Download - tremie

Transcript
Page 1: tremie

Underwater Concrete Technologies in Marine Construction Projects

Sam X. YaoBen C. Gerwick, Inc.

Page 2: tremie

Concrete Production from a Floating Batch Plant

Page 3: tremie

Conventional Tremie Placement

Page 4: tremie

Concrete Delivery on Transit Mixers

Page 5: tremie

Placing Concrete from a Delivery Barge

Page 6: tremie

Tremie Placement with Suspended Pipes

Page 7: tremie

Underwater Concrete Construction Technologies

Concrete Mix Proportions

Workability and Rheology

Underwater Concrete Construction

Concrete Production/Transportation

Concrete Placement Planning

Concrete Placement Procedures

Inspection and Quality Control

Mass Tremie Concrete Properties

Thermal Behavior

Laitance, Bleeding, Segregation

Form Pressure

Strength Development

Finish and Protection

Page 8: tremie

Performance Requirements for Underwater Concrete in Structural Applications

• Flowability and Self-Compaction• Workability Retention within Work Window• Cohesion Against Washout, Segregation, and

Laitance Formation• Low Bleeding• Low Heat of Hydration• Controlled Set Time• Compressive Strength• Adequate Bond

Page 9: tremie

Washout Test and Slump Test

Page 10: tremie

Slump vs. Slump Flow

Page 11: tremie

Mock-up Tremie Concrete Test

Page 12: tremie

Mock-up Tremie Concrete Test

Page 13: tremie

Principal Parameters in Mix Design• Particle Packing Characteristics - Sand

Content, Gradation, Size, and Shape

• The water-to-fine ratio - Enough Fine to Make It Flowable and Cohesive (0.85-1.0 by volume)

• Cementittious Material Content – High VolumeFly Ash plus Silica Fume

• Dispersion characteristics - Proper Use of Chemical Admixtures – HRWR and Set-retarder

Page 14: tremie

Tremie Concrete Placement Planning – An Overview

Concrete Production & Delivery: Method & Rate

Allowable Flow DistancePlacement Area Configuration

Allowable Work Window

Concrete Placement Sequence

Tremie Pipe Layout

Tremie Placement Rate& Procedure

Form Pressure

Concrete Flow Pattern

Form DesignSlope, Vent, Laitance Collector Quality of In-Situ Concrete

StrengthUniformity

Bond

Quality control plan:Testing, sounding, inspection

RISK FACTORS•Prodcution & Delivery Logistics•Loss of Flowability•Washout - Laitance•Segregation, Bleeding•Trapping of Water•Excessive Disturbance•Erosion

Concrete Protection

Page 15: tremie

Initiation of Tremie PlacementInitiation of Placement using the Dry Pipe Method with a End Plate as the Seal

Page 16: tremie

Hydrostatic Balance Pointc

Rwc

WFDWhWH ++

=**'

H = (Wch+WwD+FR) / Wc

Page 17: tremie

Flow Patterns of Tremie Copncrete

Layered Flow -Excessive Laitance

Bulging Flow -Minimum Laitance

Page 18: tremie

Tremie Pipe Spacing

3-5 Times Depth of Tremie Pours

Page 19: tremie

Placement Sequence

Simultaneous Placement Method Advanced Slope Method

Page 20: tremie

Removal of Laitance Underwater

Page 21: tremie

Lower Monumental Dam

Page 22: tremie

Hydraulic Flow Pattern in Stilling Basin

Page 23: tremie

Pomona Dam Stilling BasinHydraulic Model Study

Page 24: tremie

Kinzua Stilling Basin

18 monthsafter repair

Page 25: tremie

Erosion Damage

Page 26: tremie

Erosion Damage Repair

Page 27: tremie

Erosion Repair within a Cofferdam

Page 28: tremie

Undrewater Repair of a Dam

Page 29: tremie

Tremie Concrete over Rock Anchor

Page 30: tremie

Coarse Aggregates

Specific Gravity: 2.85

Absorption: 1.1%

Maximum Nominal Size: 3/4-inch

Appearance: Clean and round-shaped with smooth surface texture

Page 31: tremie

Fine Aggregates

Specific Gravity: 2.72

Fineness Modulus: 2.9”

Absorption: 3.0%

Natural River Sand

Page 32: tremie

Gradations of Aggregates

Grading Curve

0

10

20

30

40

50

60

70

80

90

100

1-1/2"1"3/4"1/2"3/8"#4#8#16#30#50#100#200

Sieve Number

Perc

enta

ge P

assi

ngSand

Gravel

Combined Sand and

Gravel

Volume Ratio of Fine Aggregates to Total Aggregates: 47%

Volume Ratio of Coarse Aggregates to Total Solids: 42%

Page 33: tremie

High Volume Fly Ash Concrete for Underwater Repair

• Reducting the heat of hydration in mass concrete

• Increasing concrete flowability without compromising cohesion

• Facilitating concrete flowability retention and extended set time

Page 34: tremie

Mix ProportionsMix No. 1 Mix No. 2 Mix No. 3(52% F.A) (25% F.A) (control)

Cement Type II, lb./cy 390 580 740Fly Ash, lb./cy 350 160 0Micro Silica, lb./cy 40 40 40Coarse Agg, lb./cy 1.625 1,659 1,688Fine Agg, lb./cy 1,367 1,396 1,420Water, lb./cy 301.8 302.5 303.3Rheomac UW, oz/cwt 85.8 85.8 85.8Delvo, oz/cwt 117 117 117Glenium, oz/cy 102.6 156 189

