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- PN 92594 SOF Operations Support Facility Federal contract opportunity
- Solicitation number
- W912PM
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This solicitation requests proposals for the construction and design of an Operations Support Facility at Fort Bragg, North Carolina. The scope of work includes building a approximately 36,000 square foot facility to sensitive compartmented information standards, with spaces such as a command section, life support area, private and open offices, planning and training areas, auditorium, and supporting facilities including utilities, parking, and site improvements. Sustainability, energy enhancement, and force protection measures are required. The period of performance is 540 calendar days. The resultant contract will be firm-fixed price. The soliciting agency is the Department of the Army Corps of Engineers Engineering District Wilmington.
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SPECIAL OPERATIONS FACILITY PN 92594
FORT BRAGG, NORTH CAROLINA
SECTION TABLE OF CONTENTS
DIVISION 03 - CONCRETE
SECTION 03 45 00
PRECAST ARCHITECTURAL CONCRETE
05/16
PART 1 GENERAL
1.1 REFERENCES
1.2 SUBMITTALS
1.3 MODIFICATION OF REFERENCES
1.4 GENERAL REQUIREMENTS
1.5 DESIGN
1.5.1 Standards and Loads
1.5.2 Connections
1.5.3 Concrete Proportion
1.5.4 Design Calculations
1.5.5 Thermal Calculations
1.6 DELIVERY, STORAGE, AND HANDLING
1.7 STORAGE AND INSPECTION AT MANUFACTURER'S PLANT
1.8 PLANT INSPECTION
1.8.1 Fabricator Quality Certifications
1.9 ERECTOR CERTIFICATION
1.10 CONCRETE SAMPLING AND TESTING
1.10.1 Test for Concrete Materials
1.10.2 Quality Control Testing DuringFabrication
1.11 QUALITY ASSURANCE
1.11.1 Precast Drawings
1.11.2 Concrete Wall Panel Surface Finish Sample
1.11.3 Required Records
1.11.4 Mock-Up
1.11.5 Pre-Installation Meeting
1.12 TOLERANCES
PART 2 PRODUCTS
2.1 CONCRETE
2.1.1 Contractor-Furnished Mix Design
2.1.2 Exposed-to-View Facing Mixture
2.1.3 Backing Mixture
2.2 MATERIALS
2.2.1 Material Sustainability Criteria
2.2.2 Fine Aggregates
2.2.3 Coarse Aggregate
2.2.4 Exposed Aggregate
2.2.5 Cementitious Materials
2.2.5.1 Fly Ash
2.2.5.2 Raw or Calcined Natural Pozzolan
2.2.5.3 Ultra Fine Fly Ash and Ultra Fine Pozzolan
2.2.5.4 Ground Granulated Blast-Furnace Slag
2.2.5.5 Portland Cement
2.2.6 Admixtures
SECTION 03 45 00 Page 1
2.2.7 Water
2.2.8 Reinforcement
2.2.8.1 Reinforcing Bars
2.2.8.2 Welded Wire Reinforcement
2.2.8.3 Supports for Concrete Reinforcement
2.2.9 Prestressing Strands
2.2.10 Tie Wire
2.2.11 Plates, Angles, Anchors and Embedment
2.2.12 Form Release Agent
2.2.13 Grout
2.3 CAST-IN EMBEDDED ITEMS AND CONNECTORS
2.3.1 Inserts
2.3.1.1 Threaded-Type Concrete Inserts
2.3.1.2 Wedge-Type Concrete Inserts
2.3.1.3 Slotted-Type Concrete Inserts
2.3.1.4 Wood Nailer Inserts
2.3.1.5 Flashing Reglets
2.3.2 Connection Devices
2.3.2.1 Clip Angles
2.3.2.2 Ferrous Casting Clamps
2.3.2.3 Threaded Fasteners
2.4 PRECAST ELEMENT FABRICATION
2.4.1 Formwork and Fabrication Tolerances
2.4.2 Reinforcement
2.4.3 Preparation for Placing Concrete
2.4.4 Concrete Mixing and Conveying
2.4.4.1 Batch Plant, Mixer, Mixing, and Measuring of Materials
2.4.4.2 Conveying
2.4.5 Concrete Placing
2.4.6 Identification Markings
2.4.7 Finishing
2.4.7.1 Unformed Concealed Surfaces (Standard Smooth Finish)
2.4.7.2 Smooth, Exposed-to-View Surfaces
2.4.7.3 Exposed Aggregate Finish
2.4.7.4 Other Surfaces
2.4.8 Curing
2.4.9 Repair of Surface Defects
2.4.9.1 Smooth, Concealed Surfaces
2.4.9.2 Exposed-to-View Surfaces
2.4.10 Stripping
2.4.11 Built-In Anchorage Devices
2.4.12 Lifting Devices
2.4.13 Finishing for Formed Surfaces
2.5 JOINT MATERIALS
2.6 BEARING PADS
2.6.1 Elastomeric
2.6.2 Hardboard (Interior Only)
2.6.3 Random-Oriented, Fiber-Reinforced Elastomeric Pads
2.6.4 Cotton-Duck-Fabric-Reinforced Elastomeric Pads
2.6.5 Frictionless Pads
2.6.6 Sub Title
2.7 INSULATED PANEL ACCESSORIES
2.7.1 Polyisocyanurate Board Insulation
PART 3 EXECUTION
3.1 PREPARATION
3.2 EXAMINATION
3.3 INSTALLATION
SECTION 03 45 00 Page 2
3.3.1 Building Framing System
3.3.2 Concrete Strength at Time of Precast Unit Installation
3.3.3 Erection
3.3.4 Erection Tolerances
3.3.5 Joints
3.3.5.1 Joint Sealing
3.3.6 Protection
3.4 DEFECTIVE WORK
3.5 JOINTS AND GASKETS
3.6 INSPECTION AND ACCEPTANCE PROVISIONS
3.6.1 Dimensional Tolerances
3.6.2 Surface Finish Requirements
3.6.3 Strength of Precast Units
3.6.4 Testing Precast Units for Strength
3.7 SAMPLING AND TESTING
3.7.1 Rejection
3.7.2 Field Quality Control
3.7.2.1 Welded Connection Visual Inspection
3.8 CLEANING
-- End of Section Table of Contents --
SECTION 03 45 00 Page 3
SECTION 03 45 00
PRECAST ARCHITECTURAL CONCRETE
05/16
PART 1 GENERAL
1.1 REFERENCES
The publications listed below form a part of this specification to the extent referenced. The publications are referred to within the text by the basic designation only.
AMERICAN ASSOCIATION OF STATE HIGHWAY AND TRANSPORTATION OFFICIALS
(AASHTO)
AASHTO M 251 (2006; R 2011) Standard Specification for Plain and Laminated Elastomeric Bridge Bearings
AMERICAN CONCRETE INSTITUTE INTERNATIONAL (ACI)
ACI 211.1 (1991; R 2009) Standard Practice for Selecting Proportions for Normal, Heavyweight and Mass Concrete
ACI 211.2 (1998; R 2004) Standard Practice for Selecting Proportions for Structural Lightweight Concrete
ACI 214R (2011) Evaluation of Strength Test Results of Concrete
ACI 301 (2016) Specifications for Structural Concrete
ACI 304R (2000; R 2009) Guide for Measuring, Mixing, Transporting, and Placing Concrete
ACI 305R (2010) Guide to Hot Weather Concreting
ACI 306.1 (1990; R 2002) Standard Specification for Cold Weather Concreting
ACI 318 (2014; Errata 1-2 2014; Errata 3-5 2015;
Errata 6 2016; Errata 7-9 2017) Building Code Requirements for Structural Concrete (ACI 318-14) and Commentary (ACI 318R-14)
ACI SP-66 (2004) ACI Detailing Manual
AMERICAN HARDBOARD ASSOCIATION (AHA)
AHA A135.4 (1995; R 2004) Basic Hardboard
SECTION 03 45 00 Page 4
AMERICAN SOCIETY OF CIVIL ENGINEERS (ASCE)
ASCE 7 (2010) Minimum Design Loads for Buildings and Other Structures
AMERICAN SOCIETY OF HEATING, REFRIGERATING AND AIR-CONDITIONING
ENGINEERS (ASHRAE)
ASHRAE 90.1 - IP (2013) Energy Standard for Buildings Except Low-Rise Residential Buildings
AMERICAN WELDING SOCIETY (AWS)
AWS D1.1/D1.1M (2015; Errata 1 2015; Errata 2 2016) Structural Welding Code - Steel
AMERICAN WOOD PROTECTION ASSOCIATION (AWPA)
AWPA U1 (2017) Use Category System: User Specification for Treated Wood
ASME INTERNATIONAL (ASME)
ASME B18.21.1 (2009; R 2016) Washers: Helical Spring-Lock, Tooth Lock, and Plain Washers (Inch Series)
ASTM INTERNATIONAL (ASTM)
ASTM A1064/A1064M (2017) Standard Specification for Carbon-Steel Wire and Welded Wire Reinforcement, Plain and Deformed, for Concrete
ASTM A153/A153M (2016) Standard Specification for Zinc Coating (Hot-Dip) on Iron and Steel Hardware
ASTM A27/A27M (2017) Standard Specification for Steel Castings, Carbon, for General Application
ASTM A283/A283M (2013) Standard Specification for Low and Intermediate Tensile Strength Carbon Steel Plates
ASTM A36/A36M (2014) Standard Specification for Carbon Structural Steel
ASTM A416/A416M (2017a) Standard Specification for Low-Relaxation, Seven-Wire for Prestressed Concrete
ASTM A449 (2014) Standard Specification for Hex Cap Screws, Bolts, and Studs, Steel, Heat Treated, 120/105/90 ksi Minimum Tensile Strength, General Use
ASTM A47/A47M (1999; R 2014) Standard Specification for Ferritic Malleable Iron Castings
SECTION 03 45 00 Page 5
ASTM A563 (2015) Standard Specification for Carbon and Alloy Steel Nuts
ASTM A615/A615M (2016) Standard Specification for Deformed and Plain Carbon-Steel Bars for Concrete Reinforcement
ASTM A653/A653M (2017) Standard Specification for Steel Sheet, Zinc-Coated (Galvanized) or Zinc-Iron Alloy-Coated (Galvannealed) by the Hot-Dip Process
ASTM A666 (2015) Standard Specification for Annealed or Cold-Worked Austenitic Stainless Steel Sheet, Strip, Plate and Flat Bar
ASTM C1107/C1107M (2017) Standard Specification for Packaged Dry, Hydraulic-Cement Grout (Nonshrink)
ASTM C1218/C1218M (2017) Standard Test Method for Water-Soluble Chloride in Mortar and Concrete
ASTM C143/C143M (2015) Standard Test Method for Slump of Hydraulic-Cement Concrete
ASTM C150/C150M (2018) Standard Specification for Portland Cement
ASTM C1602/C1602M (2012) Standard Specification for Mixing Water Used in Production of Hydraulic Cement Concrete
ASTM C172/C172M (2017) Standard Practice for Sampling Freshly Mixed Concrete
ASTM C231/C231M (2017a) Standard Test Method for Air Content of Freshly Mixed Concrete by the Pressure Method
ASTM C260/C260M (2010a; R 2016) Standard Specification for Air-Entraining Admixtures for Concrete
ASTM C31/C31M (2018b) Standard Practice for Making and Curing Concrete Test Specimens in the Field
ASTM C311/C311M (2017) Standard Test Methods for Sampling and Testing Fly Ash or Natural Pozzolans for Use in Portland-Cement Concrete
ASTM C33/C33M (2018) Standard Specification for Concrete Aggregates
ASTM C39/C39M (2018) Standard Test Method for Compressive Strength of Cylindrical Concrete Specimens
ASTM C42/C42M (2018) Standard Test Method for Obtaining
SECTION 03 45 00 Page 6 and Testing Drilled Cores and Sawed Beams of Concrete
ASTM C494/C494M (2017) Standard Specification for Chemical Admixtures for Concrete
ASTM C591 (2017) Standard Specification for Unfaced Preformed Rigid Cellular Polyisocyanurate Thermal Insulation
ASTM C618 (2017a) Standard Specification for Coal Fly Ash and Raw or Calcined Natural Pozzolan for Use in Concrete
ASTM C78/C78M (2018) Standard Test Method for Flexural Strength of Concrete (Using Simple Beam with Third-Point Loading)
ASTM C94/C94M (2017a) Standard Specification for Ready-Mixed Concrete
ASTM C989/C989M (2018) Standard Specification for Slag Cement for Use in Concrete and Mortars
ASTM D1056 (2014) Standard Specification for Flexible Cellular Materials - Sponge or Expanded Rubber
ASTM D1149 (2007; R 2012) Standard Test Method for Rubber Deterioration - Surface Ozone Cracking in a Chamber
ASTM D2240 (2015; E 2017) Standard Test Method for Rubber Property - Durometer Hardness
ASTM D5759 (2012) Characterization of Coal Fly Ash and Clean Coal Combustion Fly Ash for Potential Uses
ASTM D635 (2014) Standard Test Method for Rate of Burning and/or Extent and Time of Burning of Self-Supporting Plastics in a Horizontal Position
ASTM D746 (2014) Standard Test Method for Brittleness Temperature of Plastics and Elastomers by Impact
PRECAST/PRESTRESSED CONCRETE INSTITUTE (PCI)
PCI MNL-117 (2013) Manual for Quality Control for Plants and Production of Architectural Precast Concrete Products, 3rd Edition
PCI MNL-122 (2007) Architectural Precast Concrete, 3rd Edition
SECTION 03 45 00 Page 7
1.2 SUBMITTALS
Government approval is required for submittals with a "G" designation;
submittals not having a "G" designation are for Contractor Quality Control approval. When used, a designation following the "G" designation identifies the office that will review the submittal for the Government.
