| Electronic Components Datasheet Search |
|
INA118P Datasheet(PDF) 14 Page - Texas Instruments |
|
|
|
|||||||||||||||||||||||||||||
INA118P Datasheet(HTML) 14 Page - Texas Instruments |
|
14 / 29 page ![]() G=1+ 50k R G INA118 SBOS027A – SEPTEMBER 2000 – REVISED JANUARY 2016 www.ti.com Typical Application (continued) 8.2.1 Design Requirements Figure 30 and Figure 29 depict the performance of a typical application of the INA118 in a shop floor vibration sensing application. Because industrial process control systems often involve the interconnecting of multiple subsystems, ground loops are frequently encountered and often are not easily solved. The inherent common- mode rejection of instrumentation amplifiers enables accurate measurements even in the presence of ground loop potentials. The typical application was tested in a system with these requirements: • Transducer signal ≈ 5 mVp-p • Transducer center frequency = 1 kHz • Common-Mode signal (required to be rejected): 1 Vp-p at 60 Hz 8.2.2 Detailed Design Procedure 8.2.2.1 Setting the Gain As shown in Equation 1, the gain of the INA118 is set by connecting a single external resistor, RG, connected between pins 1 and 8. (1) Commonly used gains and resistor values are shown in Figure 26. The 50-k Ω term in Equation 1 comes from the sum of the two internal feedback resistors of A1 and A2. These on- chip metal film resistors are laser-trimmed to accurate absolute values. The accuracy and temperature coefficient of these resistors are included in the gain accuracy and drift specifications of the INA118. The stability and temperature drift of the external gain setting resistor, RG, also affects gain. The contribution of RG to gain accuracy and drift can be directly inferred from Equation 1. Low resistor values required for high gain can make wiring resistance important. Sockets add to the wiring resistance, which contributes additional gain error (possibly an unstable gain error) in gains of approximately 100 or greater. 8.2.2.2 Dynamic Performance The Figure 1 shows that, despite its low quiescent current, the INA118 achieves wide bandwidth, even at high gain. This is due to the current-feedback topology of the INA118. Settling time also remains excellent at high gain. The INA118 exhibits approximately 3-dB peaking at 500 kHz in unity gain. This is a result of its current-feedback topology and is not an indication of instability. Unlike an op amp with poor phase margin, the rise in response is a predictable 6-dB/octave due to a response zero. A simple pole at 300 kHz or lower produces a flat passband unity gain response. 8.2.2.3 Offset Trimming The INA118 is laser-trimmed for low offset voltage and drift. Most applications require no external offset adjustment. Figure 27 shows an optional circuit for trimming the output offset voltage. The voltage applied to the Ref terminal is summed at the output. The op amp buffer provides low impedance at the Ref terminal to preserve good common-mode rejection. 14 Submit Documentation Feedback Copyright © 2000–2016, Texas Instruments Incorporated Product Folder Links: INA118 |
|
Link URL |
| Does ALLDATASHEET help your business so far? [ DONATE ] |
About Alldatasheet | Advertisement | Contact us | Privacy Policy | Link to Datasheet | Link Exchange | Manufacturer List All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |