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Transcript
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OPA2604AUG4 中文资料
元器件交易网 www.cecb2b.com
SBOS006
SPECIFICATIONS
ELECTRICAL
At TA =
25°C, VS = ±15V, unless otherwise noted.
OPA2604AP, AU
PARAMETER
OFFSET VOLTAGEInput Offset VoltageAverage Drift
Power Supply RejectionINPUT BIAS CURRENT(1)Input Bias CurrentInput Offset Current
NOISE
Input Voltage Noise
Noise Density:f = 10Hz
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f = 100Hzf = 1kHzf = 10kHz
Voltage Noise, BW = 20Hz to 20kHzInput Bias Current Noise
Current Noise Density, f = 0.1Hz to 20kHzINPUT VOLTAGE RANGECommon-Mode Input
RangeCommon-Mode RejectionINPUT IMPEDANCEDifferential
Common-Mode
OPEN-LOOP GAIN
Open-Loop Voltage Gain
FREQUENCY RESPONSEGain-Bandwidth ProductSlew Rate
Settling Time: 0.01%
0.1%
Total Harmonic Distortion
Noise (THD N)Channel Separation
OUTPUT
Voltage OutputCurrent Output
Short Circuit Current
Outputhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08d
Open-LoopPOWER SUPPLY
Resistance,
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Specified
Operating
VoltageOperating
Voltage
RangeCurrent,
Total
Both
AmplifiersTEMPERATURE RANGESpecificationStorage
Thermal Resistance(2), θJA
VO = ±10V, RL = 1k?G = 100
20Vp-p, RL = 1k?G = –1, 10V StepG = 1, f = 1kHzVO = 3.5Vrms, RL = 1k?f = 1kHz, RL
= 1k?
RL = 600?VO = ±12V
±1180±1280
CONDITION
MIN
TYP±1±880100±4
MAX±5
UNITSmV?V/°CdBpApA
VS = ±5 to ±24V
VCM = 0VVCM = 0V
70
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251511101.56±131001012 || 81012 || 1010020251.510.0003142±12±35±4025±15
±4.5
IO = 0
–25–40
90±10.5
±24±12 85 125
nV/√HznV/√HznV/√HznV/√?Vp-pfA/VdB?
||
pF?
||
pFdBMHzV/?s?s?s?VmAmA?VVmA°C°C°C/W
VCM = ±12V
15
NOTES: (1) Typical performance, measured fully warmed-up. (2) Soldered to circuit
board—see text.
http://www.wendangwang.com/doc/02086470a63d6f55df6ae08dThe information provided
herein is believed to be reliable; however, BURR-BROWN assumes no responsibility for
inaccuracies or omissions. BURR-BROWN assumesno responsibility for the use of this
information, and all use of such information shall be entirely at the user’s own
risk. Prices and specifications are subject to changewithout notice. No patent rights
or licenses to any of the circuits described herein are implied or granted to any
third party. BURR-BROWN does not authorize or warrantany BURR-BROWN product for use
in life support devices and/or systems.
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?
OPA2604
2
PIN CONFIGURATION
Top View
DIP/SOIC
ABSOLUTE MAXIMUM RATINGS(1)
Power
Supply
Voltage.......................................................................±
25VInput
Voltage.............................................................(V–)–1V to
(V
)
1VOutput
Short
Circuit
to
Ground..............http://www.wendangwang.com/doc/02086470a63d6f55df6ae08d.....
............................ContinuousOperating
Temperature.................................................–40°C
to
100°CStorage
Temperature.....................................................–40°C
to
125°CJunction
Temperature....................................................................
150°CLead Temperature (soldering, 10s) AP.........................................
300°CLead Temperature (soldering, 3s) AU
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.......................................... 260°CNOTE: (1) Stresses above these
ratings may cause permanent damage.
Output A??
–In A?? In A??V–??
1??2??3??4??
8??7??6??5??
V ??Output B??–In B?? In B??
ORDERING INFORMATION
PRODUCT
PACKAGE8-Pin Plastic DIPSO-8 Surface-Mount
TEMP. RANGE–25°C to
85°C–25°C to
85°C
Any integrated circuit can be damaged by ESD. Burr-Brownrecommends that all
integrated
circuits
be
handledhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08d with ap-propriate
precautions. Failure to observe proper handling andinstallation procedures can cause
damage.