Submittals with an "S" are for inclusion in the Sustainability Notebook, in conformance to Section 01 33 29 SUSTAINABILITY REPORTING. Submit the following in accordance with Section 01 33 00.00 37 SUBMITTAL PROCEDURES:
SD-01 Preconstruction Submittals
Pre-Installation Meeting
SD-02 Shop Drawings
Precast Drawings; G
SD-03 Product Data
Cast-In Embedded Items And Connectors; G
Connection Devices; G
Admixtures
Gasket
Bearing Pads
Recycled Content Products; S
SD-04 Samples
Concrete Wall Panel Surface Finish; G
Mock-up; G
Full Size Sample Wall Panel; G
SD-05 Design Data
Design Calculations; G
Contractor-Furnished Mix Design; G
Concrete Mix Design for Repair of Surface Defects; G
Thermal Calculations; G
SD-06 Test Reports
Strength Tests; G
Slump
Air Content
Test for Concrete Materials
SECTION 03 45 00 Page 8
Water
Testing Precast Units for Strength
SD-07 Certificates
Manufacturer's Qualifications
Fabricator Quality Certifications
Erector Certification
SD-08 Manufacturer's Instructions
Installation; G
Cleaning; G
SD-11 Closeout Submittals
Concrete Batch Ticket Information; G
Recycled Content for Fly Ash and Pozzolan; S
Recycled Content for Ground Iron Blast-Furnace Slag; S
Recycled Content for Silica Fume; S
1.3 MODIFICATION OF REFERENCES
In the referenced ACI and PCI publications, consider the advisory provisions to be mandatory. Interpret reference to the "Building Official," the "Structural Engineer," and the "Architect/Engineer" to mean the Contracting Officer.
1.4 GENERAL REQUIREMENTS
Precast concrete units must be designed and fabricated by an experienced and certified precast concrete manufacturer. The manufacturer needs to have been regularly and continuously engaged in the manufacture of precast concrete work similar to that indicated on the drawings for at least 3 years. The Contractor must submit a statement detailing the Manufacturer's Qualifications. Coordinate precast work with the work of other trades.
1.5 DESIGN
1.5.1 Standards and Loads
Precast unit design must conform to ASCE 7, ACI 318 and PCI MNL-122 .
Indicate design loads for precast concrete on the drawings. A differential temperature of 80 degrees F, between interior and exterior faces of the units, must be considered in the design. Stresses due to restrained volume change caused by shrinkage and temperature differential, handling, transportation and erection must be accounted for in the design.
SECTION 03 45 00 Page 9
1.5.2 Connections
Connection of units to other members, or to other units must be of the type and configuration indicated. The design and sizing of connections for all design loads will be completed by the Contractor.
1.5.3 Concrete Proportion
Base the selection of proportions for concrete on the methodology presented in ACI 211.1 for normal weight concrete and ACI 211.2 for lightweight concrete. Develop the concrete proportion using the same type and brand of cement, the same type and gradation of aggregates, and the same type and brand of admixture that will be used in the manufacture of precast concrete units for the project. Do not use calcium chloride in precast concrete and admixtures containing chloride ions, nitrates, or other substances that are corrosive will not be used in prestressed concrete.
1.5.4 Design Calculations
Calculations for design of members, connections and embedments not shown must be made by a registered professional engineer experienced in the design of precast architectural concrete. Calculation will include the analysis of member for lifting stresses and the sizing of the lifting inserts. Submit calculations for review and approval prior to fabrication, signed and sealed by the registered design professional who prepared the design.
1.5.5 Thermal Calculations
Submit thermal calculations prepared and sealed by a registered professional engineer for review complying with ASHRAE 90.1 - IP , for the steady state thermal resistance for the precast concrete wall panels.
Thermal calculations must demonstrate the thermal conductivity of all components, the spacing of all connectors, the percent area of the wall that is solid concrete, and the thermal resistance of all components.
1.6 DELIVERY, STORAGE, AND HANDLING
Deliver packaged materials, except for wall panels, to the project site in the original, unbroken packages or containers, each bearing a label clearly identifying manufacturer's name, brand name, weight or volume, and other pertinent information. Store packaged materials, and materials in containers, in a weathertight and dry place until ready for use.
Store products in manufacturer's unopened packaging in dry storage area, with ambient temperature between 30 degrees F and 120 degrees F, until installation.
1.7 STORAGE AND INSPECTION AT MANUFACTURER'S PLANT
Protect precast units temporarily stored at the manufacturer's plant from damage in accordance with PCI MNL-117 and PCI MNL-122 . Immediately prior to shipment to the jobsite, all precast concrete units must be inspected for quality to insure all precast units conform to the requirements specified. Inspection for quality will include, but will not be limited to, the following elements: color, texture, dimensional tolerances, chipping, cracking, staining, warping and honeycombing. Replace or repair all defective precast concrete units as approved.
SECTION 03 45 00 Page 10
1.8 PLANT INSPECTION
Precast units must be inspected by the QC representative prior to being transported to the job site. The Contractor is to give notice 14 days prior to the time the units will be available for plant inspection.
