Multiple port vessels.

Similar documents
SKID DESIGNS WITH MULTIPORT SYSTEMS PRACTICE CASE

Equivalent Length of Fittings

TECHNICAL MANUAL 4'' END PORT PRESSURE VESSEL. Lenntech. Tel Fax.

09 - Choosing /sizing a cylinder and valve

Modeling a Pressure Safety Valve

American Society of Sanitary Engineering PRODUCT (SEAL) LISTING PROGRAM

Restriction Orifice. Single or Multi Stage Orifice to. Reduce Pressure or. Limit the Flow Rate

icon i150 / i350 Installation / Operation Manual

This portion of the piping tutorial covers control valve sizing, control valves, and the use of nodes.

ENGINEERING DRAWING PACKET

REFERENCE GUIDE. Rev. 0 15/09/2016

STANDARD FOR CONTROL VALVE SEAT LEAKAGE

WaterSense Specification for Spray Sprinkler Bodies. Version 1.0

Bermad Pressure Reducing. Model: 42T

Automatic balancing valves ASV

Series 58 SAFETY VALVES 312

MODELING AND SIMULATION OF VALVE COEFFICIENTS AND CAVITATION CHARACTERISTICS IN A BALL VALVE

Advanced Hydraulics Prof. Dr. Suresh A. Kartha Department of Civil Engineering Indian Institute of Technology, Guwahati

Application Notes for Valve Sizing Sizing valves for steam service with the aid of sizing charts

****** * EX * ****** DWN W.W.POWELL CALCULATION OF FLOW LOSSES IN INLET CHK D.PAPA AND DISCHARGE HEADERS ASSOCIATED WITH

SPECIFICATIONS. Approximate Weight: 10 oz. Surface Finish: Ra micro inch or less MATERIALS OF CONSTRUCTION

T208VR Series Tank Blanketing Vacuum Regulator

Bladder Tank Installation & System Design Information

HANDBOOK SAFETY DEVICES. Ed SAFETY DEVICES DS-ED 01/ ENG 1

1020 Industrial Drive, Orlinda, TN fax

indd indd

The Shand & Jurs Model Vapor Guard Tank Blanketing Valve

Inflatable Packer Single & Double. Single & Double Packer Dimension. Wireline Packer. Water Testing Packer (WTP) Packer

Experiment 8: Minor Losses

Interface Devices, Inc. Hydraulic Mini Mule

STV / STVL. Danfoss STV series of balancing valves provide testing and balancing of circuit flow for hydronic heating or cooling systems.

WatMan WATER RO SYSTEMS FOR DESALINATION

Ball Valves Subsea Series

HYDRAULIC CONTROL VALVES

SIZING AND CAPACITIES OF GAS PIPING

4" SIDE PORT PRESSURE VESSEL TECHNICAL MANUAL. Lenntech. Tel Fax.

Homework of Chapter (4.2,4.3)

Materials: Rigid PVC body, PVC end plugs, PVC reinforcement cuff, Stainless steel cuff bands

FM Approved - Automatic Water Control Valve as standard deluge valve. No formal approval available for coating. Foam Concentrate

pvc well casing & drop pipe

1 Exam Prep. Tabs and Highlights

SUMMARY PROBLEMS CAUSED BY BACKFLOW IN PIPE SYSTEMS.

Automatic balancing valves ASV

Concentration and diafiltration of viral antigens with SmartFlow TFF

System design configurations RO system design LPT 2016

GW C300 FLUID CONTROL VALVE PRESSURE REDUCING

DRINKING WATER - LAB EXPERIMENTS LAB EXPERIMENTS. Nanofiltration

International Journal of Technical Research and Applications e-issn: , Volume 4, Issue 3 (May-June, 2016), PP.

Instruction Manual No. 742, 8/98

Pressure reducing valves Index

The Use of a Process Simulator to Model Aeration Control Valve Position and System Pressure

SINGER MODEL 106/206-RPS-L&H

Instruction Manual 742 5/1/2009. Eclipse Ratio Regulators ES Series Version 1

ASSE International Product (Seal) Listing Program. ASSE Performance Requirements for Air Valve and Vent Inflow Preventer

The Estimation Of Compressor Performance Using A Theoretical Analysis Of The Gas Flow Through the Muffler Combined With Valve Motion

G REQUIREMENTS FOR THE INSTALLATION OF GAS BOOSTERS, MICROTURBINES AND ASSOCIATED SYSTEM PROTECTIVE DEVICES

CONTROL VALVE SEAT LEAKAGE

Combination Air Valve Model

Lab # 03: Visualization of Shock Waves by using Schlieren Technique

1 PIPESYS Application

Pressure booster. Air Service Units Series Page. General 5.1. Pressure boosters ø Pressure boosters ø 40 c/w air pressure regulator 5.

