-
PDF
studie-100-erneuerbare-energien-fuer-strom-und-waerme-in-deutschland.pdf
66 GWh TWh TWh 60 GWh TWh 7 Überschuss- TWh Strom 0 Strom Export TWh Wind Power- Methan onshore 306 162 to-Gas 97 Speicher 64 GuD 41 Wärme- TWh TWh TWh TWh TWh 30 speicher 170 GW 54 GW 67 TWh 74 GW TWh zentral 31 37 Wärmelast 57 24 52 TWh TWh KWK + solar TWh TWh Mio. m³ zentral Biomasse KWK 13 Elektr.
-
PDF
ST7567A_V1.2a.pdf
prior notice. Ver 1.2a 6/77 2016/12/06 ST7567A 3 COG OUTLINE 3-1 PAD ARRANGEMENT 2 2 (180.45-172.) M M Part Number O O 8 C C 10 2 ST7567A 10 15 COM20 9 9 93 771 Chip Size 4214 x 624 ± 40 COM16 9 95 COM18 20 80 Chip Thickness 300 70 VDD3 CO M4 VDD2 CO M0 COM2 VDD1 15 15 Bump Height 10 14 105 COMS2 SEL2
in „LCD mit ST7567A und I2C“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AF143086415692en-000101.pdf
| 248 251 | 311 308 | 383 336 | 418 373 | 464 446 | 556 o (48V) 64 | 80 73 | 91 91 | 113 124 | 153 162 | 201 208 | 257 261 | 323 322 | 400 352 | 437 392 | 488 472 | 589 m BD250GH.2 e BD350GH (12V) 126 | 156 139 | 173 169 | 209 220 | 273 282 | 349 355 | 440 440 | 546 540 | 670 588 | 731 654 | 814 786
in „Kompressor für Campingkühlschrank - elektrischer Anschluss?“ · Fahrzeugelektronik ·
-
PDF
Danfoss_Katalog_BLDC_Compressors.pdf
| 248 251 | 311 308 | 383 336 | 418 373 | 464 446 | 556 o (48V) 64 | 80 73 | 91 91 | 113 124 | 153 162 | 201 208 | 257 261 | 323 322 | 400 352 | 437 392 | 488 472 | 589 m BD250GH.2 e BD350GH (12V) 126 | 156 139 | 173 169 | 209 220 | 273 282 | 349 355 | 440 440 | 546 540 | 670 588 | 731 654 | 814 786
in „12V Kompressor Kühlbox - Steuerung defekt - eigenes Thermostat verwenden“ · Haus & Smart Home ·
-
PDF
LM_4040.pdf
0.8 0.8 mV (max) Current Change (Note 7) 1.0 1.0 mV (max) 1 mA ≤ IR≤ 15 mA 2.5 mV 6.0 6.0 mV (max) 8.0 8.0 mV (max) Z R Reverse Dynamic IR= 1 mA, f = 120 Hz, 0.3 Ω Impedance I = 0.1 I AC R 0.8 0.8 Ω (max) e N
in „4,096V Referenzspannung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „DOG-M-Display/ST7036 Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
LCD-Controller_ST7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „DOG-M mit ATmega8 in Assembler ansteuern“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „Initialisierungsfolge fuer EA DOGM 163 SPI 3.3V“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „DOG-M Display über SPI“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „LCD " ° " Zeichen aus Zeichensatz anzeigen?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „Controller ST7036“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
-
PDF
st7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „STK500 und LCD (ST7036) Problem“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ST7036.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „i2C TWI Modus - ST7036 - DOGM DOGM162 DOGM081 EA DOGM163, ist das Möglich ?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