Neither the exercise nor waiver of inspection at the plant will affect the Government's right to enforce contractual provisions after units are transported or erected.
1.8.1 Fabricator Quality Certifications
Plants must be certified by the PCI Plant Certification Program for Group A, Category A1, or Architectural Precast Association (APA) certification or National Precast Concrete Association (NPCA). When plants are not currently enrolled in one of the three certification programs listed above then they must provide a product quality control system in accordance with PCI MNL-117 and perform concrete and aggregate quality control testing using an approved, independent commercial testing laboratory.
1.9 ERECTOR CERTIFICATION
Erector with erecting organization and all erecting crews certified and designated by PCI's Certificate of Compliance to erect Category A (Architectural Systems) for non-load-bearing members.
1.10 CONCRETE SAMPLING AND TESTING
1.10.1 Test for Concrete Materials
Sample and test concrete materials proposed for use in the work in accordance with PCI MNL-117 .
Submit reports for each material sampled and tested prior to the start of work. Reports must contain the project name and number, date, name of Contractor, name of precast unit manufacturer, name of concrete testing service, source of concrete aggregates, generic name of aggregate, and values specified.
1.10.2 Quality Control Testing DuringFabrication
Sample and test concrete for quality control during fabrication as follows:
REQUIREMENT TEST METHOD NUMBER OF TESTS
Sampling fresh concrete ASTM C172/C172M except modified for slump per
ASTM C94/C94M
As required for each test
SECTION 03 45 00 Page 11
REQUIREMENT TEST METHOD NUMBER OF TESTS
Slump test ASTM C143/C143M One for each concrete load at point of discharge and one for each set of compressive strength tests
Air Content by pressure method
ASTM C231/C231M One for each set of compressive strength tests
Compressive test specimens ASTM C31/C31M One set of six specimens for each Compressive Strength test, one set per day or for every 20 cubic yards of concrete placed, whichever is greater.
Compression test specimens may be either standard 6 by 12 inch cylinders or 4-inch cubes. Cubes may be molded individually or cut from slabs.
Preparation and testing of cube specimens must be as nearly consistent with the test methods specified as possible, with the exception that the concrete will be placed in a single layer.
Curing of compression test specimens must be the same as the curing method used for the precast concrete wall panels until panels are stripped of forms and then standard moist cure will continue.
REQUIREMENT TEST METHOD NUMBER OF TESTS
Concrete temperature
Each time a set of compression test specimens is made
SECTION 03 45 00 Page 12
Compressive strength tests
ASTM C39/C39M One set of facing strength tests mix and one set of backing mix for every ten panels or fraction thereof cast in any one day; two specimens in each set tested at 7 calendar days; three specimens in each set tested at 28 calendar days, and one specimen in each set retained in reserve for testing if required
Evaluate compression test results at 28 days in accordance with ACI 214R using a coefficient of variation of 20 percent. Evaluate the strength of concrete by averaging the test results (two specimens) of standard cylinders tested at 28 days. Not more than 20 percent of the individual tests can have an average compressive strength less than the specified ultimate compressive strength. Submit test reports on the same day that tests are made.
Reports for Compressive Strength tests need to contain the project name and number, date of concrete placement, name of Contractor, name of precast concrete wall panel manufacturer, name of concrete testing service, panel identification letter and number, use of concrete mixture (facing or backing), design compressive strength at 28 calendar days, concrete-mix proportions and materials, and compressive breaking strength and type of break.
If 4-inch cubes are used for compressive strength specimens, average strength of the cubes at any test age must be multiplied by the factor of
0.8 to arrive at an estimate of the corresponding 6 by 12 inch cylinder strength. Report both of these values .
1.11 QUALITY ASSURANCE
1.11.1 Precast Drawings
Submit precast drawings with the following information:
a. Precast dimensions, cross-section, and edge details; location, size, and type of reinforcement, including reinforcement necessary for safe handling and erection of precast units and other embedded items. Comply with ACI SP-66 .
b. Layout, dimensions, and identification of each precast unit, corresponding to installation sequence.
c. Setting drawings, instructions, and directions for installation of concrete inserts.
d. Location and details of anchorage devices and lifting devices embedded in panels, and connection details to building framing system.
1.11.2 Concrete Wall Panel Surface Finish Sample
Submit a concrete wall panel sample 12 inches by 12 inches by approximately 1 1/2 inches in thickness, to illustrate quality, color, and texture of
SECTION 03 45 00 Page 13 both exposed-to-view surface finish and finish of panel surfaces that will be concealed by other construction.
After approval of the surface, Contractor must provide one full size sample Wall Panel. Approved sample may be used in construction when properly identified.
1.11.3 Required Records
ASTM C94/C94M. Submit mandatory batch ticket information for each load of ready-mixed concrete.
1.11.4 Mock-Up
Provide mock-up to establish that proposed materials and construction techniques provide acceptable visual effect. Materials used for mock-up should be those proposed for actual construction. Include all anchors, connections, flashing and joint fillers. Apply specified products to determine acceptability of appearance and optimum coverage rate required for application
Provide mock-up sections of building and structures which typify the most difficult areas to build.
1. Finish areas designated by Contracting Officer.
2. Apply water repellent in accordance with manufacturer's instructions.
3. After materials have cured, water test surface to determine that sufficient water repellent has been applied.
4. Do not proceed with remaining work until workmanship, color, and detail are approved by Contracting Officer.
5. Modify mock-up area as required to produce acceptable work.
Job Mock Up Panel: Minimum 4 feet by 4 feet
1. Incorporate edge, reveal as shown on drawings.
2. Show clean, pressure washed concrete surface.
3. Utilize full range of color of joints.
4. Maintain Mock Up for comparison with finished work.
After approval by Contracting Officer, transport mock-up to job-site and erect where directed by Contracting Officer.
1.11.5 Pre-Installation Meeting
Hold a meeting at the job site with representative of the manufacturer and all other trades that may be effected by work of this section. Notify the Contracting Officer at least 3 days in advance of the time of the meeting.
1.12 TOLERANCES
Dimensions of the finished panel, at the time of erection in the structure, must conform to the tolerances for precast, non-prestressed elements in PCI MNL-117 , unless otherwise specified by the Architect.
PART 2 PRODUCTS
In accordance with Section 01 33 29 SUSTAINABILITY REPORTING submit documentation indicating: distance between manufacturing facility and the
SECTION 03 45 00 Page 14 project site, distance of raw material origin from the project site, percentage of post-industrial and post-consumer recycled content per unit of product and relative dollar value of recycled content products to total dollar value of products included in project. Provide Submittals as specified in the subject Section.
