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鍙冩暩(sh霉)璩囨枡
鍨嬭櫉锛� LMC6484IMX/NOPB
寤犲晢锛� National Semiconductor
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鐢�(ch菐n)鍝佺洰閷勯爜闈細 1266 (CN2011-ZH PDF)
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AC Electrical Characteristics (Continued)
Note 2: Human body model, 1.5 k
in series with 100 pF. All pins rated per method 3015.6 of MIL-STD-883. This is a class 2 device rating.
Note 3: Applies to both single supply and split-supply operation. Continuous short circuit operation at elevated ambient temperature can result in exceeding the
maximum allowed junction temperature of 150C. Output currents in excess of 30 mA over long term may adversely affect reliability.
Note 4: The maximum power dissipation is a function of TJ(max), 胃JA, and TA. The maximum allowable power dissipation at any ambient temperature is
PD =(TJ(max) TA)/胃JA. All numbers apply for packages soldered directly into a PC board.
Note 5: Typical Values represent the most likely parametric norm.
Note 6: All limits are guaranteed by testing or statistical analysis.
Note 7: V+ = 15V, VCM = 7.5V and RL connected to 7.5V. For Sourcing tests, 7.5V 鈮� VO 鈮� 11.5V. For Sinking tests, 3.5V 鈮� VO 鈮� 7.5V.
Note 8: Do not short circuit output to V+, when V+ is greater than 13V or reliability will be adversely affected.
Note 9: V+ = 15V. Connected as Voltage Follower with 10V step input. Number specified is the slower of either the positive or negative slew rates.
Note 10: Input referred, V+ = 15V and RL = 100 k connected to 7.5V. Each amp excited in turn with 1 kHz to produce VO =12 VPP.
Note 11: Connected as Voltage Follower with 2V step input. Number specified is the slower of either the positive or negative slew rates.
Note 12: Limiting input pin current is only necessary for input voltages that exceed absolute maximum input voltage ratings.
Note 13: Guaranteed limits are dictated by tester limitations and not device performance. Actual performance is reflected in the typical value.
Note 14: For guaranteed Military Temperature Range parameters see RETSMC6484X.
Typical Performance Characteristics V
S = +15V, Single Supply, TA = 25C unless otherwise
specified
Supply Current vs
Supply Voltage
DS011714-39
Input Current vs
Temperature
DS011714-40
Sourcing Current vs
Output Voltage
DS011714-41
Sourcing Current vs
Output Voltage
DS011714-42
Sourcing Current vs
Output Voltage
DS011714-43
Sinking Current vs
Output Voltage
DS011714-44
LMC6484
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鐩搁棞PDF璩囨枡
PDF鎻忚堪
TSW-130-23-T-D CONN HEADER 60POS .100" DUAL TIN
TSW-141-23-L-S CONN HEADER 41POS .100" SGL GOLD
5-794680-2 22P MICRO MNL ASSY VRT THRU LF
TSW-126-08-T-D-RA CONN HEADER 52PS .100 DL R/A TIN
ISL28276FBZ-T7 IC OPAMP DUAL RRIO PREC 8-SOIC
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鍙冩暩(sh霉)鎻忚堪
LMC6484IN 鍔熻兘鎻忚堪:閬嬬畻鏀惧ぇ鍣� - 閬嬫斁 RoHS:鍚� 鍒堕€犲晢:STMicroelectronics 閫氶亾鏁�(sh霉)閲�:4 鍏辨ā鎶戝埗姣旓紙鏈€灏忓€硷級:63 dB 杓稿叆瑁滃劅闆诲:1 mV 杓稿叆鍋忔祦锛堟渶澶у€硷級:10 pA 宸ヤ綔闆绘簮闆诲:2.7 V to 5.5 V 瀹夎棰ㄦ牸:SMD/SMT 灏佽 / 绠遍珨:QFN-16 杞�(zhu菐n)鎻涢€熷害:0.89 V/us 闂滈枆:No 杓稿嚭闆绘祦:55 mA 鏈€澶у伐浣滄韩搴�:+ 125 C 灏佽:Reel
LMC6484IN 鍒堕€犲晢:Texas Instruments 鍔熻兘鎻忚堪:IC OP AMP QUAD CMOS 6484 DIP14
LMC6484IN/NOPB 鍔熻兘鎻忚堪:閬嬬畻鏀惧ぇ鍣� - 閬嬫斁 CMOS Quad R/R I/O Op Amp RoHS:鍚� 鍒堕€犲晢:STMicroelectronics 閫氶亾鏁�(sh霉)閲�:4 鍏辨ā鎶戝埗姣旓紙鏈€灏忓€硷級:63 dB 杓稿叆瑁滃劅闆诲:1 mV 杓稿叆鍋忔祦锛堟渶澶у€硷級:10 pA 宸ヤ綔闆绘簮闆诲:2.7 V to 5.5 V 瀹夎棰ㄦ牸:SMD/SMT 灏佽 / 绠遍珨:QFN-16 杞�(zhu菐n)鎻涢€熷害:0.89 V/us 闂滈枆:No 杓稿嚭闆绘祦:55 mA 鏈€澶у伐浣滄韩搴�:+ 125 C 灏佽:Reel
LMC6484MN 鍒堕€犲晢:NSC 鍒堕€犲晢鍏ㄧū:National Semiconductor 鍔熻兘鎻忚堪:CMOS Quad Rail-to-Rail Input and Output Operational Amplifier
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