CentriFlow Meter Integrated Air Entrainment System

VERTICAL BLADDER TANK

A REVIEW OF THE 2000 REVISIONS TO ANSI 2530/API MPMS 14.3/AGA REPORT NO. 3 - PART2 Paul J. LaNasa CPL & Associates

Mass Flow Controller (MFC) for Gases

Air Operated Hydraulic Pumping Systems to 50,000 psi

North American 7339 High Pressure Gas Regulators

SABERINDO PACIF SABERINDO PACIFIC CIFIC SABERINDO PA. A Tyco International Company

Process Dynamics, Operations, and Control Lecture Notes - 20

FILTER TYPE PRESSURE SNUBBER

BERMAD Irrigation. IR-100 hyflow Basic Valve. Basic Valve.

HORIZONTAL BLADDER TANK

F l o w c o n T R o l v a l v E S

GAS SUPPLY APPLICATION GUIDE

I.CHEM.E. SYMPOSIUM SERIES NO. 97 BUOYANCY-DRIVEN NATURAL VENTILATION OP ENCLOSED SPACES

NORDCALC Introduction... 2 Registration... 2 Flow Calculations tab Torque Calculation & Actuator Mounting Data tab... 21

Industrial Hydraulic Valves. Directional Control, Pressure Control, Sandwich, Subplates & Manifolds, Accessories. Catalog HY /US

S300 Series. Valve Link. Features. Fisher Controls

MZX. Three-Port Seat Valves SPECIFICIATIONS AND GUIDE TO SELECTION

Membrane modules for nitrogen and oxygen generator systems. Technology Overview ENGINEERING YOUR SUCCESS.

Dual Modular Safety Shutoff Valves with Proof of Closure. DMV-D/622 Series DMV-DLE/622 Series

directional control valve series cv691

CSC-2000 SERIES. Reset Volume Controllers MADE IN U.S.A. DESCRIPTION MODELS SPECIFICATIONS ORDERING

North American Orifice Metering System

HANDBOOK SAFETY DEVICES. Ed SAFETY DEVICES DS-ED 01/ ENG 1

Automatic balancing valves

Smart Water Application Technologies (SWAT) TM

ENERGY BLADE 3K4. Energy Blade Installation Instructions

Process Simulator Evaluates Blower and Valve Control Strategies for WWTP Aeration

SOME TECHNICAL AND PRACTICAL RECOMMENDATIONS ABOUT PULSATION DAMPENERS IN CIRCUITS WITH DOSING OR VOLUMETRIC PUMPS

Pilot Assembly Motor Valve Stem Assembly Upstream Pressure Downstream Pressure Motor Valve Diaphragm Pressure. Adjusting Screw.

The Discussion of this exercise covers the following points:

PTF4 Pivotrol Pump (patented) version Dual Mechanism - Pressure Powered Pump

Dual Safety Shutoff Valves with Proof of Closure and NEMA 4x Enclosure. DMV-D/624L Series DMV-DLE/624L Series

Smart Water Application Technologies (SWAT)

Dual Modular Safety Shutoff Valves with Two-stage operation. DMV-ZRD/602 Series DMV-ZRDLE/602 Series

Introduction. Part one: Identify the Hydraulic Trainer Components

Dual Modular Safety Shutoff Valves with Proof of Closure and NEMA Type 4x Enclosure DMV-D 704/624 DMV-D 704/634 DMV-DLE 704/624 DMV-DLE 704/634

Standard Operating and Maintenance Instructions for Pumping System Model PS-90

Horizontal Bladder Tanks

Transcription:

INTRODUCTION Multiple port vessels. Hydraulic design of side-ported RO vessel arrangements (How to get the best out of the side-ported vessels) This document has the final target to show the best multiport hydraulic arrangement in skids. However, the reader has to bear in mind that the following document it is only a recommendation and every case must be studied in depth in order to reach the best configuration, and we cannot avoid the economical point of the issue. In every installation, we should bear in mind both terms Technical VS Economical in order to reach a point of optimization which let us be competitive in our bids. The reader must consider this document as an initial guideline to get the best technical solution, but normally the best technical solution implies a higher cost. Based on the experience of many years in this kind of applications, from our technical department BEL can offer our clients our support and our fully disposition to study the best configuration, considering the economical & technical terms, in order to give you the most attractive solution for your end users. HYDRAULIC DESIGN OF SIDE-PORTED RO VESSEL ARRANGEMENTS Generally any RO vessels arrangement has two primary elements: the vessel row and the pipe manifolds (Fig.1) Fig. 1 - Basic side-ported RO vessels arrangement elements Page 1 of 8

