Document 2jDxzQZ1pZMwN75Qkqa0gYY6R
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CHAPTER 38
1965 Guide And Data Book
fig. 11 .... Vector Diagrams Leaving Wheel of, a Centrifugal Compressor
purge systems to -continually remove nancondensables and impurities from the system. The purge system draws a small flow of vapor from a quiet zone near the top of the condenser, where the noncondensable gases have been concentrated. The refrigerant' and any water vapors which may be present are condensed. Hie noncondensable gases are blown off through a relief valve, and any water accumulating in the purge is periodically drained'off, or is collected by a system of weirs. The condensed refrigerant is returned to the evaporator
through a float valve.
PERFORMANCE
Hie centrifugal compressor is basically a relatively constant
head) variable capacity machine. The work input per unit
magq flow be derived as a direct function of C/jCbj -- t/jCi
where V is the peripheral-velocity of the impeller and C,, is the
tangential velocity of the gas. Subscript 1 is for the conditions
entering the impeller, and subscript 2 is for the conditions
leaving the impeller. In the simple case where no inlet prewhiri
is applied,' C*i is zero, and the work input is
'
Fig. ll chows the vector diagrams at the tip of two impel
lers, (a) radial bladed and (b) with backward-curved blades.
Note that because C*s is smaller for the backward-curved
impeller, must be larger in order to achieve the same work
input. Cma is the through-flow velocity and is approximately
proportional to capacity. Thus, at reduced capacity, the dotted vector diagiWs will result. By inspection it can be
seen that the value of C* changes only slightly with change in capacity in either case, but the change is more pronounced for
the backward-curvedj
for the radial impeller. At shutoff
or zero flow, must be equal to U in either case. In Pig. 12,
theoretical work input per unit mass flow is shown as a func
tion of flow or capacity. Hie output of the compressor is a
function of the work input and the losses. Fig. 13 shows input
and output curves for the two impellers. Generally, the radial-
bladed impeller has an output characteristic that is not as
broad and flat as the backward-curved type, and surge tends
to occur at a higher capacity. However, it should be noted
that there is no definite line of demarcation between radial
and backward-curved impellers, since any degree of backward
curvature may be selected. The illustrated comparisons are
between a radial and a highly backward-curved impeller in
order to show the extremes.
Another point to be noted is that the slope of the work input
curve for the backward-curved impeller is steeper than that
for the radial impeller. The result of this characteristic,-as
shown in Fig. 13, is that the horsepower for the backward-
curved impplW reaches a peak at a capacity somewhat higher
than dftgjgrn capacity, whereas the horsepower of the radial-
bladed impeller continues to rise because of the slight slope
of. the work-input curve. This characteristic of the backward-
curved impeller is important when electric motor, drive is
to be used, since it is possible to use this characteristic tq
prevent overloading of the motor. For the radial-bladed im
peller, other wmiw of control must be used to prevent motor
overload. This feature is not of particular significance for a
turbine drive. All of the previous discussion has been based on the utiliza
tion of constant speed drive and fired inlet prerotation.
Control of capacity and head is normally obtained in this case
by throttling (suction damper). However, since both head
and capacity are affected by throttling, it is sometimes neccs1
sary to use a bypass in order to maintain head at very low
loads. Other common means of control are the utilization of
variable inlet guide vanes and variable speed. Any or all of
these could also be used in combination.
'
As far as the compressor is concerned, variable speed is a
most efficient means of control. However, it has much the
camp characteristic as'throttling and.cannot maintain high
head at low flow. Also, the efficiency of the driver must be
into account before any conclusions can be drawn con
cerning system power consumption. Fig. 14 shows perform
ance with variable speed. Note the significant reduction in
horsepower with reduced capacity.
Surge is'a characteristic of centrifugal compressors which
occurs at reduced capacity. At this flow condition, a sudden
breakdown of flow occurs, similar to stalling of an airplane
wing. When this happens, the compressor can no longer main
tain the condenser pressure and'a momentary reversal of flow
occurs with an attendant lowering of condenser pressure. At
lower condenser pressure, the compressor is again able to
function, the gas flows in the normal direction, and at an in
creased'rate, which again allows stable compressor flow.
