370
Generating User Defined Functions
Table 6-2. ’C’ Sin(x) Vs. HP E1415 Haversine Function
Limitations
As stated earlier, there are limitations to using this custom function
technique. These limitations are directly proportional to the non-linearity of
the desired waveform. For example, suppose you wanted to represent the
function X*X*X over a range of +/-1000. The resulting binary range would
be +/-1024, and the segments would be partitioned at 1024/64 intervals.
This means that every 16 units would yield an Mx+B calculation over that
segment. As long as you input numbers VERY close to those cardinal
points, you will get good results. Strictly speaking, you will get perfect
results if you only calculate at the cardinal points, which may be reasonable
for your application if you limit your input values to exactly those 128
points.
You may also shift the waveform anywhere along the X-axis, and
Build_table() will provide the necessary offset calculations to generate the
proper table. Be aware too that shifting the table out to greater magnitudes
of X may also impact the precision of your results dependent upon the
linearity of your waveform. Suffice it to say that you will get your best
results and it will be easiest for you to grasp what your doing if you stay near
the X=0 point since most of the results of your measurements will have
1e-6..16 values for volts.
One final note. You may see truncation errors in the fourth digit of your
results. This is because only 15 bits of your input value is sent to the
function. This occurs because the same technique used for Custom EU
conversion is used here, and the method assumes input values are from the
16 bit A/D (15 bits = sign bit). This is evident in Table 1 where the first and
last entries return
±0
.9999 rather than
±
1. For most applications this
accuracy should be more than adequate.
’C’ sin(-1.570798)
-1.000000
’HP E1415’ sin(-1.570798)
-0.999905
’C’ sin(-1.256639)
-0.951057
’HP E1415’ sin(-1.256639)
-0.950965
’C’ sin(-0.942479)
-0.809018
’HP E1415’ sin(-0.942479)
-0.808944
’C’ sin(-0.628319)
-0.587786
’HP E1415’ sin(-0.628319)
-0.587740
’C’ sin(-0.314160)
-0.309017
’HP E1415’ sin(-0.314160)
-0.308998
’C’ sin(0.000000)
0.000000
’HP E1415’ sin(0.000000)
0.000000
’C’ sin(0.314160)
0.309017
’HP E1415’ sin(0.314160)
0.308998
’C’ sin(0.628319)
0.587786
’HP E1415’ sin(0.628319)
0.587740
’C’ sin(0.942479)
0.809018
’HP E1415’ sin(0.942479)
0.808944
’C’ sin(1.256639)
0.951057
’HP E1415’ sin(1.256639)
0.950965
’C’ sin(1.570798)
1.000000
’HP E1415’ sin(1.570798)
0.999905
Summary of Contents for VXI 75000 C Series
Page 2: ......
Page 16: ...16 ...
Page 18: ......
Page 30: ...30 Getting Started Chapter 1 Notes ...
Page 32: ...32 Field Wiring Chapter 2 Figure 2 1 Channel Numbers at SCP Positions ...
Page 44: ...44 Field Wiring Chapter 2 Figure 2 11 HP E1415 Terminal Module ...
Page 54: ...54 Field Wiring Chapter 2 Notes ...
Page 61: ...Programming the HP E1415 for PID Control 61 Chapter 3 Programming Overview Diagram ...
Page 136: ...136 Creating and Running Custom Algorithms Chapter 4 Notes ...
Page 152: ...152 Algorithm Language Reference Chapter 5 Notes ...
Page 304: ...304 HP E1415 Command Reference Chapter 6 Command Quick Reference Notes ...
Page 308: ...308 Specifications Appendix A Thermocouple Type E 200 800C SCPs HP E1501 02 03 ...
Page 309: ...Specifications 309 Appendix A Thermocouple Type E 200 800C SCPs HP E1508 09 ...
Page 310: ...310 Specifications Appendix A Thermocouple Type E 0 800C SCPs HP E1501 02 03 ...
Page 311: ...Specifications 311 Appendix A Thermocouple Type E 0 800C SCPs HP E1509 09 ...
Page 312: ...312 Specifications Appendix A Thermocouple Type E Extended SCPs HP E1501 02 03 ...
Page 313: ...Specifications 313 Appendix A Thermocouple Type E Extended SCPs HP E1508 09 ...
Page 314: ...314 Specifications Appendix A Thermocouple Type J SCPs HP E1501 02 03 ...
Page 315: ...Specifications 315 Appendix A Thermocouple Type J SCPs HP E1508 09 ...
Page 316: ...316 Specifications Appendix A Thermocouple Type K SCPs HP E1501 02 03 ...
Page 317: ...Specifications 317 Appendix A Thermocouple Type R SCPs HP E1501 02 03 ...
Page 318: ...318 Specifications Appendix A Thermocouple Type R SCPs HP E1508 09 ...
Page 319: ...Specifications 319 Appendix A Thermocouple Type S SCPs HP E1501 02 03 ...
Page 320: ...320 Specifications Appendix A Thermocouple Type S SCPs HP E1508 09 ...
Page 321: ...Specifications 321 Appendix A Thermocouple Type T SCPs HP E1501 02 03 ...
Page 322: ...322 Specifications Appendix A Thermocouple Type T SCPs HP E1508 09 ...
Page 323: ...Specifications 323 Appendix A 5K Thermistor Reference SCPs HP E1501 02 03 ...
Page 324: ...324 Specifications Appendix A 5K Thermistor Reference SCPs HP E1508 09 ...
Page 325: ...Specifications 325 Appendix A RTD Reference SCPs HP E1501 02 03 ...
Page 326: ...326 Specifications Appendix A RTD SCPs HP E1501 02 03 ...
Page 327: ...Specifications 327 Appendix A RTD SCPs HP E1508 09 ...
Page 328: ...328 Specifications Appendix A 2250 Thermistor SCPs HP E1501 02 03 ...
Page 329: ...Specifications 329 Appendix A 2250 Thermistor SCPs HP E1508 09 ...
Page 330: ...330 Specifications Appendix A 5K Thermistor SCPs HP E1501 02 03 ...
Page 331: ...Specifications 331 Appendix A 5K Thermistor SCPs HP E1508 09 ...
Page 332: ...332 Specifications Appendix A 10K Thermistor SCPs HP E1501 02 03 ...
Page 333: ...Specifications 333 Appendix A 10K Thermistor SCPs HP E1508 09 ...
Page 334: ...334 Specifications Appendix A Notes ...
Page 346: ...346 Glossary Appendix C Notes ...
Page 388: ...388 Generating User Defined Functions Appendix F Notes ...