062BP W78E062BF W78E65 W78E65(P44)
in „[V] Genius G540 EPROM/Flash/uC Programmer (USB)“ · Markt ·
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PDF
INA125.pdf
Input Voltage ±40 V Input Voltage Range See Text Common-Mode Rejection V = –10.7V to +10.2V CM G = 4 78 84 72 dB G = 10 86 94 80 dB G = 100 100 114 90 dB G = 500 100 114 90 dB BIAS CURRENT VCM = 0V 10 25 50 nA vs Temperature ±60 pA/°C Offset Current ±0.5 ±2.5 ±5 nA vs Temperature ±0.5 pA/°C NOISE, RTI
in „Signal einer Wägezelle auswerten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
INA125.pdf
Input Voltage ±40 V Input Voltage Range See Text Common-Mode Rejection V = –10.7V to +10.2V CM G = 4 78 84 72 dB G = 10 86 94 80 dB G = 100 100 114 90 dB G = 500 100 114 90 dB BIAS CURRENT VCM = 0V 10 25 50 nA vs Temperature ±60 pA/°C Offset Current ±0.5 ±2.5 ±5 nA vs Temperature ±0.5 pA/°C NOISE, RTI
in „Verstärker für Messbrücke“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
STC15F100-en.pdf
changed to 16-bit re-loadable timer/counter from 13-bit timer/counter. There are 4 implied registers RL_TL0, RL_TH0, RL_TL1, and RL_TH1 implemented to meet MODE0 operation requirement. The addressed of RL_TL0/RL_TH0/RL_TL1/RL_TH1 are homogeneous to TL0/TH0/TL1/TH1. While the Timer0 is configured to operate
in „STC15F104W will nicht so recht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ICL7660.pdf
MAX A MAX1044 ICL7660 PARAMETER CONDITIONS UNITS M MIN TYP MAX MIN TYP MAX TA= +25°C 30 200 80 175 RL= ∞, pins 1 and 7 TA= 0°C to +70°C 200 225 Supply Current no connection, TA= -40°C to +85°C 200 250 µA LV open TA= -55°C to +125°C 200 250 RL= ∞, pins 1 and 7 = V+ = 3V 10 R = 10kΩ, LV open 3.0 10.0 Supply Voltage L V Range (Note 1) RL= 10kΩ, LV to GND 1.5 10 1.5 3.5 TA= +25°C 65 100 55 100 L = 20mA, f = 5kHz, TA= 0°C to +70°C 130 120 LV open TA= -40°C to +85°C 130 140 T = -55°C to +125°C 150 150 Output Resistance A Ω OSC = 2.7kHz
in „neg. Spannung mit Z-Diode erzeugen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ICL7660-MAX1044.pdf
MAX A MAX1044 ICL7660 PARAMETER CONDITIONS UNITS M MIN TYP MAX MIN TYP MAX TA= +25°C 30 200 80 175 RL= ∞, pins 1 and 7 TA= 0°C to +70°C 200 225 Supply Current no connection, TA= -40°C to +85°C 200 250 µA LV open TA= -55°C to +125°C 200 250 RL= ∞, pins 1 and 7 = V+ = 3V 10 R = 10kΩ, LV open 3.0 10.0 Supply Voltage L V Range (Note 1) RL= 10kΩ, LV to GND 1.5 10 1.5 3.5 TA= +25°C 65 100 55 100 L = 20mA, f = 5kHz, TA= 0°C to +70°C 130 120 LV open TA= -40°C to +85°C 130 140 T = -55°C to +125°C 150 150 Output Resistance A Ω OSC = 2.7kHz
in „OP Spannung 1,82V bei Min.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
adxl380.pdf
Dimensionsshowninmillimeters ORDERING GUIDE Model1 TemperatureRange PackageDescription PackageOption ADXL380-1BCCZ-RL −40°Cto+85°C 14-TerminalLGA CC-14-3 ADXL380-1BCCZ-RL7 −40°Cto+85°C 14-TerminalLGA CC-14-3 ADXL380-2BCCZ-RL −40°Cto+85°C 14-TerminalLGA CC-14-3 ADXL380-2BCCZ-RL7 −40°Cto+85°C 14-TerminalLGA CC-14-3 1
in „ADXL380 mit SPI auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NASA_Technical_Note_D-822.pdf
39 . O_Y-_l .08893 .089&5 .08998 .09050 .09105 .09156 .09209 .09263 .09516 .36 .09370 .o9_2_ .09_ 78 .099)2 .O9986 . O96_ i .o9695 .09790 .09805 .o956o •37 .09916 .09971 .I(X%27 .10083 .10139 .10199 .10231 .10308 .I056_ . I0_21 •_ .io_78 .10559 •_05._5 .1o690 .107o8 .1o766 .1082_ .1o882 .I09_i .1o999