ESD damage can range from subtle performance degradationto complete device failure.
Precision integrated circuits maybe more susceptible to damage because very small
parametricchanges could cause the device not to meet published speci-fications.
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OPA2604APOPA2604AU
PACKAGING INFORMATION
PACKAGE DRAWING
PRODUCTOPA2604APOPA2604AU
PACKAGE8-Pin Plastic DIPSO-8 Surface-Mount
(1)
006182
NOTE: (1) For detailed drawing and dimension table, please see end of datasheet, or
Appendix C of Burr-Brown IC Data Book.
?
3
OPA2604
TYPICAL PERFORMANCE CURVES
At TA =
25°C, VS = ±15V, unless otherwise noted.
TOTAL HARMONIC DISTORTION
NOISE??
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vs FREQUENCY
1??
TOTAL HARMONIC DISTORTIhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08dON
NOISE??
vs OUTPUT VOLTAGE
0.1??
0.1??
THD
N (%)
THD
N (%)
0.01??
0.001??
0.01??
0.001??
0.0001
20
100
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1k
Frequency (Hz)
10k
20k
0.0001
0.1
110100
Output Voltage (Vp-p)
120??
100??Voltage Gain (dB)
INPUT VOLTAGE AND CURRENT NOISE??SPECTRAL DENSITY vs FREQUENCY
0??1k??1k??
Voltage Noise (nV)
80??60??
–90??Phase Shift (Degrees)
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100??
100??
40??
20??
0??–20
1
10
100
1k
10k
100k
1M
10M
Frequency (Hz)
–135??
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10??10??
–180
11
10
100
1k
Frequency (Hz)
10k
100k
11M
://www.wendangwang.com/doc/02086470a63d6f55df6ae08d100nA??
INPUT BIAS AND INPUT OFFSET CURRENT??
vs TEMPERATURE
INPUT BIAS AND INPUT OFFSET CURRENT?? vs INPUT COMMON-MODE VOLTAGE
10nA??
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1nA??
Input Offset Current (pA)
Input Bias Current (pA)
Input Bias Current (pA)
10nA??1nA??
100??
1nA??100??
100??
10–15
–10
–5
5
10
10??
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10??1–75
–50–250255075100
125
115
Ambient Temperature (°C)
Common-Mode Voltage (V)
?
OPA2604
4
Input Offset Current (pA)
Current Noise (fAHz)
–45??
TYPICAL PERFORMANCE CURVES (CONT)
At TA =
25°C, VS = ±15V, unless otherwise noted.
INPUT BIAS CURRENT??
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vs TIME FROM POWER TURN-ON
1nA??
COMMON-MODE
REJECTION??
vs
VOLTAGE://www.wendangwang.com/doc/02086470a63d6f55df6ae08dr
120??Common-Mode Rejection (dB)
Input Bias Current (pA)
100??
110??
100??
10??
90??
10
1
2
3
4
COMMON-MODE
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5
Time After Power Turn-On (min)
80–15
–10–5051015
Common-Mode Voltage (V)
POWER SUPPLY AND COMMON-MODE??
REJECTION vs FREQUENCY
120??100??
120??
AOL, PSR, AND CMR vs SUPPLY VOLTAGE
110??
80??
60??40??20??010
AOL, PSR, CMR (dB)
100??
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PSR, CMR (dB)
90??
80??
5
10
15
Supply Voltage (±VS)
20
25
70
100
1k
10k
100k
1M
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10M
Frequency (Hz)
GAIN-BANDWIDTH AND SLEW RATE??
vs SUPPLY VOLTAGE
28??
33??
28??
GAINhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08d-BANDWIDTH
RATE??
vs TEMPERATURE
30??
Gain-Bandwidth (MHz)
Gain-Bandwidth (MHz)
24??
Slew Rate (V/?s)
20??25??20??
AND
SLEW
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20??
16??21??16??15??
12
5
10
15
Supply Voltage (±VS)
20
1725
12–75
–50
–25
25
50
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75
100
Temperature (°C)
10125
Slew Rate (V/?s)
?
29??24??25??
5
OPA2604
TYPICAL PERFORMANCE CURVES (CONT)
At TA =
25°C, VS = ±15V, unless otherwise noted.
SETTLING TIME vs CLOSED-LOOP GAIN
5??
4??)
s?( em3??
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iT gnilt2??
teS1??
