Project Introduction

General

This set of builders notes is replaces and supercedes the notes for the original SR Lite II design, now documenting a combined kit with all of the components required to do any of the five available options (post 1 Jun1 2010). The original design's schematic dates back to December 2009. The current design's schematic is depicted in the Schematic Section, below.

ERRATA: Please note that the total inventory count on 49.9 ohm 1% resistors in the Inventory page is 2, not 3. This error was spotted by Graham G3ZOD. Tx, Graham

The Softrock Lite II, the sequel to the SR Lite V6.2 series , provides an economical entry-level kit for the ham or SWL who wants to experiment with Software Defined Radio (SDR).

The Lite II circuit board size is 2.5 inches by 0.9 inches. All SMT components are mounted on the bottom of the board .

Ordering Information

Prices and availability of the kit are found at the Softrock Ordering Website.

This kit was originally offered in several versions, corresponding to bands of interest. It has, since, changed over to the Combined Lite II. This "combined" kit will include all components needed to build the kit as a 160m, 80m, 40m, 30m, or 20m receiver. The 15m option is no longer offered. The builder can decide which kit to build at commencement of the build; the parts for any of the options are included in the shipment. The Combined Lite II kit will be priced at $20 plus $1 for US postage or $2 for DX postage.

As of 11 June, 2010, the options in this series will include:

Prices for any one of the above kits are found at the Softrock Ordering site.


Original Versions of SR Lite II

Before the current Combined SRLite II, the SR Lite II came in six versions corresponding to the 160, 80, 40, 30, 20, and 15m bands. These versions were described in the common schematic, which had a table of band-specific component values. The changes from that schematic to the current version are summarized below:

Original SR Lite II Builders Notes

The original notes were compiled into a PDF file by Philippe F6CZV for those who are still working with the original, now superceded SR Lite (non-combined) kit. Please note that the design of that original kit and the currently offered (from KB9YIG) kit is quite different. Don't get them confused!

Note: SoftRock IF Lite II

Tony also offers several versions of the Softrock Lite II kit that provide panadaptor capability on a number of popular legacy transceivers by tapping into the IF. The versions and the associated IF frequencies are outlined in the table below:

Rig IF FreqXtal FreqSR Lite Freq
455kHz1.843MHz460 kHz
4.195 MHz19.6875MHz4.921MHz
8.215MHz32.768MHz8.191MHz
8.83MHz35.25128.812MHz
9.0MHz11.981MHz8.8984MHz
9.01MHz12.0MHz9.0MHz
10.55MHz14.089MHz10.566MHz
10.695MHz14.276MHz10.707MHz
10.7MHz14.2998MHz10.724MHz

The schematic for this SR IF Lite II kit is essentially the same as the schematic of the SR Lite II combined kit documented herein and these build notes can be used for the IF version. Exceptions to the Bill of Materials are in the following schematic sheets:

(Components required for specific IF options are NOT included in the printed BOMs in these notes. Refer, instead, to the above sheets.)

Printable PDF of Build Notes

Click here to download a printable pdf file of the build notes (as of 3/22/2011_

Theory of Operation

Many thanks to Jan G0BBL and Tony KB9YIG for their input to this and the stages' theoretical discussions.

(go directly to build notes)

Project Schematic

(Resistor testpoints (hairpin, top, or left-hand lead), as physically installed on the board, are marked in the schematic with red dots)

Main Circuit Schematic(s)

(above schematic has clickable areas that can be used for navigation)

(go directly to build notes)

Project Bill of Materials

See Project Bill of Materials

Project Expert's (terse) Build Notes

Board Top

Board Bottom

Summary (Experts') Build Notes

(Tony Parks can build this kit in about 3 hours!)

10 June 2010: The latest schematic from Tony is available at this link. This schematic combines the schematics for the various options into a single schematic.

Project Detailed Build Notes

For the non-expert builders among us, this site takes you through a stage-by-stage build of the kit. Each stage is self-contained and outlines the steps to build and test the stage. This ensures that you will have a much better chance of success once you reach the last step, since you will have successfully built and tested each preceding stage before moving on to the next stage.

Each stage is listed below, in build order, and you can link to it by clicking on its name below (or in the header and/or footer of each web page).

Background Info

Tools

Winding Inductors

To learn how to wind coils and transformers, please read the

Soldering

If you are not experienced at soldering (and even if you are somewhat experienced at soldering), refer to Tom N0SS's excellent tutorial on basic soldering techniques.


The video below describes techniques for soldering SOIC 14 (and 16 and 8) SMDs

"

View the above in full-screen mode on Youtube.

For the more adventurous, there is a process using solder paste and an electric oven called the reflow process, which can be used to install all the SMT chips to one side of the PC Board. This is documented by Guenael Jouchet in the following Youtube segment:

ESD Protection

You may wish to review the message topic beginning at Message 43554 for a common-sense discussion on ESD.

Work Area

Misc Tools

Project Completed Stage

Top of the Board

View of Completed Top

Bottom of the Board

View of Completed Bottom

Project Testing

Each stage will have a "Testing" Section, outlining one or more tests that, when successfully completed, provide you with the confidence and assurance that you are heading in the right direction towards a fully tested and built transceiver.  

When you perform a test, you should always record the results of the test where indicated in the Testing section. This will make troubleshooting via the reflector much easier, since you will be communicating with the experts using a standard testing and measurement regime.

When comparing measurements to those published in these notes, the builder should be aware that actual and expected values could vary by as much as +/- 10%. The idea behind furnishing "expected/nominal" measurement values is to provide the builder with a good, "ballpark" number to determine whether or not the test has been successful. If the builder has concerns about his measurements, he should by all means pose those concerns as a query in the Softrock reflector so the experts can provide assistance.

It goes without saying that you should ALWAYS precede any tests with a very careful, minute inspection (using the best light and magnification available to you) to be sure all solder joints are clean and there are no solder bridges or cold joints.


This kit can be built and reliably tested using nothing more than a common multimeter. Tests assume that the builder has a decent digital multimeter of sufficiently high input impedance as to minimize circuit loading issues.  Measurements will be taken of current draws, test point voltages, and resistances.

Most stages will have a current draw test, in which the builder tests the stage's current draw in two different ways:

  • First, testing the draw through a current-limiting resistor
  • Then, when that test is OK, removing the current-limiting resistor and measuring the real current draw.
Some tests will require you to use your ham radio to receive or generate a signal of a specified frequency in order to test transmitters, oscillators, dividers, and/or receivers.
Optional testing. If the builder has (access to) a dual channel oscilloscope, along with an audio signal generator and an RF signal generator, and feels the need to perform tests beyond the basic DMM tests, certain stages will include in their testing section some optional tests involving this advanced equipment.


The IQGen or DQ-Gen programs available free from Michael Keller, DL6IAK, can be used in a pinch to get the sound card to produce audio tones for injection into the circuit.

You can always use Rocky to generate I and Q signals for tests requiring these audio signals (this is the author's preferred way)

Local Oscillator Stage Dividers Stage Power Supply Stage Band Pass Filter Stage Mixer Stage Op Amp Stage