Specific Speed and Unit Conditions
Revolutions per minute (R.\b P.M.) is a measure of the frequency of a rotation. It annotates the number of full rotations completed in one minute around a fixed axis.
Horse power (H.\b P.) is the name of several units of measurement of power.
The mechanical horsepower (imperial horsepower), of exactly 550 foot-pounds per second is approximately equivalent to 745.7 watts.
Horse power was originally defined to compare the output of steam engines with the power of draft horses.
Specific speed is a non-dimensional number used to classify pump impellers as to their type and proportions.
In Imperial units it is defined as the speed in revolutions per minute at which a geometrically similar impeller would operate if it were of such a size as to deliver one gallon per minute against one foot of hydraulic head.
In metric units flow may be in or
and head in
, and care must be taken to state the units used.
A turbine is a rotary engine that extracts energy from a fluid flow and converts it into useful work.
The selection of Specific Speed and Unit Conditions for turbines with reference to Model Testing
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Introduction
In the selection and/or design of turbines for a particular application it is common to rely on model testing. The results are then scaled up using the following principles:
Principles of Similarity Applied to Turbines.
A similar model means :
- Geometrically similar - made from the same drawings but to a different scale.
- Dynamically similar - Operating conditions and equal efficiencies.
Thus in comparing two similar turbines
- All the linear dimensions will be in the same ratio.
- All angles will be the same, the velocity triangles will be geometrically similar and all velocities will be in the same ratio.
Specific speed of a turbine
The Specific Speed of a turbine is the speed in r.p.m. at which a similar model of the Turbine would run under a head of 1ft. when of such a size as to develop 1 H.P.
(Note: The suffix "s" is used to denote the values associated with the Specific Turbine)
Each type of Turbine (Pelton Wheel; Francis etc.) has it's own characteristic limits of .
But . Therefore
And . Therefore
But, = The Area of flow
The Velocity of flow
and
Or:
But the weight of water per second is
. Which is,
H.P.output of the Turbine . Which is
Note: The efficiencies are equal (where
Constant)
But for the specific Turbine and
are 1.

Notes on the use of the Specific Speed of a Turbine
is based on the values of
,
and
used at the design point. i.e. At maximum efficiency.
is NOT dimensionless and there are different values in each of the measurement systems.
Unless otherwise stated, is in r.p.m. and
is in Brake Horse Power(b.h.p.) i.e.
The Dimensions of Specific Speed
The unit of are
can be made dimensionless and still be a constant by dividing by
and this is called the The Speed Number.
The Specific Speed of a Particular form of Turbine
For a particular type of Turbine is constant.
and
. Therefore
. Or
(which is constant)
But
Therefore (which is constant)
Therefore (which is constant)
Specific Speeds for Differing types of Turbine
For different types of Turbine and a comparison of heads for a particular power and speed. The Turbine is required to develope100 b.h.p. at 1000 r.p.m.

An example of the use of Specific Speed
What type of turbine would be used if the supply head is of 10 cu.ft/sec with a head of 225 ft. ? Assume an efficiency of 80%.
Power Output = Water h.p.input Efficiency
It would therefore be necessary to use a Turgot Turbine. However it might be possible to use a Pelton Wheel with two jets.
Power per jet . Therefore
per Jet
From the above table it can be seen that the value of is too high. It is therefore worth considering a Pelton Wheel with four jets.
Now:
This would be a practical proposition but would result in some loss of efficiency due to interference between the jets. Consequently a better alternative would be to have two wheels on the same shaft with two jets per wheel.
Unit Conditions
The unit operating conditions for a turbine are those under which that particular turbine would run when working under a head of one ft. (or unit head in any other system) assuming there to be no change in efficiency.
This allows the performance of a given turbine to be compared when working under different heads and enables the characteristic curves to be drawn which show the efficiency at all running conditions.
Unit Speed
If is the Unit speed and
the speed under a head
And
. Therefore
. Or
(Where represents unit conditions and
represents a Constant)
Unit speed:
Unit Quantity
The Unit quantity of a Turbine is the flow through the turbine when operating under a head of one ft. assuming similar conditions.
Let:
be the flow under a head
.
- Therefore
is the area of flow
velocity.
And since the area is constant and the velocity is
. Or
(where is a Constant)
Unit Power
The Unit Power of a given turbine is the power output of the turbine when operating under a head of one ft. assuming no change in efficiency .
If is the output under a head
Then: If
is unchanged
And:
(where
is a Constant)
But
Unit Power

Note:
The Performance Curves of a Turbine
Performance Curves are plotted for a constant head and a constant Gate opening (or needle valve setting) and are on the basis of speed in r.p.m.
Francis Turbine


Pelton Wheel

Characteristic curves and iso-efficiency curves for a turbine under all operating conditions
The Turbine is tested under a constant head for each of several gate openings and the values of Power output
and speed
are reduced to unit conditions ( Equations (125) (132)). Suitable values for efficiency are the marked on the curve for the differing Gate openings and lines of iso-efficiency are drawn.

These graphs enable the best running speed or the best gate opening to be chosen and the corresponding power output for that speed and gate setting to be found for any particular head.
An example of the use of unit conditions
A Francis Turbine develops 3240 h.p. at 120 rpm when under a head of 36 ft. What would be the speed and output under a head of 25 ft. assuming no loss in efficiency.
But since
,
Unit Power, . Therefore
Fundamental Similarity Conditions and Model Testing
The following theory assumes equal efficiencies for both the Model and the Prototype. For geometrically similar turbines operating under dynamically similar conditions, the velocity triangles will be similar and: But
. Therefore,
. Or
And ,
. Therefore
. Or
.
Substitute for in the above equation:
. Or
Or substitute for :
Or
Power, if
is unchanged
From Equation (146), . Or
From Equation (148), . Or
i.e. (where
is a Constant)
From equations (144) and (150) . Or
These seven expressions allow the performance of the prototype turbine to be estimated from tests on the model. Note that there are in fact only three independent equations.
The efficiency predicted for a large Turbine from test carried out on a model are usual lower than that obtained from the actual prototype. This is because of the relatively greater frictional losses in the smaller passages of the model.
Strictly speaking the surface finish of the model should be geometrically similar to that of the prototype. The reduction in efficiency is said to be due to scale effects and is correcter for in practice by the use of empirical equations such as:
The Moody equation