LT3575.pdf
Current Limit Switch Current Limit vs R ILIM 500 4.5 4 450 4 MAX ILIM 3.5 V 400 A ( 25°C 3.5 T 3 G 350 A M T 125°C T 3 L 2.5 L 300 M T V L 2.5 E A250 N R 2 C200 –50°C R 2.0 C V R H 1.5 C 150 C 1.5 I I W 1 S 100 1 S MIN LIM 0.5 50 0.5 0 0 0 0 500 1000 1500 2000 2500 3000 –50 –25 0 25 50 75 100 125 0 10 20
in „LT3575 Simulation Problem Ausgangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
Lenovo_Z50-70_NM-A273_ACLUA_MB_Rev0.3_schematic_.pdf
a C Micron 4G---256X16 *8 pcs X7603212002 Micron 2G---256X16 *4 pcs X7603212052 C UV5 M4T@ UV6 M4T@ UV7 M4T@ UV8 M4T@ RC100 M4T@ i UV5 M2M@ UV6 M2M@ UV7 M2M@ UV8 M2M@ RC107 M2M@ t SA000060I10HA-093G:E SA000060I10HA-093G:E SA000060I10HA-093G:E SA000060I10HA-093G:E SD02810028J MT41J256M16HA-093G:E MT41J256M16HA-093G:E MT41J256M16HA-093G:E MT41J256M16HA-093G:E 10K_0402_5% UV9 M4T@ UV10 M4T@ UV11 M4T@ UV12 M4T@ RV159 M4T@ SA000060I10 SA000060I10 SA000060I10 SA000060I10 SD02810028J RV146 M2M@ RV148 M2M@ n
in „Laptop defekt: Kommunikation EC - PCH - CPU“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
panasonic_tx-p50u20b_e_tx-pr50u20_chassis_gpf13de_sm.pdf
J,0.063W J,0.063W R9323 ERJ2GEJ102X M 1KOHM, 1 R8879 EXB28V103JX RESISTOR ARRAY 1 J,0.063W R8890 ERJ2GEJ103 M 10KOHM, 1 R9324 D0GB162JA041 N 1.6KOHM J 1/ 1 J,0.063W 10W R8900 D0GA680JA015 M 68 OHM, 1 R9325 D0GB162JA041 N 1.6KOHM J 1/ 1 J,0.063W 10W R8918 EXB2HV680J RESISTOR ARRAY 1 R9326 D0GB162JA041 N 1.6KOHM J 1/ 1 10W R8919 EXB2HV680J RESISTOR ARRAY 1 R8920 D0GA222JA015 M 2.2KOHM, 1 R9327 D0GB162JA041 N 1.6KOHM J 1/ 1 J,0.063W 10W R9400 EXB2HV103JV RESISTOR ARRAY 1 R8922 EXB2HVR000 RESISTOR
in „Panasonic TX-P50U20E“ · Analoge Elektronik und Schaltungstechnik ·
-
Datei
PinKlasse_klassisch_toggle.ino.elf.txt
; 3 m += 1; 16e: 4f 5f subi r20, 0xFF ; 255 170: 5f 4f sbci r21, 0xFF ; 255 172: 6f 4f sbci r22, 0xFF ; 255 174: 7f 4f sbci r23, 0xFF ; 255 } timer_fract = f; 176: 80 93 08 28 sts 0x2808, r24 17a: 90 93 09 28 sts 0x2809, r25 timer_millis = m; 17e: 40 93 0a 28 sts 0x280A, r20 182: 50 93 0b 28 sts 0x280B, r21 186: 60 93 0c 28 sts 0x280C, r22 18a: 70 93 0d 28 sts 0x280D, r23 timer_overflow_count++; 18e: 80 91 04 28 lds r24, 0x2804 192: 90 91
in „Buchempfehlung C++ und MCUs“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
hitachi_55hk6t64u_55293dlb_48hk6t64u_48293dlb_chassis_17mb100-r1_17ips20-r9_sm.pdf
3k3 RES VDDA2 15 7 15 7 10n 10n 16V 10n 10n 16V 16V 16 CAP CK_OUT 6 NC 16V 16 CAP CK_OUT 6 C1556 2 S162 1 C1563 2 NC 1 CKDIV_OPT U10 IP 2 1 IP_D1 CKDIV_OPT U11 IP 2 S173 1 IP_D2 17 5 S163 17 5 S172 2 S169 1 2S171 1 2S160 1 18 RFBYPASS M88TS2022 IN 4 2 S168 1 IM_D1 2S161 1 18 RFBYPASS M88TS2022 IN 4 2
in „Vestel Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
lpc2468board.pdf