Page 35: tremie

Compressive Strength Development

0.0

2000.0

4000.0

6000.0

8000.0

10000.0

12000.0

0 10 20 30 40 50 60 70 80 90

Age (days)

Ave

rage

Com

pres

sive

Stre

ngth

(psi

)

Mix 3

Mix 1

Mix 2

Page 36: tremie

Workability TestInitial Concrete Slump – 10” to 10-3/4”

Initial Slump Flow – 21” to 26”

Minimum Requirement for Achieving 1:10 Slope on Top Surface of the Concrete Pours – 10” Slump and 20” Slump Flow

Page 37: tremie

Workability Retention TestSlump after 60 minutes – 10” to 10-3/4”

Slump flow after 60 min. – 21” to 26”

Anticipated work window for a truck of concrete - 45 minutes

Page 38: tremie

Set Time Test

Mix No. 1 Set Time > 12 hour

Mix No. 2 and No. 3 Set Time = 7 hour

Anticipated Concrete Placement Duration: 12 hours

Page 39: tremie

Tremie Concrete Placement at the Dam Site

Page 40: tremie

Tremie Concrete Placement Sequence

Page 41: tremie

Tremie Concrete Slump

Page 42: tremie

Tremie Concrete Placement

Page 43: tremie

Concrete Cores

Page 44: tremie

Conventional Dam Construction

Page 45: tremie

Cofferdam Failure

Page 46: tremie

Conventional Lock Construction

Page 47: tremie

Cofferdam Overtopping

Page 48: tremie

Cleanup After the Flood

Page 49: tremie

Braddock Dam

Page 50: tremie

Towing and Positioning

Float-In Dam .ppt

Braddock Dam - Illustration

Page 51: tremie

Grouting

Float-In Dam .ppt

Braddock

Page 52: tremie

Concrete Infill

Float-In Dam .ppt

Braddock Dam – Stage 5

Page 53: tremie

Mile 11.2Monongahela River

Ohio River

Allegheny River

N3 Miles

27.5 River Miles from Fabrication Site to Outfitting Pier

Braddock L/D

Mile 12.8

Duquesne RIDC(Outfitting Pier)

Leetsdale(Fabrication Site)

Mile 14.7

Mile 0.0

PittsburghPittsburgh

Mile 6.2

Emsworth L/D

Mile 13.3

Dashields L/D

Page 54: tremie

In-the-Wet Foundation Preparation

Page 55: tremie

Underwater Foundations

FLOW

PILE DRIVINGBARGE

SCREEDBARGE

Concurrent Operations:• Dredge/Backfill• Place Base Stone• Screed Stone• Install Piers

Page 56: tremie

Launch Basin

Segment 1Segment 2

Fabrication Site

Page 57: tremie

Braddock Dam

Page 58: tremie

Top Slab Fabrication

Page 59: tremie

Segment 1 in Launch Basin

Page 60: tremie

Transport of Dam Segment 1

Page 61: tremie

Towing and Setting a Float-in Dam

Page 62: tremie

Braddock Dam

Page 63: tremie

Braddock Dam

Savings:1 Year

$5 Million

Page 64: tremie

Construction Complete

Page 65: tremie

Florida Keys

Page 66: tremie

Coral Reef in Florida Keys

Page 67: tremie

One of the Ground Sites

Page 68: tremie

Damaged Coral Reef

Page 69: tremie

Repair Design

Page 70: tremie

Precast Repair Module

Page 71: tremie

Repair of Corral Reef in Florida Keys

Page 72: tremie

Setting a Precast Module

Page 73: tremie

Floating Batch Plants

Page 74: tremie

Adding Nitrogen Cooling Agent

Page 75: tremie

Repair of Coral Reef in Florida KeysPumping Concrete Underwater

Page 76: tremie

Placing Underwater Concrete

Page 77: tremie

Placing Concrete in Large Holes of Corral

Page 78: tremie

Finishing Underwater Concrete

Page 79: tremie

Project Location

Page 80: tremie

Coachella Canal Engineering Data

• Construction period 1938-1948 • Length 123 mi • Diversion capacity 2,500 cfs • Typical section, earth lined:• Bottom width 40-60 ft • Side slopes 2:1 • Water depth 10.3 ft • Lining, clay-blanket 12 in • Typical section, concrete lined:• Bottom width 12 ft • Side slopes 1.5 :1 • Water depth 10.8 ft• Lining thickness 3.5 in

Page 81: tremie

Salton Sea/Coachella Canal

The Coachella Canal.

One of numerous geothermal plants on the eastern side of the Salton Sea.

Bombay Beach at Salton Sea.

Coachella Canal Bathers.

Page 82: tremie

Installation of Liner and Concrete Overlay

• Kiewit received a $5.2 Million Contract to Install 1.5 miles test section at Coachella Canal.

• Paving half of a section at a time

• Average Speed: 4-ft per minute

Page 83: tremie

Canal Lining Design

Page 84: tremie

Trial Testing

• Liner: 30 mil thick PVC geomembrane backed with a nonwovengeotextile

• Nonwoven fabric prevent slippage of concrete during placement and strengthen the liner

• Vibrator on slip form to consolidate and maintain concrete flow

Page 85: tremie

Completion of the Lining Construction


Top Related