From hydraulics point of view the side-ported vessels and pipe manifolds may be connected in a number of ways (Fig.2) Fig.2 - Hydraulic classification of the side-ported vessels and pipe manifolds connections (in clockwise direction): 1. S-type row; 2. U-type row; 3. S-type manifold; 4. U-type manifold; In the S-type row of vessels the feed inlet and brine outlet for the row are in the opposite vessels. For U-type row the feed inlet and the brine outlet are in the same vessel. The former type is rarely used. The S-type and U-type manifold arrangements consider the feed and brine streams distribution to the vessel rows and collection from the rows. In the S-type manifold connection to the vessel rows the feed and brine streams in the dividing and collecting manifolds are in the same direction. In the U-type manifold connection the afore-mentioned streams are in opposite directions (Fig.2). In designing the vessel arrangement three hydraulic phenomena shall be taken into account: 1. Pressure losses in connections of vessels and manifolds, 2. The feed flow maldistribution between the vessels in the same row, 3. The feed flow maldistribution between the vessel rows connected to the same dividing and collecting manifolds. The pressure losses in the feed and brine streams have direct effect on the process energy consumption and productivity. They can t be neglected even at the preliminary design stage of the RO desalination unit as the loss in production may be surprisingly high up to 3 8%. The flow maldistribution may be measured by the ratio of minimum flow rate of the feed trough the vessel to the feed flow maximum value. For example, in the U-type row the first vessel accepts the maximum fed flow, while the vessel farthest from the manifold receives the minimum flow. In the U-type manifold the picture is quite the opposite: the row nearest to the inlet receives the minimum feed flow rate. This behavior is inherent and has a theory-grounded explanation. In a dividing manifold, the flow diverted to the vessel causes the main stream to decelerate and its static pressure to increase stepwise. Thus, the pressure drop across the vessel row increases progressively with its distance from the inlet. This results in hydraulic non-uniformity with the maximum flow in the row farthest from the manifold inlet. In a combining manifold, the velocity in the main stream increases as the branch streams from the vessel rows progressively merge into it. It causes the static pressure in the manifold to drop downstream, its minimum being at the manifold outlet. Minimum and maximum Page 2 of 8

pressure areas in both manifolds define extreme flows through the vessels. Generally the S-type manifolds perform better than the U-type ones. The feed flow maldistribution results in the recovery maldistribution working in the opposite direction; the higher the flow rate the lower the recovery. Fig. 3 gives fair indication of the predicted maldistribution effect in a row containing 6 vessels. Two cases are compared the 2-inch and 3-inch side ports for feed and brine. Fig.3 - The vessel feed flow rate and membrane recovery maldistribution in the U-type row for seawater of 62 Bar, at the maximum permeate flux of 27 l/(m2*h), recovery of 45%, and fouling of 80%. In hydraulically faulty designs the flow maldistribution may reach 15% (abs), the maximum recovery maldistribution being below 5%. It leads to a less effective usage of the RO membranes and shortens their life. To limit the extents of the in-row maldistribution phenomenon the maximum number of vessels in a row shall be limited to the figures given in Table 1 Table 1 - Maximum number of vessels in a single row* port size 1.5 2 2.5 3 Sea Water 1 3 4 7 Brackish Water 1 2 3 5 NOTE*- These table shows theoretical values, but every single case should be study, mainly because the sizing of ports will depend on the flows of the systems. Page 3 of 8

For brackish water desalination at the recovery above 65% the brine discharge connection size may be reduced as compared to the feed connection size. Fewer vessels in a row for brackish water is explained by much higher permeate fluxes in membranes and feed flow rates to each membrane. To keep at bay the in-manifold maldistribution phenomenon (in practice less than 5%), the manifold design with multiple rows should meet the following conditions: rows 0.6 d * D port manifold 1.5, if row 20, Where d port, D manifold - the port and manifold inner diameters, rows total number of rows (on both sides of the pipe manifold if symmetrically located). From equation (1) it follows, that at the total number of rows equal 30 the manifold diameter should be at least 5 times bigger than the port size. (1) If the above hydraulic design criteria (of table 1 and equation 1) are met, the only issue to be tackled with is the pressure loss calculation in a vessel row. Two approaches may be used for pressure loss calculation in a vessel row. One is based on successive step-by-step calculation of all the vessels starting from the vessel farthest from the pipe manifold. It uses the membrane data and the pressure loss curves given in Fig.4 Fig.4 - Pressure loss in the vessel-vessel or manifold-vessel connection This procedure requires special numeric algorithms and a sure choice for software programs. The other approach considers the vessel row as some black box without internal pressure losses. The hydraulic model suggested for quick pressure loss prediction in the U-type rows is shown in Fig.5. In Page 4 of 8