CR1632FH 100n GND GND GND GND GND GND GND GND VCC VCC VCC VCC VCC C17 100n FIDU1 MH1 MH2 L3 FIDUCIAL M3/PAD M3/PAD GND S1 R7 R8 R9 L4 100MHz/2000R/0.15A DTSM-62K-V-B 4k7 4k7 4k7 100MHz/2000R/0.15A D1 INK1 FIDU2 MH3 MH4 7 SENSE VCC 8 2 6 AGND GND 3 RESIN RST 5 VCCA INKFLECK FIDUCIAL M3/PAD M3/PAD CT RST
in „NXP verschenkt ARM-Chips“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
XC6216.pdf
- 50 90 mV ᶃ (2.0VʽV OUT(T)ʽ7.0V) Load Regulation ˚V OUT VIN=VOUT(T)+2.0V, 1mAʽI OUTʽ50mA, V CE=VIN, - 110 140 mV ᶃ (7.1VʽV OUT(Tʽ12.0V) Dropout Voltage 1 Vdif1 OUT =20mA, VCE =VIN E-1 mV ᶃ IOUT=100mA, V IN= VOUT
in „Suche Spannungsregler mit kleinem Ruhestrom <<2mA“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
XC6216.pdf
- 50 90 mV ᶃ (2.0VʽV OUT(T)ʽ7.0V) Load Regulation ˚V OUT VIN=VOUT(T)+2.0V, 1mAʽI OUTʽ50mA, V CE=VIN, - 110 140 mV ᶃ (7.1VʽV OUT(Tʽ12.0V) Dropout Voltage 1 Vdif1 OUT =20mA, VCE =VIN E-1 mV ᶃ IOUT=100mA, V IN= VOUT
in „Suche Linearregler 5V für ca. 100uA minimal / 100mA max.“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ST7036-V1.4.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω Input Leakage LEAK
in „EA DOG-M Display (ST7046) und customchars. ARGH!“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
set-and-map.c
== (size_t)((uintptr_t)((old_key_list[i])+(((uintptr_t)1)<<(s+1))) >> (s+1))) break; const size_t m2 = (((size_t)1)<<lbsize)-1; const size_t m1 = m2>>1; size_t j=i, k=(i*2-1) & m2; do { const size_t hk = (old_key_list[j]) >> s; const size_t psl = (j-(hk>>1)-1) & m1; for(size_t l=(hk-k+1)&m2; l--; k
in „Diverse fragen zu Hash Maps in C“ · Softwareentwicklung ·
-
Datei
set-and-map.c
== (size_t)((uintptr_t)((old_key_list[i])+(((uintptr_t)1)<<(s+1))) >> (s+1))) break; const size_t m2 = (((size_t)1)<<lbsize)-1; const size_t m1 = m2>>1; size_t j=i, k=(i*2-1) & m2; do { const size_t hk = (old_key_list[j]) >> s; const size_t psl = (j-(hk>>1)-1) & m1; for(size_t l=(hk-k+1)&m2; l--; k
in „Diverse fragen zu Hash Maps in C“ · Softwareentwicklung ·
-
PDF
LM3404.pdf
8.8 V VCC-BP-HYS VCC Bypass Hysteresis VINecreasing 230 mV V V Output Impedance V = 6V 55 Ω CC-Z-6 CC IN VCC-Z-8 (0 mA < CC < 5 mA) VIN 8V 50 VCC-Z-24 VIN 24V 0.4 V V Current Limit (Note 3) V = 24V, V = 0V 16 mA CC-LIM CC IN CC V V Under-voltage Lock-out V
in „Extreme Störungen LM3404“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SARA-G3-U2_SysIntegrManual__UBX-13000995_.pdf
DSP are periodically activated to monitor the paging channel for paging block reception. Current [mA] 100 60-120 mA 50 3-5 mA 0 Time [s] Paging period Current [mA] 0.47-2.12 s 100 60-120 mA 50 20-40 mA 3-5 mA 3-5 mA 0 RX DSP Time [ms] Enabled Enabled ACTIVE MODE Figure 13: VCC current consumption profile
in „GSM-Modul (SIM908) nur analoge Ausgänge für Anruf?“ · HF, Funk und Felder ·
-
PDF
JamesMevey2009.pdf
but we can begin at the cross product. (Normlly the cross product is not shown and only Equation (3.162) is given— one m ust know the identity below to see how it is actually a cross product.) 3 T λ dqidq 2 3 2 det λdq,idq 3 d id i 2 q q T 3 i i (3.162) 2 d q q d Substituting