in „Komplexe Berechnung auf µC - geschickte Annäherung?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Book_of_Knowledge_german.pdf
slope compensation 77 2.6 Analyse der Schleifenstabilität in analogen und digitalen Feedbacksystemen 78 2.6.1 Experimentelle Ermittlung der analogen Schleifenstab78ität 2.6.2 Ermittlung der analogen Schleifenstabilität unter Verwendung der Laplace-Transformation 79 2.6.3 Ermittlung der digitalen Schleifenstabilität
in „Eingangsfilter DC-DC-Wandler - mal wieder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RECOM_de_Buch.pdf
slope compensation 77 2.6 Analyse der Schleifenstabilität in analogen und digitalen Feedbacksystemen 78 2.6.1 Experimentelle Ermittlung der analogen Schleifenstab78ität 2.6.2 Ermittlung der analogen Schleifenstabilität unter Verwendung der Laplace-Transformation 79 2.6.3 Ermittlung der digitalen Schleifenstabilität
in „Schaltnetzteil Grundlage“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
s6board_schaltplan.pdf
37 IO_L2P_CMPCLK_2 GND RI R R R R R R R R R R C AREF (ADC0)PA0 PROG_CLK IO_L2N_CMPMOSI_2 P66 V C77 C78 0 AUDIO_IN_L 1 2 AUDIO_IN_R 27 AVCC P65 PROG_MISO + 23 3 3 4 5 28 3 UC_SCK IO_L3P_D0_DIN_MISO_MISO1_2 P64 PROG_MOSI 4 CBUS0 22 R AUDIO_OUT_L5 6 AUDIO_OUT_R 4 GND (SCK)PB7 2 UC_MISO IO_L3N_MOSI_CSI_B_MISO0
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Datei
1-wire-2051.a51
Sg1,c mov c,COUNT.2 mov Sg0,c mov P1,a ; Daten ausgeben mov a,COUNT ; Anzeige-Zähler weitersetzen rl a ; nächste Azge auswählen mov COUNT,a inc r0 ; nächster Anzeige-Wert djnz Ctr,Lab0 ; alle 3 Anzeigen bedient? mov Ctr,#3 ; ja, dann von vorne mov COUNT,#0FEh Lab0: pop ACC pop 0 ; hole R0 zurück pop
in „DS18B20 über µC (8051) Beispielprogramm“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L200.pdf
initialcharging current. D prevents dis- SC 1 charge ofthe battery throught the regulator. The resistor RL limits the reverse currents through ther regulator (which should be 100 mA max) when the bat- tery is accidentally reverse connected.If R is in series L with a bulb of 12 V/50 mA rating this will indicate
in „L200 Beschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Elektor83.PDF
tcl7116..... 17,50 8po LS77. -,85 1S366. 1,10 4052 1,50 6s04cPU.....20,95 tcL7126.... 17,50 10po LS78.. 1,50 1S368. 1,10 4055 3,05 6520PtO......10,50 lcl8038.....13,20 LS85, 1,75 1S373. 2,75 4060 1,80 65204PIO tcM7224.....39.50 LS86, -,90 1S374. 2,75 4066 -,90 2MHVtA......16.95 s1480........6,-- Flac
in „Das Ende des Z80“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Eeprom_1.txt
2279 C9 RET 4260 227A 21 00 00 LD HL,0000H 4261 227D 06 10 LD B,10H 4262 227F CB 11 L0366: RL C 4263 2281 17 RLA 4264 2282 ED 6A ADC HL,HL 4265 2284 ED 52 SBC HL,DE 4266 2286 30 01 JR NC,L0365 4267 2288 19 ADD HL,DE 4268 2289 3F L0365: CCF 4269 228A 10 F3 DJNZ L0366 4270 228C CB 11 RL C 4271
in „Hilfe bei Z80 Opcodes“ · Mikrocontroller und Digitale Elektronik ·
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04_TLV272CDR.pdf
W ( SR + g 60 t 2 a a M 50 R 1.5 s R NULL 0 W e VDD= 5 V a 40 S A = 1 P V = 5 V 1 V 30 DD R = 50 W RL= 10 kW 20 RL= 2 k NULL 0.5 C = 50 pF T = 25 C L 10 A VI= 3 V AV= Open Loop 0 0 -40 -25 -10 5 20 35 50 65 80 95 110 125 10 100 1000 Temperature (°C) Capacitive Load (pF) Figure 15. Slew Rate vs Figure
