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Instrumentation and
measurements
Instrument Types
&
Static Characteristics of Instruments
Types of instruments
ā€¢ Instruments are subdivided into following classes
i. Active and Passive Instruments
ii. Null-type and Deflection-type Instruments
iii. Analogue and Digital Instruments
iv. Indicating and with a signal output Instruments
v. Smart and non-smart Instruments
Indicating and NON-Indicating instruments
ā€¢ Those that give an audio or visual indication of the magnitude of the physical
quantity measured. (non-indicating)
ā€¢ those that give an output in the form of a measurement signal whose magnitude is
proportional to the measured quantity. (indicating)
ā€¢ The class of indicating instruments normally includes all null-type instruments and
most passive ones.
ā€¢ Instruments that have a signal-type output are commonly used as part of
automatic control systems.
ā€¢ they can also be found in measurement systems where the output measurement
signal is recorded in some way for later use.
Smart and non-smart instruments
ā€¢ The advent of the microprocessor has created a new division in instruments between
those that do incorporate a microprocessor. (smart)
ā€¢ Those with no microprocessor are non-smart instruments.
Static characteristics of instruments
ā€¢ Accuracy (measurement uncertainty)
ā€¢ Precision (repeatability)
ā€¢ Tolerance
ā€¢ Range or Span
ā€¢ Sensitivity of measurement
ā€¢ Threshold
ā€¢ Resolution
ā€¢ Hysteresis effect
ā€¢ Dead space
Accuracy (measurement uncertainty)
ā€¢ The accuracy of an instrument is a measure of how close the output reading of
the instrument is to the correct value.
ā€¢ Inaccuracy is the extent to which a reading might be wrong, and is often quoted as
a percentage of the full-scale (f.s.) reading of an instrument.
ā€¢ The term measurement uncertainty is frequently used in place of inaccuracy.
ā€¢ For example, a pressure gauge of range 0ā€“10 bar has a quoted inaccuracy of Ā±1.0%
f.s. (Ā±1% of full-scale reading), then the maximum error to be expected in any
reading is 0.1 bar. This means that when the instrument is reading 1.0 bar, the
possible error is 10% of this value.
Precision (repeatability)
ā€¢ The degree of repeatability or reproducibility in measurements from an instrument is
an alternative way of expressing its precision.
ā€¢ Precision is a term that describes an instrumentā€™s degree of freedom from random
errors.
ā€¢ Difference between reproducibility and repeatability.
Tolerance
ā€¢ Tolerance is a term that is closely related to accuracy and deļ¬nes the maximum error
that is to be expected in some value.
ā€¢ This is also known as Limiting error.
ā€¢ For example, as resistors have tolerances of perhaps 5%. One resistor chosen at
random from a batch having a nominal value 1000 W and tolerance 5% might have
an actual value anywhere between 950 W and 1050 W.
Range (Span) & Sensitivity of measurement
ā€¢ The range or span of an instrument deļ¬nes the minimum and maximum values of
a quantity that the instrument is designed to measure.
ā€¢ The sensitivity of measurement is a measure of the change in instrument output
that occurs when the quantity being measured changes by a given amount.
ā€¢ Thus, sensitivity is the ratio:
Threshold
ā€¢ The minimum level of input that produces a change in the instrument output
reading large enough to be detectable is known as threshold of the instrument.
ā€¢ Some manufacturers quote absolute values, whereas others quote threshold as a
percentage of full-scale readings.
ā€¢ As an illustration, a car speedometer typically has a threshold of about 15 km/h.
This means that, if the vehicle starts from rest and accelerates, no output reading
is observed on the speedometer until the speed reaches 15 km/h.
Resolution
ā€¢ When an instrument is showing a particular output reading, there is a lower limit
on the magnitude of the change in the input measured quantity that produces an
observable change in the instrument output.
ā€¢ Like threshold, resolution is sometimes speciļ¬ed as an absolute value and
sometimes as a percentage of f.s. deļ¬‚ection.
ā€¢ One of the major factors inļ¬‚uencing the resolution of an instrument is how ļ¬nely
its output scale is divided into subdivisions.
Resolution
ā€¢ Using a car speedometer as an example again, this has subdivisions of typically 20
km/h. This means that when the needle is between the scale markings, we cannot
estimate speed more accurately than to the nearest 5 km/h. This ļ¬gure of 5 km/h
thus represents the resolution of the instrument.
Hysteresis effect
Hysteresis effectā€¢ Figure illustrates the output characteristic of an instrument that exhibits hysteresis.
ā€¢ If the input measured quantity to the instrument is steadily increased from a negative
ā€¢ value, the output reading varies in the manner shown in curve (a).
ā€¢ If the input variable is then steadily decreased, the output varies in the manner shown in
curve (b).
ā€¢ The non-coincidence between these loading and unloading curves is known as hysteresis.
ā€¢ Two quantities are deļ¬ned, maximum input hysteresis and maximum output hysteresis,
ā€¢ as shown in Figure.
Hysteresis effect
ā€¢ These are normally expressed as a percentage of the full-scale input or output
reading respectively.
ā€¢ Hysteresis is most commonly found in instruments that contain springs.
ā€¢ Hysteresis can also occur in instruments that contain electrical windings formed
round an iron core, due to magnetic hysteresis in the iron.
ā€¢ This occurs in devices like the variable inductance displacement transducer, the
LVDT and the rotary differential transformer.
Dead space
ā€¢ Dead space is deļ¬ned as the range of different input values over which there is no
change in output value.