2.1 CONCRETE
2.1.1 Contractor-Furnished Mix Design
ACI 211.1 and ACI 301 . The Contractor must submit the mix design report giving the maximum nominal coarse aggregate size, the proportions of all ingredients and the type and amount of any admixtures that will be used in the manufacture of each strength and type of concrete, a minimum of sixty days prior to commencing operations. Provide mix proportion data using at least three different water-cementitious material ratios for each type of mixture, which produce a range of strength encompassing those required for each type of concrete required. Plot a curve for each concrete mixture, showing the relationships between water-cementitious material ratios and compressive strengths. Maximum permissible water-cementitious material ratio must be that value not exceeding the maximum water-cementitious material ratio specified, indicated by the curve to produce a design minimum laboratory compressive strength at 28 calendar days not less than that specified. The mix design report is to contain the project name and number, date, name of Contractor, name of precast concrete wall panel manufacturer, name of concrete testing service, use of concrete mixture (facing or backing), source of concrete aggregates for each mixture.
Submit certified copies of laboratory test reports, including mill tests and all other test data, for portland cement, blended cement, pozzolan, ground granulated blast furnace slag, silica fume, and aggregates. The statement must be accompanied by test results from an approved testing laboratory, certifying that the proportions selected will produce concrete of the properties required. Make no substitutions without additional tests to verify that the concrete properties are satisfactory. Concrete must have a 28-day compressive strength of 5000 psi. Air content of plastic concrete must be between 4 and 6 percent air by volume.
If, the compressive strength falls below that specified, adjust the mix proportions and water content and make necessary changes in the temperature, moisture, and curing procedures to secure the specified strength. Notify the Contracting Officer of all changes.
2.1.2 Exposed-to-View Facing Mixture
Provide aggregates for exposed-to-view facing mixture; white, gray, or buff portland cement or a blend of two or more portland cements;
air-entraining admixture; and water. Provide exact proportions of facing mixture to produce concrete having the specified properties and capable of obtaining the approved surface color and finish.
2.1.3 Backing Mixture
Provide the approved mix design.
2.2 MATERIALS
2.2.1 Material Sustainability Criteria
For products in this section, where applicable and to extent allowed by
SECTION 03 45 00 Page 15 performance criteria, provide and document the following in accordance with Section 01 33 29 SUSTAINABILITY REQUIREMENTS:
a. Recycled content for fly ash and pozzolan
b. Recycled content for Ground Iron Blast-Furnace Slag
c. Recycled content for Silica Fume
2.2.2 Fine Aggregates
ASTM C33/C33M. The optional method of reducing the No. 50 and No. 100 sieve aggregates does not apply. The restriction to use only fine aggregates that do not contain any materials that are deleteriously reactive with alkalis in cement does apply.
2.2.3 Coarse Aggregate
ASTM C33/C33M, Size No. 57, Class 5S. The restriction to use only coarse aggregates that do not contain any materials that are deleteriously reactive with alkalis in cement does apply. Aggregate must not contain slag or crushed concrete.
2.2.4 Exposed Aggregate
In addition to the above, facing mixture aggregate, and aggregate for homogeneous panels with exposed aggregate finish, will be crushed stone of size and color to produce exposed surfaces to match the color and texture of the sample on file with the Contracting Officer.
Crush coarse aggregate by a means that will produce material of cubical shape with a minimum of elongated, thin, or partially fractured particles. Material or crushing methods that produce particles classified by petrographic examination as being weak, highly fractured or somewhat friable, or both, in excess of 16 percent of the particles in any whole sample will be rejected. Material for coarse aggregate must be free of substances that change color on oxidation. Obtain material used for the work from the same basic source and stratum. Quarry material to produce a uniformly colored aggregate that does not change color upon weathering.
During quarrying operations, the uniformity of rock face color must be verified by periodically comparing the rock face color to the approved coarse aggregate sample.
Fine aggregate will be white quartz natural sand or stone screenings, or manufactured sand produced from white quartz. Aggregate must be free of substances that change color on oxidation. Color must conform to the approved sample.
2.2.5 Cementitious Materials
For exposed concrete, use one manufacturer and one source for each type of cement, ground slag, fly ash, and pozzolan.
2.2.5.1 Fly Ash
ASTM C618, Class F, except that the maximum allowable loss on ignition must not exceed 3 percent. Class F fly ash for use in mitigating Alkali-Silica Reactivity must have a Calcium Oxide (CaO) content of less than 8 percent and a total equivalent alkali content less than 1.5 percent.
Add with cement. Fly ash content must be a minimum of 35 percent by weight of cementitious material, provided the fly ash does not reduce the
SECTION 03 45 00 Page 16 amount of cement in the concrete mix below the minimum requirements of local building codes. Where the use of fly ash cannot meet the minimum level, provide the maximum amount of fly ash permittable that meets the code requirements for cement content. Report the chemical analysis of the fly ash in accordance with ASTM C311/C311M. Evaluate and classify fly ash in accordance with ASTM D5759.
2.2.5.2 Raw or Calcined Natural Pozzolan
Natural pozzolan must be raw or calcined and conform to ASTM C618, Class N, including the optional requirements for uniformity and effectiveness in controlling Alkali-Silica reaction and must have an ignition loss not exceeding 3 percent. Class N pozzolan for use in mitigating Alkali-Silica Reactivity must have a Calcium Oxide (CaO) content of less than 13 percent and total equivalent alkali content less than 3 percent.
2.2.5.3 Ultra Fine Fly Ash and Ultra Fine Pozzolan
Ultra Fine Fly Ash (UFFA) and Ultra Fine Pozzolan (UFP) must conform to ASTM C618, Class F or N, and the following additional requirements:
a. The strength activity index at 28 days of age must be at least 95 percent of the control specimens.
b. The average particle size must not exceed 6 microns.
c. The sum of SiO2 + Al2O3 + Fe2O3 must be greater than 77 percent.
2.2.5.4 Ground Granulated Blast-Furnace Slag
ASTM C989/C989M, Grade 100. Slag content must be a minimum of 25 percent by weight of cementitious material.