0–1
–10
–100
–1000
Closed-Loop Gain (V/V)
MAXIMUM OUTPUT VOLTAGE SWING vs FREQUENCY30??
)
://www.wendangwang.com/doc/02086470a63d6f55df6ae08darp-pV20??
( egatloV tupt10??
uO010k
100k
1M
10M
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Frequency (Hz)
LARGE-SIGNAL TRANSIENT RESPONSE??
)V 10
( egatlo30??
V tuptuO25??
–10
)
s?/V( 20??
etaR 0
welSTime (?s)??
15??
10
25
?
OPA2604
5
10
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160??
)
Bd140??
( noitarape120??
S lennahC100??
80
10
100
1k10k
100k
Frequency (Hz)
SUPPLY CURRENT vs TEMPERATURE
14??
)
A12??
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m( tnerruC10??
ylppuS8??
6–75
–50
–25
25
50
75
100
125
Ambient Temperature (°C)
SMALL-SIGNAL TRANSIENT RESPONSE??
)V 100://www.wendangwang.com/doc/02086470a63d6f55df6ae08dr
m( egatloV tuptuO–100
01?s
2?s
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Time (?s)??
6
TYPICAL PERFORMANCE CURVES (CONT)
At TA =
25°C, VS = ±15V, unless otherwise noted.
SHORT-CIRCUIT CURRENT vs TEMPERATURE
60??
50??
POWER DISSIPATION vs SUPPLY VOLTAGE
1??0.9??
Short-Circuit Current (mA)
Power Dissipation (W)
0.8??0.7??0.6??0.5??0.4??0.3??0.2??
40??
30??
20–75
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–50
–25
25
50
75
100
125
Ambient Temperature (°C)
0.1
6
8
10
12
14
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16
18
20
22
24
Supply Voltage, ±VS (V)
MAXIMUM POWER DISSIPATION vs TEMPERATURE
1.4??
Total Power Dissipation (W)
1.2??1.0??0.8??0.6??0.4??0.2??00
25
5http://www.wendangwang.com/doc/02086470a63d6f55df6ae08d0
75
100125150
Ambient Temperature (°C)
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?
7
OPA2604
APPLICATIONS INFORMATION
The OPA2604 is unity-gain stable, making it easy to use in awide range of circuitry.
Applications with noisy or highimpedance power supply lines may require decoupling
ca-pacitors close to the device pins. In most cases 1?F tantalumcapacitors are
adequate.
DISTORTION MEASUREMENTS
The distortion produced by the OPA2604 is below the mea-surement limit of virtually
all commercially available equip-ment. A special test circuit, however, can be used
to extend themeasurement capabilities.
Op amp distortion can be considered an internal error sourcewhich can be referred
to the input. Figure 1 shows a circuitwhich causes the op amp distortion to be 101
times greaterthan normally produced by the op amp. The addition of R3 tothe otherwise
standard
non-inverting
amplifihttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08der
configurationalters the feedback factor or noise gain of the circuit. Theclosed-loop
gain is unchanged, but the feedback available forerror correction is reduced by a
factor of 101. This extends themeasurement limit, including the effects of the
signal-sourcepurity, by a factor of 101. Note that the input signal and loadapplied
to the op amp are the same as with conventionalfeedback without R3.
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Validity of this technique can be verified by duplicatingmeasurements at high gain
and/or high frequency where thedistortion is within the measurement capability of
the testequipment. Measurements for this data sheet were made withthe Audio Precision
System One which greatly simplifiessuch repetitive measurements. The measurement
techniquecan, however, be performed with manual distortion measure-ment instruments.
CAPACITIVE LOADS
The dynamic characteristics of the OPA2604 have beenoptimized for commonly
encountehttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08dred gains, loads
and oper-ating conditions. The combination of low closed-loop gain
and capacitive load will decrease the phase margin and maylead to gain peaking or
oscillations. Load capacitance reactswith the op amp’s open-loop output resistance
to form anadditional pole in the feedback loop. Figure 2 shows variouscircuits which
preserve phase margin with capacitive load.Request Application Bulletin AB-028 for
details of analysistechniques and applications circuits.