Condenser pressure is again built up, and the flow rate reduces
until the stalling point is again reached, at which time the
cycle repeats! Hie frequency of the cycle is determined by;,
the flow characteristics of the entire refrigeration system.;. \
Compressors
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A steady-surge may occur as often' as one or more timpq a
second, or with several seconds between flow reversals. An iniermiUeni surge may sometimes be noted, with several minutes, between surges. . ' . `
Surging does not result in an appreciable loss of refrigera tion, or in loss of economy, nor is the mechanical function of the machine necessarily affected. The repeated flow reversals will, however, impose higher than, normal loads on thrust bearing surfaces. Refrigerant and bearing temperatures can sometimes build up to a dangerous point if a severe degree of surging is maintained for a long period of' time. Surge is detected primarily by a significant intermittent change in noise level of the.machine. Hie reduced capacity at which surge occurs varies widely, depending largely on'the inVpplW tip peripheral Mach number. It may be'as low as 50 percent of design capacity for low Mach number, and may increase to'ashigh'as 100 percent of capacity for very highrMach numbers.".' V !;
Variable inlet guide vanes in use today perform a suctionthroitling function in combination with.a variation of the amount of prerotation imparted .to the incoming gas. Fig. 15 shows the' vector diagrams at the inlet to.`an impeller.' Hie design or peak efficiency occurs at that inlet flow velocity Cmi which results in a relative flow angle into the impeller such that the relative* vector W, lines up approximately with the leading edge of the impeller blades.'If inlet guide vanes are set so as to impart a swirl to the inlet gas in .the. direction of rotation,, the vector diagram (b) ` results, \dierr angle a, is obtained with'a'lower value of C*U in diagram (a). If the inlet guide vanes are set to impart a swirl Against rotation; vector diagram (e) results where Ci to obtains is larger.
As'mentioned,'work done on ,the gas is proportional' to bj -- UiCuuwhere C in the direction'of rotation is positive/
Thus, prewhiri with the impeller rotation mil result in'some reduction of head as compared to that' for ho whir!,' and pre^ whirl'against rotation will result in some inriW-<a inrbead.
Since the velocities at the impeller inlet are' low in comparison with the discharge velocities, the change in Hoad is not large even for fairly substantial'amounts of prewhiri. Fig. 10 shows the compressor characteristic at constant'speed for varying prewhiri Note that this method of control aIba effectively lowers horsepower with capacity, but hot as rapidly as with variable speed. However, the head is maintained quite well at lowered capacity, in comparison toJeither simple throttling or speed variation. If variable speed, and prewhirl are com bined, the compressor will-have this-liype of characteristic at each speed.
PflCWHIRL
fig. 15 .... Met Vector Diagrams for a Centrifugal Compressor with Met Guide Vanes
CENTRIFUGAL REFRIGERATION CONTROLS
Capacity Control
In. operation,, centrifugal .refrigeration mnyhinA must
accommodate two basic variables, refrigeration load and con
denser water inlet temperature. These variables are impressed
upon'the compressor,as flow and head, respectively. The ex
tent and relationship of
variations are functions of the
application. The load can be relatively constant in one appli
cation or may vary from zero to full load in Another applica
tion. Condenser water temperature be virtually constant,
vary with the season, or vary with the wetrbulb temperature,
depending upon whether well river, lake, or cooling tower
water is used. The head-flow characteristic required from the
compressor for a typical water chilling application using
cooling towers is shown in Fig. 17. Here, every conceivable
means of reducing the head is desirable in order to attain the
maximum ability to unload the compressor.
Although the centrifugal compressor is basically a constant
bead, variable flow device, there remains the problem. of
matching the compressor output exactly to the load required.
An early method of capacity control was to vary,the condenser
water:flow so as to make the load curve coincide with .the
compressor characteristic. This method limits the stable
control range to the fixed speed characteristic of- the' com
pressor. Other capacity control m^Ans, already described in
tiie section on performance, are. variable speed, suction
throttling, variable inlet guide vanes,' And hot gas bypass.
Suction throttling modifies the compressor characteristic in a
manner quite similar to that of variable speed, but at'some
what lower efficiency. Fig. 14 indicates that these two methods
will not fulfill the complete requirements of Fig. 17. Fig. 16,-
the. characteristic for.variable inlet-guide vanes, illustrates
that this method comes very close to fulfilling the complete
fig. 16 .... Performance Characteristics of a Centrifugal Compressor-with'Variable Met Guide Vanes-