2.2.5.5 Portland Cement
Provide cement that conforms to ASTM C150/C150M, Type I, or III, with tri-calcium aluminates (C3A) content less than 10 percent and a maximum cement-alkali content of 0.80 percent Na2Oe (sodium oxide) equivalent.
Use one brand and type of cement for formed concrete having exposed-to-view finished surfaces.
For portland cement manufactured in a kiln fueled by hazardous waste, maintain a record of source for each batch. Supplier must certify that no hazardous waste is used in the fuel mix or raw materials. Supplier must certify that the hazardous waste is neutralized by the manufacturing process and that no additional pollutants are discharged.
2.2.6 Admixtures
ASTM C260/C260M for air-entraining admixtures. Other admixtures:
ASTM C494/C494M. Certify that admixtures are free of chlorides.
2.2.7 Water
Water must comply with the requirements of ASTM C1602/C1602M . Minimize the amount of water in the mix. Improve workability by adjusting the grading rather than by adding water. Water must be potable; free from injurious amounts of oils, acids, alkalis, salts, organic materials, or other substances deleterious to concrete. Submit test report showing water
SECTION 03 45 00 Page 17 complies with ASTM C1602/C1602M .
2.2.8 Reinforcement
All exposed steel must be phosphate treated, primed, and coated to prevent rust.
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2.2.8.1 Reinforcing Bars
ACI 301 unless otherwise specified. ASTM A615/A615M , Grade 60, galvanized .
2.2.8.2 Welded Wire Reinforcement
ASTM A1064/A1064M , galvanized .
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2.2.8.3 Supports for Concrete Reinforcement
Include bolsters, chairs, spacers, and other devices necessary for proper spacing, supporting, and fastening in place in accordance with PCI MNL-117 .
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2.2.9 Prestressing Strands
Prestressing strands need to conform to ASTM A416/A416M Grade 270 , galvanized .
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2.2.10 Tie Wire
Tie wire must be soft monel or 18-8 stainless steel.
2.2.11 Plates, Angles, Anchors and Embedment
ASTM A36/A36M, ferrous metal plate connectors for attachment to the structural framing using manufacturer standard construction procedures.
Headed studs will use 60,000 psi steel with construction conforming to AWS D1.1/D1.1M , Type B. Deformed bar anchors must conform to ASTM A1064/A1064M . Coat steel items, other than stainless, with a rust-inhibiting paint or provide hot-dip galvanized after fabrication in accordance with ASTM A153/A153M .
Furnish and install anchors, inserts, lifting devices, and other accessories which are to be embedded in the precast units in accordance with the approved detail drawings. Embedded items must be accurately positioned in their designed location, and have sufficient anchorage and embedment to satisfy design requirements.
2.2.12 Form Release Agent
Release agent must be manufacturer's standard non-staining type.
2.2.13 Grout
Packaged, nonmetallic, noncorrosive, nonstaining grout containing selected silica sands, portland cement, shrinkage-compensating agents, plasticizing and water-reducing agents, complying with ASTM C1107/C1107M , Grade A for
SECTION 03 45 00 Page 18 drypack and Grades B and C for flowable grout and of consistency suitable for application within a 30-minute working time. Water-soluble chloride ion content less than 0.06 percent by weight of cement when tested according to ASTM C1218/C1218M .
2.3 CAST-IN EMBEDDED ITEMS AND CONNECTORS
2.3.1 Inserts
2.3.1.1 Threaded-Type Concrete Inserts
ASTM A47/A47M, Grade 32510 or 35018, or may be medium strength cast steel conforming to ASTM A27/A27M, Grade U-60-30. Provide galvanized ferrous casting having enlarged base with two nailing lugs minimum length less than the thickness of panel less 3/4 inch, and internally threaded to receive 3/4 inch diameter machine bolt. Ferrous castings must be ferritic malleable iron. Provide inserts hot-dip galvanized after fabrication in accordance with ASTM A153/A153M .
2.3.1.2 Wedge-Type Concrete Inserts
Provide galvanized, box-type ferrous castings with integral anchor loop at back of box to accept 3/4 inch diameter bolts having special wedge-shaped head. Provide ferrous castings ASTM A47/A47M, Grade 32510 or 35018, ferritic malleable iron or ASTM A27/A27M, Grade U-60-30, medium-strength cast steel. Provide inserts hot-dip galvanized after fabrication in accordance with ASTM A153/A153M .
2.3.1.3 Slotted-Type Concrete Inserts
Provide pressed steel plate, welded construction, box type with slot to receive 3/4 inch diameter square head bolt, and provide lateral adjustment of bolt. Length of insert body, less anchorage lugs, must be 4 1/2 inches minimum. Provide insert with knockout cover. Steel plate must be 1/8 inch minimum thickness, ASTM A283/A283M , Grade C. Provide inserts hot-dip galvanized after fabrication in accordance with ASTM A153/A153M .
2.3.1.4 Wood Nailer Inserts
Inserts will be kiln-dried "standard" grade Douglas fir or "No. 2" grade southern pine, surfaced 4 sides, and sized as indicated. Treat with waterborne pressure-preservative in accordance with AWPA U1, use category UC3A. All wood needs to be air or kiln dried after treatment. Verify specific treatments by the report of an approved independent inspection agency. The AWPA U1 Quality Mark "UC3A" on each piece will be accepted, in lieu of inspection reports, as evidence of compliance with applicable AWPA treatment standards.
2.3.1.5 Flashing Reglets
Reglets must be sheet metal open-type with continuous groove not less than 1-1/8 inches deep by 3/16-inch wide at opening and sloped upward, designed to anchor snap-lock counter flashing.
Metal must be minimum 0.011-inch thick conforming to ASTM A666, Type 302 or 304, No. 1 finish, soft temper.
Metal is to be 26-gage galvanized steel sheet conforming to ASTM A653/A653M , G90.
SECTION 03 45 00 Page 19
2.3.2 Connection Devices
2.3.2.1 Clip Angles
ASTM A36/A36M steel, galvanized after fabrication in accordance with
ASTM A153/A153M .
2.3.2.2 Ferrous Casting Clamps
ASTM A47/A47M, Grade 32510 or Grade 35018 malleable iron or cast steel, or ASTM A27/A27M, Grade 60-30, cast steel casting, hot-dip galvanized in accordance with ASTM A153/A153M .