For the unity-gain buffer, Figure 2a, stability is preserved byadding a phase-lead
network, RC and CC. Voltage drop acrossRC will reduce output voltage swing with heavy
loads. Analternate circuit, Figure 2b, does not limit the output with lowload
impedance. It provides a small amount of positive feed-back to reduce the net feedback
factor. Input impedance of thiscircuit falls at high frequency as op amp gain rolloff
reducesthe
bootstrap
action
thhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08de
on
compensation
network.Figures 2c and 2d show compensation techniques fornoninverting amplifiers.
Like the follower circuits, the circuitin Figure 2d eliminates voltage drop due to
load current, butat the penalty of somewhat reduced input impedance at highfrequency.
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Figures 2e and 2f show input lead compensation networks forinverting and difference
amplifier configurations.
NOISE PERFORMANCE
Op amp noise is described by two parameters—noise voltageand noise current. The
voltage noise determines the noiseperformance with low source impedance. Low noise
bipolar-input op amps such as the OPA27 and OPA37 provide verylow voltage noise. But
if source impedance is greater than afew thousand ohms, the current noise of
bipolar-input op ampsreact with the source impedance and will dominate. At a
fewthousand ohms source impedance and above, the OPA2604will generally provide lower
noise.
FIGURE 1.Distortion http://www.wendangwang.com/doc/02086470a63d6f55df6ae08dTest
Circuit.
?
OPA2604
8
FIGURE 2.Driving Large Capacitive Loads.
?
9
OPA2604
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POWER DISSIPATION
The OPA2604 is capable of driving 600? loads with powersupply voltages up to ±24V.
Internal power dissipation isincreased when operating at high power supply voltage.
Thetypical performance curve, Power Dissipation vs Power Sup-ply Voltage, shows
quiescent dissipation (no signal or noload) as well as dissipation with a worst case
continuous
sinewave.
Continuous
high-level
music
signals
typically
producedissipation significantly less than worst case sine waves.
Copper leadframe construction used in the OPA2604 im-proves heat dissipation compared
to conventional plasticpackages. To achieve best heat dissipation, solder the
devicedirectly to the circuit board and use wide circuit board traces.OUTPUT CURRENT
LIMIT
Output
current
is
limited
http://www.wendangwang.com/doc/02086470a63d6f55df6ae08dinternal
by
circuitry
to
approxi-mately ±40mA at 25°C. The limit current decreases withincreasing
temperature as shown in the typical curves.
FIGURE 3.Three-Pole Low-Pass Filter.
FIGURE 4.Three-Pole Generalized Immittance Converter (GIC) Low-Pass Filter.
?
OPA2604
10
FIGURE 5.DAC I/V Amplifier and Low-Pass Filter.
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FIGURE 6.Differential Amplifier with Low-Pass Filter.
?
11
OPA2604
FIGURE 7.High Impedance Amplifier.FIGURE 8.Digital Audio DAC I-V Amplifier.
FIGURE 9.Using the Dual OPA2604 Op Amp to Double the Output Current to a Load.
?
OPA2604
12
PACKAGEOPTIONADDENDUM
www.ti.com
6-Dec-2006
PACKAGINGINFORMATION
OrderableDeviceOPA2604APOPA2604APG4OPA2604AUOPA2604AU/2K5OPA2604AU/2K5E4OPA2604A
UE4OPA2604AUG4
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(1)
Status(1)ACTIVEACTIVEACTIVEACTIVEAChttp://www.wendangwang.com/doc/02086470a63d6f
55df6ae08dTIVEACTIVEACTIVE
PackageTypePDIPPDIPSOICSOICSOICSOICSOIC
PackageDrawing
PPDDDDD
PinsPackageEcoPlan(2)
Qty8888888
505010025002500100100
Green(RoHS&noSb/Br)Green(RoHS&noSb/Br)Green(RoHS&noSb/Br)
Pb-Free(RoHS)Pb-Free(RoHS)Green(RoHS&noSb/Br)Green(RoHS&noSb/Br)
Lead/BallFinishCUNIPDAUCUNIPDAUCUNIPDAUCUNIPDAUCUNIPDAUCUNIPDAUCUNIPDAU
MSLPeakTemp(3)N/AforPkgTypeN/AforPkgTypeLevel-3-260C-168HRLevel-3-260C-168HRLeve
l-3-260C-168HRLevel-3-260C-168HRLevel-3-260C-168HR
Themarketingstatusvaluesaredefinedasfollows:ACTIVE:Productdevicerecommendedforne
wdesigns.
LIFEBUY:TIhasannouncedthatthedevicewillbediscontinued,andalifetime-buyperiodisin
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effect.
