You need to test, we're here to help.

You need to test, we're here to help.

09 October 2013

Waveform Generator Tricks: Pulse-Width Modulation

Teledyne LeCroy's WaveStation waveform generator
Figure 1: Teledyne LeCroy's WaveStation
waveform generator
Imagine that you're designing a digital control circuit but you really want it to behave like an analog circuit. Say, something like light dimmers, or a motor controller. A tried-and-true approach is to use pulse-width modulation (PWM) to have your digital control logic emulate the behavior of analog control. And your handy-dandy waveform generator, if so equipped, is a great way to generate a PWM signal to test out your design.

02 October 2013

Oscilloscope Basics: Controlling An Oscilloscope (Part I)

Front of HDO6054 oscilloscope
Figure 1: Front of HDO4054 oscilloscope
At first glance, the front of today's oscilloscopes can be daunting. For starters, there's an array of physical "hard" controls. Relatively recent models may also sport touch screen displays with so-called "soft" controls. For one thing, getting familiar with the front of these instruments is only a matter of experimentation and common sense. And for another, what at first may seem complex is carefully designed to make the instrument as easy to operate as possible. This is the first installment of a projected series of posts that will explain how to control a modern oscilloscope. Here, we'll start with the front panel.

25 September 2013

Back to Basics: What is an FFT?

An FFT of a 300-kHz square wave.
Figure 1: An FFT of a 300-kHz square wave.
In an earlier post, we discussed the basics of setting up a fast-Fourier transform (FFT) on an oscilloscope, and why you'd want to use an FFT to get a frequency-domain view of a time-domain signal in the first place. It might be a good idea to take a step back and dig into just what an FFT is (Figure 1).

19 September 2013

Back to Basics: Creating Pulsed Waveforms

The WaveStation 2000's Pulse waveform dialog box.
Figure 1: The Pulse
waveform dialog box.
Many test applications call for the creation of pulsed waveforms ranging from clock signals to logic control to trigger signals, among others. Often, these waveforms are used in the characterization and debug of digital devices and circuits. Stand-alone pulse generators provide one way to generate pulsed waveforms but in many cases, a general-purpose waveform generator will do a fine job.

10 September 2013

Don't Just Trigger, But Trigger Smart

The runt pulse and non-monotonic edge anomalies in this signal are not apparent with a simple edge trigger.
Figure 1: The runt pulse and non-monotonic edge anomalies
in this signal are not apparent with a simple edge trigger.
In an earlier post, we looked at some of the basics of oscilloscope triggering and noted that there are two broad classes of triggers: simple triggers that sense particular characteristics of the input signal (transition edges, pulse widths, and so on), and more complex triggers that let you zero in on more specific attributes of the signal based on timing and amplitude parameters.

30 August 2013

Oscilloscope Basics: Setting Up FFTs

Capture time determines the frequency resolution, Δf
Figure 1: Capture time determines the
frequency resolution, Δf.
For most of their history, oscilloscopes have been thought of chiefly as a time-domain instrument. That is, an oscilloscope facilitates the observation of changes in a signal's amplitude over time. However, many modern digital and mixed-signal oscilloscopes provide spectral analysis capabilities based on fast Fourier transforms (FFTs) that convert a time-domain waveform into the frequency domain. There are lots of good reasons for taking advantage of this capability. Perhaps the most important is to gain insight into characteristics of the signal that simply are not apparent from a time-domain perspective.

15 August 2013

Waveform Generators, Arbitrary and Otherwise

Teledyne LeCroy's ArbStudio arbitrary waveform generator
Figure 1: Teledyne LeCroy's ArbStudio 1104 is a four-channel,
16-bit arbitrary waveform generator with a maximum interpolated
sampling rate of 1 GS/s.
Next to an oscilloscope and perhaps a digital multimeter, a waveform generator is one of the most versatile and useful pieces of test equipment on the bench. Often, a device or circuit under test will require some kind of signal stimuli with which to confirm proper function and/or ferret out faults. This can run the gamut from a simple swept sine or pulse waveform for purposes of characterizing signal response, to advanced serial-data protocols, and even to the playback of analog signals captured in the real world. A waveform generator is your ticket to creating the required stimuli for your device or circuit under test.