rotating equipment pumps. rotating equipment high pressure it’s all in the ‘seal’ low pressure...
TRANSCRIPT
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Rotating Equipment
PUMPS
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Rotating Equipment
HIGH PRESSURE
It’s all in the ‘Seal’
LOW PRESSURE
Rotating Shaft
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ROTATING EQUIPMENT PUMPS COMPRESSORS AGITATORS FANS / BLOWERS TURBINES VACUUM PUMPS VALVES
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Type of Seals Stuffing
Cheapest Leaks Continuously for cooling
Mechanical Seal More expensive Trace amounts of leakage for cooling
Double Mechanical Seal Sealess (Magnet Coupled, Canned)
Most ExpensiveIncreasingCost
IncreasingLeakageRate
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‘SEAL’Seal Location
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ROTATING EQUIPMENT“STUFFING BOX”
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Rotating Equipment Packing Material
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Rotating Equipment Valve Packing
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ROTATING EQUIPMENT SINGLE MECHANICAL SEAL - Pusher Type
High PressFluid
Shaft
Seal Face
Pump Housing
Spring
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ROTATING EQUIPMENT
John Crane EZ-1 Single Mechanical Seal
www.johncrane.com
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ROTATING EQUIPMENT
Single Mechanical - Bellows Mechanical Seal
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ROTATING EQUIPMENT
Bellows Mechanical Seal
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Rotating Equipment Double Mechanical Seal
Inboard Seal Outboard Seal
BarrierFluidInboard
Seal Face
OutboardSeal Face
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Rotating Equipment
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Rotating Equipment Double Mechanical Seal - Barrier Fluid
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Rotating Equipment Sealless Pumps - Magnetic Drive
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Rotating Equipment Sealless Pumps - Canned Motor
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Rotating Equipment Sealless Pumps - Canned Motor Pump
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Rotating Equipment Pumps - Air Operated
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Rotating Equipment Rotary Gear Pump
High viscosity fluids ( > 10 cP)
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Rotating Equipment Positive Displacement - Diaphragm Pump
Low viscosity fluids ( < 10 cP)
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Rotating Equipment Positive Displacement - Diaphragm
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Rotating Equipment Agitators
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Rotating Equipment Agitators
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Rotating Equipment Agitators
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Rotating Equipment Agitators
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Pump Sizing For CHEE 470
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Pump Selection
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Pump Selection Single Stage Centrifugal Pumps for
0.057-18.9 m3/min, 152 m maximum head
Rotary Pumps for 0.00378-18.9 m3/min, 15,200 m maximum head,
Reciprocating Pumps for 0.0378-37.8 m3/min, 300 km maximum head,
1m
3
min 264.2
gal
min
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Pump Sizing
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%50
)(
)(
PowerfluidHydraulic
EfficiencyMotorEfficiencyHydraulic
PowerfluidHydraulicPowerShaft
1714
)()()(
psipressurealDifferentiUSGPMFlowVolumetricPowerfluidHydraulic
GravSpecftHeadpsipressurealDifferenti 43352.0)()(
(HP)
Common Equations
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Pump Sizing 5 Easy Steps
Draw a Diagram Determine the flow Determine the inlet pressure Determine the discharge pressure Calculate shaft power
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Pump Sizing - Step 1 1.Draw A Diagram ! - based on P&ID
Source Pressure= 1.5 bar(g)
Destination 15 bar(g)
Liquid Level
Pump SuctionPressure
Pump DischargePressure
PumpSuctionStatic Head
Destination 29 bar(g)
Min Flow Bypass Line and orifice plate
PICPT
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Pump Sizing - Step 2 2.Determine the Flow Rate
Take Simulation Flow add 20% If there’s a min flow bypass- it’s flow is
15% of the rated flow
Simul = 100 gal/min Rated flow = 100 gpm * 1.20
Rated flow = 120 gal/min If Min Flow Bypass 100 * 1.20 / (1-0.15)
Rated flow = 141 gal/min
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Pump Sizing - Step 3 3. Determine Pump Inlet Pressure
Use Pressure from Simulation
Assume elevation changes offset piping pressure drops
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Pump Sizing - Step 4
4. Determine Discharge Pressure Look Downstream of the pump for a
place in the process where the pressure is controlled (or P is atmospheric or P is set by vapour pressure of fluid in tank)
PIC
PT
PV
LT
LV
LIC
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Pump Sizing - Step 4
4. Determine Discharge Pressure Work Backwards from Downstream Pressure Work your way back to pump
adding/subtracting add P due to frictional loss (piping) add OR subtract P due elevation changes add P due to control valves add P due to equipment (exch, packed
bed reactors, etc.)
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Pump Sizing - Step 4 Assume (first pass) that Control Valves
have 10 psi differential. If there’s more than one control valve in
parallel go back later and determine which one has the 10 psi and which one(s) has more.
Do P of min flow bypass orifice last.
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Pump Sizing - Step 4 Determine the Control Valve DP
Source Pressure= 0 bar(g)
Destination 15 bar(g)
Liquid Level
Pump SuctionPressure
Pump DischargePressure
PumpSuctionStatic Head
Destination 29 bar(g)1 bar
0.5 bar
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Pump Sizing - Step 4 Determine the Control Valve DP Control Valve Sizing
CV vs % Opening Characteristic
CV Volumetric_FlowSpec_Gravity
Pressure_Differential
Volumetric_Flowgalmin
Pressure_Differential psi
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Pump Sizing - Step 4 CV vs % Opening Characteristic
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Pump Sizing - Step 4 Piping DP = 15 psi at rated flow Flow Elements (FE’s) = 3 psi Heat Exchangers = 10 psi Filters - there are none Packed Beds - hmmm 25 psi in liq
service could use Ergun Equation (See
Perry’s) to calc
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Pump Sizing - Step 5 Determine Pump Differential Pressure
Subtract Inlet Press from Discharge Press
(note error in equipment list spreadsheet) Assume efficiency Calc Pump Shaft Power
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http://www.gouldspumps.com/gp_hss.ihtml
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Goulds Pump Sizing 3600 or 1800 RPM Start with Model 3196 (Standard
Chemical Service)
Look for the pump with the highest efficiency
http://www.gouldspumps.com/gp_hss.ihtml
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Workshop reflux pump on the acetone column
(easy one)
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NLL = 3’-6”LLL = 2’-0”
HLL = 4’-6”
LLLL = 2’-0”
LIT
LSLL
I PumpS/D
LICTI
PI
LAHL
LALL
Set@
MIHS
HS
PI
PI
RO
FV
FT
FICPV
PT PIC
CWS
CWR
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Workshop Flow: 4372 kg/hr (simulation), SG = 0.75 Diagram!
23/0.6*1.1= 43 trays height to reflux nozzle= 43*2ft+6 ft = 90 ft Find the pump type, hydraulic horsepower, and the Brake HP
FT
275 kPa
275 kPa
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Questions NPSH compression ratio driver types
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NPSHa vs NPSHr NPSHa = available NPSHr = required
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Rated Flow: 4372 * 1.2 / (1-0.15) = 6172 kg/hr = 35.3 usgpm
Suction Pressure = 275 kPa(g) Liq head to pressure = 90ft * 0.4432 psi/ft * 0.75(sg) =
29.3psi Discharge Pressure = 275 kPa(g) + 15 psi (pipe) + 10
psi (valve) + 3 psi (FE) + 29.3 psi (liq height) = 670 kPa Differential Pressure = 394 = 57 psi HHP = 57 * 35.3 / 1715 50% = 2.3 hp