NRND:Notrecommendedfornewdesigns.Deviceisinproductiontosupportexistingcustomers,
butTIdoesnotrecommendusingthispartinanewdesign.
PREVIEW:Devicehasbeenannouncedbutisnotinproduction.Shttp://www.wendangwang.com/d
oc/02086470a63d6f55df6ae08damplesmayormaynotbeavailable.OBSOLETE:TIhasdiscontinu
edtheproductionofthedevice.
(2)
EcoPlan-Theplannedeco-friendlyclassification:Pb-Free(RoHS),Pb-Free(RoHSExempt),o
rGreen(RoHS&noSb/Br)-pleasecheckhttp://www.ti.com/productcontentforthelatestavai
labilityinformationandadditionalproductcontentdetails.TBD:ThePb-Free/Greenconver
sionplanhasnotbeendefined.
Pb-Free(RoHS):TI'sterms"Lead-Free"or"Pb-Free"meansemiconductorproductsthatarecom
patiblewiththecurrentRoHSrequirementsforall6substances,includingtherequirementth
atleadnotexceed0.1%byweightinhomogeneousmaterials.Wheredesignedtobesolderedathig
htemperatures,TIPb-Freeproductsaresuitableforuseinspecifiedlead-freeprocesses.
Pb-Free(RoHSExempt):ThiscomponenthasaRoHSexemptionforeither1)lead-basedflip-chip
solderbumpsusedbetweenthedieandpackage,or2)lead-baseddieadhesiveusedbetweenthedi
eandleadframe.ThecomponentisotherwiseconsideredPb-Free(RoHScompatible)asdefineht
tp://www.wendangwang.com/doc/02086470a63d6f55df6ae08ddabove.
Green(RoHS&noSb/Br):TIdefines"Green"
tomeanPb-Free(RoHScompatible),andfreeofBromine(Br)andAntimony(Sb)basedflameretar
dants(BrorSbdonotexceed0.1%byweightinhomogeneousmaterial)
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(3)
MSL,PeakTemp.--TheMoistureSensitivityLevelratingaccordingtotheJEDECindustrystand
ardclassifications,andpeaksoldertemperature.
ImportantInformationandDisclaimer:TheinformationprovidedonthispagerepresentsTI's
knowledgeandbeliefasofthedatethatitisprovided.TIbasesitsknowledgeandbeliefoninfo
rmationprovidedbythirdparties,andmakesnorepresentationorwarrantyastotheaccuracyo
fsuchinformation.Effortsareunderwaytobetterintegrateinformationfromthirdparties.
TIhastakenandcontinuestotakereasonablestepstoproviderepresentativeandaccurateinf
ormationbutmaynothaveconducteddestructivetestingorchemicalanalysisonincomingmate
rialsandchemicals.TIandTIsuppliersconsidercertaininformationtobeproprietary,andt
husCASnumbersandotherlimitedhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae
08dinformationmaynotbeavailableforrelease.
InnoeventshallTI'sliabilityarisingoutofsuchinformationexceedthetotalpurchasepric
eoftheTIpart(s)atissueinthisdocumentsoldbyTItoCustomeronanannualbasis.
Addendum-Page1
IMPORTANT NOTICE
Texas Instruments Incorporated and its subsidiaries (TI) reserve the right to make
corrections, modifications,enhancements, improvements, and other changes to its
products and services at any time and to discontinueany product or service without
notice. Customers should obtain the latest relevant information before placingorders
and should verify that such information is current and complete. All products are
sold subject to TI’s termsand conditions of sale supplied at the time of order
acknowledgment.
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TI warrants performance of its hardware products to the specifications applicable
at the time of sale inaccordance with TI’s standard warranty. Testing and other
qualityhttp://www.wendangwang.com/doc/02086470a63d6f55df6ae08d control techniques
are used to the extent TIdeems necessary to support this warranty. Except where
mandated by government requirements, testing of allparameters of each product is not
necessarily performed.
TI assumes no liability for applications assistance or customer product design.
Customers are responsible fortheir products and applications using TI components.
To minimize the risks associated with customer productsand applications, customers
should provide adequate design and operating safeguards.
TI does not warrant or represent that any license, either express or implied, is
granted under any TI patent right,copyright, mask work right, or other TI intellectual
property right relating to any combination, machine, or processin which TI products
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