2.3.2.3 Threaded Fasteners
Provide galvanized machine bolts, washers and, when required, nuts.
a. Bolts: ASTM A449, 3/4 inch diameter machine bolts with hexagon head.
b. Washers: ASME B18.21.1 , medium or heavy lock-spring washers.
c. Nuts: ASTM A563, Grade C, heavy, hexagon-type nuts.
d. Square Nuts: ASTM A563, Grade A, plain, square-type nuts where required for slotted-type concrete inserts.
2.4 PRECAST ELEMENT FABRICATION
2.4.1 Formwork and Fabrication Tolerances
Provide forms and form-facing materials of wood, metal, plastic, or other approved material to produce concrete having the specified finish.
Construct forms mortar-tight and of sufficient strength to withstand all pressures due to concrete placing operations and temperature changes.
Brace and stiffen against deformation. Provide form liners where required to produce indicated finish. Provide dimensional tolerances per
PCI MNL-117 .
2.4.2 Reinforcement
ACI 301 . Place reinforcing bars and welded wire reinforcement. Secure in position with tie wires, bar supports, and spacers.
2.4.3 Preparation for Placing Concrete
Remove hardened concrete, excess form parting compound, standing water, ice, snow, or other deleterious substances from form interiors and reinforcement before concrete placement. Secure reinforcement and embedded items.
2.4.4 Concrete Mixing and Conveying
2.4.4.1 Batch Plant, Mixer, Mixing, and Measuring of Materials
ASTM C94/C94M.
SECTION 03 45 00 Page 20
2.4.4.2 Conveying
Prevent segregation and loss of materials.
2.4.5 Concrete Placing
ACI 304R . Deposit concrete in the forms continuously or in layers of such thickness that no concrete will be placed on concrete which has hardened sufficiently to cause formation of seams or planes of weakness within the precast concrete units. Place concrete at a constant temperature of between 50 and 90 degrees F throughout fabrication of each unit. Make temperature of forms or molds the same as or close to the concrete temperature. For hot or cold weather, use methods recommended by ACI 305R and ACI 306.1 . Vibrate and consolidate concrete to prevent segregation and to produce a high-density concrete free of honeycomb and rock pockets. When specified, the exposed-to-view facing mixture is required to be a minimum thickness of 3/4 inches. Place backing mixture before facing mixture attains initial set.
2.4.6 Identification Markings
Permanently mark each precast unit to indicate pick-up points, location, orientation in the building, and date of casting. Identification markings need to correlate with approved detail drawings. Do not locate in exposed-to-view finished surfaces.
2.4.7 Finishing
2.4.7.1 Unformed Concealed Surfaces (Standard Smooth Finish)
Provide a trowel finish. Level surface with a straightedge, and strike off. After surface water has disappeared, float and trowel surface.
Provide smooth finished surface, free of trowel marks, and uniform in texture and appearance.
2.4.7.2 Smooth, Exposed-to-View Surfaces
Provide a standard smooth finish to all exposed-to-view surfaces of panels, unless otherwise indicated. Provide a concrete surface having the texture imparted by a steel form or other approved smooth surfaces form-facing material.
2.4.7.3 Exposed Aggregate Finish
Provide for exposed-to-view surfaces of panels, including chamfers, edges, recesses, and projections, unless otherwise indicated. Provide standard smooth finish with outer skin of mortar removed, before concrete has hardened, and exposing coarse aggregate. A chemical retarder may be used on exposed face to facilitate removal of mortar. Match finish of the approved surface finish sample. Expose aggregates as soon after concrete placing as practicable by washing the concrete surface with a diluted solution of muriatic acid to thoroughly clean exposed aggregate. Rinse concrete surface with fresh, clean water to remove traces of acid.
2.4.7.4 Other Surfaces
Surfaces of precast units not exposed to view or not otherwise indicated to be finished are to be finished in accordance with ACI 301 for a Surface Finish of 1.0.
SECTION 03 45 00 Page 21
2.4.8 Curing
Provide moist or steam curing or curing compound. Do not remove precast units from forms; prevent moisture loss and maintain 50 degrees F minimum for at least 24 hours after finishing. Maintain precast units in a surface damp condition at 50 degrees F minimum until concrete has attained 75 percent minimum of the design compressive strength. Do not use steam curing with wood forms or in connection with chemically retarded exposed aggregate surfaces.
2.4.9 Repair of Surface Defects
Cut out defective areas to solid concrete, with edges of cuts perpendicular to the surface of the concrete, and clean thoroughly.
Dampen area to be patched and brush-coat with nonshrink grout or bonding agent. Patch the surface in accordance with procedures previously submitted by the Contractor and approved by the Contracting Officer.
Where exposed to view, the patches, when dry, needs to be indistinguishable from the surrounding surfaces.
2.4.9.1 Smooth, Concealed Surfaces
Acceptable defective area will be limited to holes left by rods and other temporary inserts, and to honeycomb or rock pockets of 1/4 inch diameter maximum. Remove fins and other projections on the surfaces.
2.4.9.2 Exposed-to-View Surfaces
The combined area of acceptable defective areas must not exceed 0.2 percent of the exposed-to-view surface area and will be limited to holes of 1/4 inch diameter maximum.
2.4.10 Stripping
Do not remove precast concrete units from forms until units develop sufficient strength to safely strip the formwork and to remove the precast concrete units from the forms to prevent damage to the units from overstress or chipping.
2.4.11 Built-In Anchorage Devices
Accurately position and securely anchor all anchorage devices. Openings in anchorage devices must be filled temporarily to prevent entry of concrete.
2.4.12 Lifting Devices
Lifting devices must be provided, and designed for a safety factor of 4, which includes 100 percent impact. Do not use brittle material.
2.4.13 Finishing for Formed Surfaces
Upon removal of forms, repair and patch defective areas. Where the finished surface will be exposed to view, the combined area of defective areas must not exceed 0.2 percent of the surface and will be limited to honeycomb or rock pockets not deep enough to expose the reinforcement.
Where the finished surface will be concealed by other construction, defective areas are limited to holes left by the rods and other temporary
SECTION 03 45 00 Page 22 inserts and honeycomb or rock pockets not deep enough to expose the reinforcement. Defective areas must be cut out to solid concrete, cleaned, and patched with grout. Where concrete surface will be exposed to view, the patches, when dry, must be indistinguishable from the surrounding surfaces.
Create an acid-etched finish using acid and hot-water solution, equipment, application techniques, and cleaning procedures to expose aggregate and surrounding matrix surfaces. Protect hardware, connections, and insulation from acid attach.