in „SVPWM mit LPC1769“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Kap4.pdf
r s = f =f1+ 11− 1− 4 fm≈f s 2p L 1 1 r s 4r M 2 2Q 2 r ≈f s 2 für M ≥ 2 2Q 1 j =O 2 Phase js= arcta M r j m =j c arctanM Frequenz 1 1 4 r fp= fq= fp1− 1− 1 − fn≈f p 2 2p L C 0⋅C1 4r M 2 2Q 1 C0+ C 1 r 1 ≈ fr1− 2für M ≥ 2 = s 1 + 2Q r 1 ≈ s1+ 2r Phase 1 2 jp=j =s arcta ja= O j nj m = arcta M M Tabelle: Zusammenhang der charakteristischen Frequenzen Dabei sind M die Parallelgüte und r
in „Bitte um Identifizierung Quartz“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
825_1_.pdf
Themenmanagement und Berichterstattung. In: Aus Politik und Zeitgeschichte, B 49-50: 36-47. BUCHANAN, J. M. (1954): Individual Choice and in Voting and the Market. In: Journal of Political Economy, 62: 334-343. BUCHANAN, J. M. (1987): What Should Economists Do? Indianapolis. BUCHANAN, J. M./ TULLOCK, G. (
in „Fachkräftemangel in Bayern“ · Ausbildung, Studium & Beruf ·
-
PDF
ST7036-V1.7.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω LEAK Input Leakage
in „DOG-M-Display/ST7036 Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ST7036-V1.7.pdf
VDD Input Low Voltage 0.2 VIL2 - - - V (OSC1) VDD Output High Voltage 0.7 VOH (DB0 - DB7) OH = -1.0mA VDD - - V VOL Output Low Voltage IOL= 1.0mA - - 0.8 V (DB0 - DB7) R COM Common Resistance V LCD= 4V, d = 0.05mA - 2 20 K Ω R SEG Segment Resistance V LCD= 4V, d = 0.05mA - 2 30 K Ω LEAK Input Leakage
in „Newbie Probleme bei LCD DOGM Initialisierung in Assembler“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
1MA98_4E_dB_or_not_dB.pdf
, dB (W/m ), dB (V/m), dB (µV/m), dB (A/m) and dB (µA/m). As was the case for dBm, the conventional way of writing these units dBW, dBV, dBµV, dBA, dBµA, dBW/m , dBV/m, dBµV/m, dBA/m and dBµA/m deviates from the
in „Wie stehen dBm und Volt zueinander?“ · HF, Funk und Felder ·
-
PDF
go-SSD1325.pdf
diagram: (V = 3V, V = V = 12V, I = 10uA) DD CC REF REF DISPLAY PANEL SIZE 128 X 80 7 7 7 2 0 0 1 1 3 7 7 M M M M G G M M M M O O O O E E O O O O C C . . C C S . . . . . . . . . . . . S C C . . C C SSD1325Z (SCLK) (SDIN) VCC V COMH VDD D/C# RES# CS# E(RD#) R/W#(WR#) D0 D1 REF VSS R1 C1 C2 C3 VCC VDD D/C# RES
in „Wie Dc/Dc-Wanlder aktivieren? (Display)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
go-SSD1325.pdf
diagram: (V = 3V, V = V = 12V, I = 10uA) DD CC REF REF DISPLAY PANEL SIZE 128 X 80 7 7 7 2 0 0 1 1 3 7 7 M M M M G G M M M M O O O O E E O O O O C C . . C C S . . . . . . . . . . . . S C C . . C C SSD1325Z (SCLK) (SDIN) VCC V COMH VDD D/C# RES# CS# E(RD#) R/W#(WR#) D0 D1 REF VSS R1 C1 C2 C3 VCC VDD D/C# RES
in „Densitron OLED“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
marantz-sr8200-9200-service-manual.pdf