this model all pressure losses are applied to only 2 points the feed inlet and the brine outlet. The equivalent hydraulic resistances are depicted below as valves. As known, pressure loss in a valve is described by the flow coefficient Kv (or Cv in the British units). Fig.5 - Hydraulic model for pressure loss prediction in the U-type rows The total pressure loss (in meters of water) is: P loss Feed Kv f 2 Brine Kv b 2,(2) Where P loss total pressure loss in the vessels connections, meters of water, Feed, Brine total flow rates of feed and brine in the row, m 3 /hour; Kv f, Kv b flow coefficients for feed manifold-to-vessel connection and the brine vessel-to-manifold one. The Kv f and Kv b values are read from the graph below (Fig.6) built for ANSI schedule 80 ports). For the 60 and 40 schedules the Kv values are bigger by 5 10%. Page 5 of 8

3 2.5 2 1.5 Fig.6 - The Kv value as a function of vessel number in row and the port size. The pressure loss calculation procedure may be summarized as following: 1. Define the feed and brine flow rates and pressures 2. Select the number of vessels in a row 3. Select the port sizes for brine and feed connections from table 1 4. From graph in Fig.6 read the Kv coefficients for feed and brine connections 5. Using equation (1) calculate pressure losses Page 6 of 8

Example Let s define the pressure loss for the vessel arrangement shown in Fig.1 containing 2 x 16 rows, three vessels in a row. The feed flow rate to a row is 25 m 3 /h and the brine flow rate is 13.8 m 3 /h. For 2.5 port and 3 vessels in a row the Kv value is 29.5. Therefore the pressure loss is: 2 25 13.8 P loss 0.72 0.22 0. 94m 29.5 29.5 The required manifold minimum inner diameter can be derived from the equation (1). 0.6 inner _ port _ diameter 0.6 59mm D manifold rows * 32 * 315mm 1.5 1.5 2 As per ANSI B36.10 the nominal pipe size of 14 inch has inner diameter of 319mm. This size is a good choice for the manifold construction. Specifying Multiple-Port vessels. 5.1 - Use normal codes to identify the side port vessel, including the diameter, pressure rating and Membrane capacity. 5.2 - Ports may be oriented at 0 / 90 / 180 or 270. (in accordance with point 5.5) 5.3 - Ports are available in three diameters, 1½, 2, 2 ½,3 and 4 all with grooved ends for connection to Victaulic or equivalent couplings. 5.4 - The diameter required for each port should be notified against the orientation of the port. 5.5 - Up to three ports may be specified at each end of a pressure vessel, except when using 2 ½ or higher diameter ports, at which time the number of ports allowed at each end of a vessel is limited to two and only in the configuration of having 180 0 between them. 5.6 - The possible locations of up to 8 ports positions are indicated on the schema on the following page by marking in the right location the code according to the following key: A for 1.5 diameter port B for 2 diameter port C for 2.5 diameter port D for 3 diameter port E for 4 diameter port Page 7 of 8

ORDER FORM - 8 SIDE PORT PRESSURE VESSELS Please fill and fax it to your contact at BEL P.O. Number: Customer name: 1.- NEW SYSTEM / EXISTING SYSTEM or replacement. Please provide details: 2. F/C PORTS CONFIGURATION: Please indicate side port requirement on each side of the vessel (Mark the letter indicating port diameter in the box at each required port location) A Ø 1.5 B Ø 2 C Ø 2.5 D Ø 3 E- Ø 4 (Ø 2.5, Ø 3 & Ø 4 ports cannot be mounted in 90 o from each other) 2. NUMBER OF VESSELS: (Please use separate forms for each type in case of multi-type orders) 3. WORKING PRESSURE RATE (PSI): 300 / 450 / 600 / 1,000 / 1,200 / 1,500 4. NUMBER OF MEMBRANE ELEMENTS IN EACH VESSEL: (1,,,,,,8) 5. MEMBRANE BRAND AND TYPE: 6. CONFIRM TYPE: BEL8 - S X ) - - M # of ports Ø of port pressure # of membranes (Example: BEL8 - S(4 X 2.5 ) 1,000-7M) 7. PERMEATE PORTS OUTLET: 1.5 NPT male / 1.5 Victaulic grooved / 1 BSP Female 8. ASME code SEC. X, RP stamped vessel: NO / YES (please contact us for pricing) 9. ADAPTERS OPTIONS: two standard adapters / standard & solid (blind) adapter 10. COLOR: STANDARD (white, RAL 9010) / RAL number: (contact for pricing) Customer signature: Date: FOR DETAILS PLEASE VICIT OUR WEBSITE : www.belvessels.com Page 8 of 8 January 2011