2.5 JOINT MATERIALS
Gasket must be elastomeric material, premolded to cross section indicated.
Material must be a vulcanized closed-cell expanded chloroprene conforming to ASTM D1056, Grade No. 2A2, with the following additional properties:
Brittleness temperature will be minus 40 degrees F when tested in accordance with ASTM D746.
Flammability resistance needs to be self-extinguishing when tested in accordance with ASTM D635.
Resistance to ozone must be "no cracks" after exposure of a sample, at 20 percent elongation, to an ozone concentration of 100 parts per million of air by volume in air for 100 hours at 104 degrees F when tested in accordance with ASTM D1149.
2.6 BEARING PADS
Submit product data for all bearing pads being used.
2.6.1 Elastomeric
AASHTO M 251, for plain neoprene bearings.
2.6.2 Hardboard (Interior Only)
AHA A135.4 , class as specified by the precast manufacturer.
2.6.3 Random-Oriented, Fiber-Reinforced Elastomeric Pads
Preformed, randomly oriented synthetic fibers set in elastomer. Surface hardness of 70 to 90 Shore A durometer according to ASTM D2240. Capable of supporting a compressive stress of 3000 psi with no cracking, splitting or delaminating in the internal portion of the pad.
2.6.4 Cotton-Duck-Fabric-Reinforced Elastomeric Pads
Preformed, horizontally layered cotton-duck fabric bonded to an elastomer.
Surface hardness of 80 to 100 Shore A durometer according to ASTM D2240.
Conforming to Division II, Section 18.10.2 of AASHTO LRFD Bridge Design Specifications or Military Specification MIL-C-882E.
2.6.5 Frictionless Pads
Polytetrafluoroethylene (PTFE), glass-fiber reinforced, bonded to stainless or mild-steel plates, or random-oriented, fiber-reinforced
SECTION 03 45 00 Page 23 elastomeric pads, of type required for in-service stress.
2.6.6 Sub Title
Multimonomer, nonleaching, plastic strip capable of supporting loads with no visible overall expansion.
2.7 INSULATED PANEL ACCESSORIES
2.7.1 Polyisocyanurate Board Insulation
ASTM C591.
PART 3 EXECUTION
3.1 PREPARATION
Deliver anchorage devices to the site in time to be installed before the start of concrete placing or during steel erection. Contractor must provide setting drawings, instructions, and directions for the installation of anchorage devices.
3.2 EXAMINATION
Do not begin installation until supporting structures have been properly prepared.
Verify that all parts of the supporting structure are complete and ready to receive the precast units and that site conditions are conducive to proper installation.
If support structure is the responsibility of another installer, notify Contracting Officer of unsatisfactory preparation before proceeding.
3.3 INSTALLATION
Install precast concrete units and accessories in accordance with approve detail drawings and descriptive data, and as specified below.
3.3.1 Building Framing System
Provide supporting members, including anchorage items attached to or embedded in building structural elements, prior to placement of precast units.
3.3.2 Concrete Strength at Time of Precast Unit Installation
Do not install precast units until concrete has attained the minimum laboratory compressive strength at 28 calendar days specified.
Do not install precast units before 28 calendar days from the date of casting unless approval has been obtained to make one compressive strength test, ASTM C39/C39M, and one flexural strength test using simple beam with third-point loading, ASTM C78/C78M, on field cured concrete test specimens, ASTM C31/C31M, for each individual precast unit to determine the strength of the concrete.
SECTION 03 45 00 Page 24
3.3.3 Erection
Erect precast units in accordance with the detail drawings and without damage to other units or to adjacent members. Set units true to alignment and level, with joints properly spaced and aligned both vertically and horizontally. Erection tolerances must be in accordance with the requirements of PCI MNL-117 and PCI MNL-122 . As units are being erected, shims and wedges will be placed as required to maintain correct alignment. After final attachment, grout precast units as shown. After erection, clean and touch-up welds and abraded surfaces of steel with a zinc-rich paint. Welds must be made by a certified welder in accordance with the manufacturer's erection drawings. Finish pickup points, boxouts, inserts, and similar items to match adjacent areas after erection.
Erection of precast units must be supervised and performed by workmen skilled in this type of work. Welding and the qualifications of welders must be in accordance with AWS D1.1/D1.1M .
3.3.4 Erection Tolerances
Erect architectural precast concrete units level, plumb, square and in alignment without exceeding the noncumulative erection tolerances of PCI MNL-117 , Appendix I.
3.3.5 Joints
Joint widths between precast units will be as specified unless otherwise indicated.
3.3.5.1 Joint Sealing
Joint sealing will be as specified in Section 07 92 00 JOINT SEALANTS.
3.3.6 Protection
Protect exposed-to-view facing from staining and other damage from subsequent operations. Do not allow laitance to penetrate, stain, or harden on exposed surfaces.
3.4 DEFECTIVE WORK
Repair precast concrete units damaged during erection as soon after occurrence as possible or replaced, as directed, using approved procedures. All repairs to precast concrete units must match the adjacent surfaces in color and texture, as approved. Unless otherwise approved, repair procedures will conform to PCI MNL-117 .
3.5 JOINTS AND GASKETS
Joints between precast units must be the width indicated and within limits of installation tolerances.
Install gaskets in joints as indicated, continuous throughout the joint length, and compressed at least 25 percent by volume.
3.6 INSPECTION AND ACCEPTANCE PROVISIONS
3.6.1 Dimensional Tolerances
Precast units having dimensions outside the limits for fabrication
SECTION 03 45 00 Page 25 tolerances will be rejected.
3.6.2 Surface Finish Requirements
Precast units will be rejected for the following surface finish deficiencies:
Exposed-to-view surfaces that do not match the color, aggregate size and distribution, and texture of the approved sample
Exposed-to-view surfaces that contain defects that affect the appearance of the finish, such as cracks, spalls, honeycomb, rock pockets, or stains and discoloration of aggregate or matrix that cannot be removed by cleaning
Concealed surfaces that contain cracks in excess of 0.01 inch wide, cracks that penetrate to the reinforcement regardless of width, honeycomb, rock pockets, and spalls except minor breakage at corners and edges
3.6.3 Strength of Precast Units
Strength of precast concrete units will be considered potentially deficient if the units fail to comply with the requirements that control the strength of the units, including the following conditions:
Failure to meet compressive strength tests
Reinfor…
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