F C W S B M F F E S N N S S B B L R O . T L 5 N N v E E - E - E . R C G G S S T T _ N A C 1 G G 1 T T E T E T N P L L E D + - U U U U U U S U U C M M M M M M T M M U M TO JY07(PY04) CONNECT TO JY04(PY04) CONNECT
in „MARANZ RC3200 datenkabel belegung gesucht“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
irsnd.c
IRSND_OCx, choose IRSND_OC2 or IRSND_OC0 in irsndconfig.h # endif // IRSND_OCx #elif defined (__AVR_ATmega162__) // ATmega162 uses OC2 = PB1 or OC0 = PB0 # if IRSND_OCx == IRSND_OC2 // OC2 # define IRSND_PORT_LETTER B # define IRSND_BIT_NUMBER 1 # elif IRSND_OCx == IRSND_OC0 // OC0 # define IRSND_PORT_LETTER
in „IR Fernbedienung mit IRSND“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
20002234D.pdf
Unless otherwise indicated, VIN = EN = 1.2V, C OUT = C IN= 10 µF, L = 4.7 µH, V OUT = 3.3V, ILOAD = 15 mA, T A +25°C. MCP1640B PWM Mode Only VOUT VOUT 100 mV/DIV 1V/DIV AC Coupled ISTE= 1 mA to 75 mA VIN 1V/DIV IOUT VEN 50 mA/DIV 1V/DIV 500 µs/DIV 100 µs/DIV FIGURE 2-19: 3.3V Start-Up After Enable. FIGURE
in „NRF24L01+ durch MCP1640 gestört?“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
aa.txt
Temp : 0 GradC Utemp: 0.0 mVdelta :0.0 Temp : 1 GradC Utemp: 0.03939820401235 mVdelta :0.03939820401235 Temp : 2 GradC Utemp: 0.07879643209880001 mVdelta :0.03939822808645001 Temp : 3 GradC Utemp: 0.11819470833345001 mVdelta :0.039398276234650004
in „Präzisions Temperaturmessung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
BBK-29LEM-5093T2C_MSD308C-1.pdf
N6 J8 VDDC GND C7 SB3.3V SB3.3V VDDC GND SA7454 AMPLIFIER J9 VDDC GND N7 J10 VDDC GND C8 F8 G8 GND M8 DVDD_DDR GND 12V_SW H9 AVDDL_MOD GND N8 MUTE F7 AVDD11_LAN GND R8 E7 Q27 G7 AVDD1P1_ADC D9 3904 C112 C161 C162 C163 AVDDLV_USB GND R24 22K R197 2K 2.2uF/06030.1uF 0.1uF 0.1uF GND K9 VCC_VSENSE VCC_VSENSE
in „Datenblatt zu MSH9010-lf gesucht“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
Displaytest_1.asm
.db 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00 ;10 +WinR +WinM WinL .db 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00 ;20 +Powe WinR +Slee WinM .db 0x00,0x00,0x00,0x00,0x00,0x2f,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00
in „Aufzeichen von Daten PC Tast in Logfile“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Bestandsliste.pdf
0,17 € 2,21 € 159 7485 4-bit Komparator DIL16 10Stk 0,53 € 5,30 € 160 SN74LS95 4-Bit R/L Schiebereg. m. par. E./Ausgabe 20 Stk 0,42 € 8,45 € 161 SN74LS194 4-Bit R/L Schiebereg. syn. para. Eing.+C 75 Stk 0,13 € 9,75 € 162 74194 4-Bit R/L Schiebereg. syn. para. Eing.+C 10Stk 0,32 € 3,18 € 163 74195 4-Bit
in „Auflösung Elektronik Shop“ · Markt ·
-
PDF
R3112x_SERIES_Ricoh.pdf
Voltage (CMOS) VSS−0.3 to DD+0.3 V VOUT2 Output Voltage (Nch) VSS−0.3 to 6.5 V IOUT Output Current 20 mA Power Dissipation (SOT-23-5)* 420 PD mW Power Dissipation (SC-82AB)* 380 Power Dissipation (SON1612-6)* 500 Topt Operating Temperature Range −40 to 85 °C Tstg Storage Temperature Range −55 to 125 °C