ā€¢ Any instrument that exhibits hysteresis also displays dead space.

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Instrumentation & Measurement: Types and Static Characteristics of Instruments

  • 3. Types of instruments ā€¢ Instruments are subdivided into following classes i. Active and Passive Instruments ii. Null-type and Deflection-type Instruments iii. Analogue and Digital Instruments iv. Indicating and with a signal output Instruments v. Smart and non-smart Instruments
  • 4. Indicating and NON-Indicating instruments ā€¢ Those that give an audio or visual indication of the magnitude of the physical quantity measured. (non-indicating) ā€¢ those that give an output in the form of a measurement signal whose magnitude is proportional to the measured quantity. (indicating) ā€¢ The class of indicating instruments normally includes all null-type instruments and most passive ones. ā€¢ Instruments that have a signal-type output are commonly used as part of automatic control systems. ā€¢ they can also be found in measurement systems where the output measurement signal is recorded in some way for later use.
  • 5. Smart and non-smart instruments ā€¢ The advent of the microprocessor has created a new division in instruments between those that do incorporate a microprocessor. (smart) ā€¢ Those with no microprocessor are non-smart instruments.
  • 6. Static characteristics of instruments ā€¢ Accuracy (measurement uncertainty) ā€¢ Precision (repeatability) ā€¢ Tolerance ā€¢ Range or Span ā€¢ Sensitivity of measurement ā€¢ Threshold ā€¢ Resolution ā€¢ Hysteresis effect ā€¢ Dead space
  • 7. Accuracy (measurement uncertainty) ā€¢ The accuracy of an instrument is a measure of how close the output reading of the instrument is to the correct value. ā€¢ Inaccuracy is the extent to which a reading might be wrong, and is often quoted as a percentage of the full-scale (f.s.) reading of an instrument. ā€¢ The term measurement uncertainty is frequently used in place of inaccuracy. ā€¢ For example, a pressure gauge of range 0ā€“10 bar has a quoted inaccuracy of Ā±1.0% f.s. (Ā±1% of full-scale reading), then the maximum error to be expected in any reading is 0.1 bar. This means that when the instrument is reading 1.0 bar, the possible error is 10% of this value.
  • 8. Precision (repeatability) ā€¢ The degree of repeatability or reproducibility in measurements from an instrument is an alternative way of expressing its precision. ā€¢ Precision is a term that describes an instrumentā€™s degree of freedom from random errors. ā€¢ Difference between reproducibility and repeatability.
  • 9. Tolerance ā€¢ Tolerance is a term that is closely related to accuracy and deļ¬nes the maximum error that is to be expected in some value. ā€¢ This is also known as Limiting error. ā€¢ For example, as resistors have tolerances of perhaps 5%. One resistor chosen at random from a batch having a nominal value 1000 W and tolerance 5% might have an actual value anywhere between 950 W and 1050 W.
  • 10. Range (Span) & Sensitivity of measurement ā€¢ The range or span of an instrument deļ¬nes the minimum and maximum values of a quantity that the instrument is designed to measure. ā€¢ The sensitivity of measurement is a measure of the change in instrument output that occurs when the quantity being measured changes by a given amount. ā€¢ Thus, sensitivity is the ratio:
  • 11. Threshold ā€¢ The minimum level of input that produces a change in the instrument output reading large enough to be detectable is known as threshold of the instrument. ā€¢ Some manufacturers quote absolute values, whereas others quote threshold as a percentage of full-scale readings. ā€¢ As an illustration, a car speedometer typically has a threshold of about 15 km/h. This means that, if the vehicle starts from rest and accelerates, no output reading is observed on the speedometer until the speed reaches 15 km/h.
  • 12. Resolution ā€¢ When an instrument is showing a particular output reading, there is a lower limit on the magnitude of the change in the input measured quantity that produces an observable change in the instrument output. ā€¢ Like threshold, resolution is sometimes speciļ¬ed as an absolute value and sometimes as a percentage of f.s. deļ¬‚ection. ā€¢ One of the major factors inļ¬‚uencing the resolution of an instrument is how ļ¬nely its output scale is divided into subdivisions.
  • 13. Resolution ā€¢ Using a car speedometer as an example again, this has subdivisions of typically 20 km/h. This means that when the needle is between the scale markings, we cannot estimate speed more accurately than to the nearest 5 km/h. This ļ¬gure of 5 km/h thus represents the resolution of the instrument.
  • 15. Hysteresis effectā€¢ Figure illustrates the output characteristic of an instrument that exhibits hysteresis. ā€¢ If the input measured quantity to the instrument is steadily increased from a negative ā€¢ value, the output reading varies in the manner shown in curve (a). ā€¢ If the input variable is then steadily decreased, the output varies in the manner shown in curve (b). ā€¢ The non-coincidence between these loading and unloading curves is known as hysteresis. ā€¢ Two quantities are deļ¬ned, maximum input hysteresis and maximum output hysteresis, ā€¢ as shown in Figure.
  • 16. Hysteresis effect ā€¢ These are normally expressed as a percentage of the full-scale input or output reading respectively. ā€¢ Hysteresis is most commonly found in instruments that contain springs. ā€¢ Hysteresis can also occur in instruments that contain electrical windings formed round an iron core, due to magnetic hysteresis in the iron. ā€¢ This occurs in devices like the variable inductance displacement transducer, the LVDT and the rotary differential transformer.
  • 17. Dead space ā€¢ Dead space is deļ¬ned as the range of different input values over which there is no change in output value. ā€¢ Any instrument that exhibits hysteresis also displays dead space.