in „TLV272 Rail to Rail Problem DIODES“ · Analoge Elektronik und Schaltungstechnik ·
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index.php
=first">Schrijven</a></li></ul> </li> <li><a href="#">Informatie</a> <ul><li> <a href="index.php?p=78&l=first">Contakt</a></li></ul> </li> </ul> </div> <div id="content"> <div id="home_text"> <b>Om schema's te kunnen downloaden dient u ingelogt te zijn.</b> <div id="downloadtable"> <table class="
in „Dynacord WV10 restaurieren“ · Analoge Elektronik und Schaltungstechnik ·
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MAX1487-MAX491.pdf
Receiver Skew tSKD CL1 = CL2= 100pF 100 ns / 3 Receiver Enable to Output Low tZL Figures 5 and 11,RL = 15pF, S1 closed 20 50 ns 8 Receiver Enable to Output High tZH Figures 5 and 11,RL = 15pF, S2 closed 20 50 ns 4 Receiver Disable Time from Low tLZ Figures 5 and 11,RL = 15pF, S1 closed 20 50 ns X Receiver Disable Time from High tHZ Figures 5 and 11,RL = 15pF, S2 closed 20 50 ns Maximum Data Rate fMAX PLH PHL < 50% of data period 250 kbps A Time to Shutdown t MAX483/MAX487 (Note 5) 50 200 600 ns M SHDN / Driver Enable from Shutdown totZH(SHDN) MAX483
in „SPI Recihweite über RS422 (MAX490) erhöhen?“ · Mikrocontroller und Digitale Elektronik ·
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MAX491.pdf
Receiver Skew tSKD CL1 = CL2= 100pF 100 ns / 3 Receiver Enable to Output Low tZL Figures 5 and 11,RL = 15pF, S1 closed 20 50 ns 8 Receiver Enable to Output High tZH Figures 5 and 11,RL = 15pF, S2 closed 20 50 ns 4 Receiver Disable Time from Low tLZ Figures 5 and 11,RL = 15pF, S1 closed 20 50 ns X Receiver Disable Time from High tHZ Figures 5 and 11,RL = 15pF, S2 closed 20 50 ns Maximum Data Rate fMAX PLH PHL < 50% of data period 250 kbps A Time to Shutdown t MAX483/MAX487 (Note 5) 50 200 600 ns M SHDN / Driver Enable from Shutdown totZH(SHDN) MAX483
in „MAX491 -Defekt??“ · Mikrocontroller und Digitale Elektronik ·
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TCA0372-D-116057.pdf
Phase Margin T J T lowto high fm − 65 − Degrees R = 2.0 k, C = 100 pF L L Gain Margin A − 15 − dB m RL = 2.0 k,LC = 100 pF Equivalent Input Noise Voltage en − 22 − nV/√Hz RS= 100 W, f = 1.0 to 100 kHz Total Harmonic Distortion THD − 0.02 − % AV= −1.0, L = 50 W, O = 0.5 VRMS, f = 1.0 kHz NOTE: In case
in „Audio-Verstäker mit Motortreiber TCA0372, auch für Kopfhörer“ · Analoge Elektronik und Schaltungstechnik ·
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Eeprom2.txt
42 jp 0x4282 .data:00000009 c3 4e 43 jp 0x434e .data:0000000c c3 66 40 jp 0x4066 .data:0000000f c3 78 5e jp 0x5e78 .data:00000012 c3 d5 43 jp 0x43d5 .data:00000015 c3 45 44 jp 0x4445 .data:00000018 c3 24 45 jp 0x4524 .data:0000001b 0c inc c .data:0000001c 48 ld c,b .data:0000001d 44 ld b,h .data:0000001e
in „Hilfe bei Z80 Opcodes“ · Mikrocontroller und Digitale Elektronik ·
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lmh6629.pdf
mode rejection 70 ratio VCM from 0V to 3.7V, SOT-23-5 package 87 Power supply rejection 81 PSRR ratio 78 83 dB 74 WSON-8 package 72 78 AVOL Open loop gain SOT-23-5 package 78 DIGITAL INPUTS/TIMING Logic low-voltage VIL PD and COMP pins, WSON-8 package 0.8 threshold Logic high-voltage V VIH PD and COMP pins
in „Ausgangswiderstand in OPV Datenblatt“ · HF, Funk und Felder ·