in „IC von Tiefentladungsschutz identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ml280epson_tcm3-37706.pdf
2F n ESC / n Vertikalformularspeicher Kanal wählen Vertikalformular 27 98 n 1B 62 n ESC b n laden m 1.. mk m 1.. mk m 1.. mk 0 00 NUL k = 1 bis 16 n = 0 bis 7 m = 1 bis 255 Sie können bis zu acht separate Vertikaltabulatorgruppen - auch als Kanäle bezeichnet - setzen. Der entsprechende Befehl ESC b
-
PDF
PCD8544_1.pdf
LCD note 4 −0.5 +10 V LCD Vi all input voltages −0.5 VDD + 0.5 V SS ground supply current −50 +50 mA I,OI DC input or output current −10 +10 mA Ptot total power dissipation − 300 mW P power dissipation per output − 30 mW O Tamb operating ambient temperature −25 +70 °C Tj operating junction temperature
in „(Dieser Beitrag wurde geloescht)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
pcd8544.pdf
LCD note 4 −0.5 +10 V LCD Vi all input voltages −0.5 VDD + 0.5 V SS ground supply current −50 +50 mA I,OI DC input or output current −10 +10 mA Ptot total power dissipation − 300 mW P power dissipation per output − 30 mW O Tamb operating ambient temperature −25 +70 °C Tj operating junction temperature
-
PDF
PCD8544_1.pdf
LCD note 4 −0.5 +10 V LCD Vi all input voltages −0.5 VDD + 0.5 V SS ground supply current −50 +50 mA I,OI DC input or output current −10 +10 mA Ptot total power dissipation − 300 mW P power dissipation per output − 30 mW O Tamb operating ambient temperature −25 +70 °C Tj operating junction temperature
in „MSP430F2013 steuert Nokia-3310-Display an“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
PCD8544_-_3310_Display_Controler.pdf
LCD note 4 −0.5 +10 V LCD Vi all input voltages −0.5 VDD + 0.5 V SS ground supply current −50 +50 mA I,OI DC input or output current −10 +10 mA Ptot total power dissipation − 300 mW P power dissipation per output − 30 mW O Tamb operating ambient temperature −25 +70 °C Tj operating junction temperature
in „Atmega8 Nokia 3310 Display und AVR-Studio“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Nokia5510LCD_datasheet.pdf
LCD note 4 −0.5 +10 V LCD Vi all input voltages −0.5 VDD + 0.5 V SS ground supply current −50 +50 mA I,OI DC input or output current −10 +10 mA Ptot total power dissipation − 300 mW P power dissipation per output − 30 mW O Tamb operating ambient temperature −25 +70 °C Tj operating junction temperature
in „Probleme mit Taktversorgung auf Steckbrett“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Nokia5510LCD_datasheet.pdf
LCD note 4 −0.5 +10 V LCD Vi all input voltages −0.5 VDD + 0.5 V SS ground supply current −50 +50 mA I,OI DC input or output current −10 +10 mA Ptot total power dissipation − 300 mW P power dissipation per output − 30 mW O Tamb operating ambient temperature −25 +70 °C Tj operating junction temperature
in „[PIC]Probleme bei SPI Übertragung“ · Mikrocontroller und Digitale Elektronik ·