INCONEL alloy 693. Publication Number SMC-043 Copyright Special Metals Corporation, 2005 (Feb 05)

Similar documents
HAYNES 25 alloy. Principle Features

Additional information regarding fabrication can be in the Welding and Fabrication brochrue.

INCONEL alloy 706. Table 2 - Physical Constants

Nickel Based Superalloy Incoloy 800 (UNS N08800)

ATI 825 ATI 825. Technical Data Sheet. Nickel-base Alloy INTRODUCTION PRODUCT FORMS SPECIFICATIONS & CERTIFICATES (UNS N08825)

Custom 450 Stainless Steel, UNS S45000

ATI 718 ATI 718. Technical Data Sheet. Nickel-Base Superalloy INTRODUCTION FORMS AND CONDITIONS AVAILABLE SPECIFICATIONS. (UNS Designation N07718)

HAYNES HR-160 alloy. Principal Features

Hastelloy G-30 (UNS N06030) Chemical Composition

HASTELLOY B-3 alloy Principal Features

RA17-4 stainless. Introduction

HAYNES 282 alloy. Principal Features. Nominal Composition. Weight %

NiSPAN-C 902 (Alloy 902), UNS N09902

HASTELLOY G-35 alloy. Nominal Composition. Weight % O 5

316Ti Stainless Steel, UNS S31635

316/316L STAINLESS STEEL

12 SR STAINLESS STEEL. More Oxidation Resistant Than Type 409. More Creep Resistant Than Type 409. Applications Potential

DATA SHEET ZERON 100 UNS S32760 THE GLOBAL LEADER IN SPECIALTY ALLOYS ALLOYS AND PROCESSING

Applications Potential

MuShield s High Permeability Magnetic Shielding per ASTM A753 Alloy Type 4

Subway Cars. Applications Potential

410S STAINLESS STEEL. Moderate to Good Formability Good High-temperature Service. Slows Hardening Cracks When Welded. Minimal Hardenability

CORROSION-RESISTANT ALLOYS

HASTELLOY G-30 alloy Principal Features

The ATI 17-4 precipitation hardening stainless steel (S17400) is covered by the following wrought product specifications.

ATI ATI 2205 Alloy (UNS S31803 and S32205) Duplex Stainless Steel. Technical Data Sheet

304/304L STAINLESS STEEL

Identification. Type Analysis

Outokumpu 2507 UNS S32750

HASTELLOY X ALLOY HIGH-TEMPERATURE ALLOYS

HAYNES 556 alloy Principle Features

HASTELLOY C-2000 alloy

Technical Data. BLUE SHEET Allegheny Ludlum Corporation Pittsburgh, PA. Stainless Steels Types 321, 347 and 348 (UNS S32100, S34700 and S34800)

VDM Alloy 80 A Nicrofer 7520 Ti

More Oxidation and Creep Resistance Upgrade for Type 409. Potential Substitute for 18 Cr-Cb & Type 439. Excellent Forming and Welding Characteristics

THERMAK 17. High Temperature Strength. Superior Oxidation Resistance. Excellent Thermal Fatigue Resistance. Equiaxed Microstructure

AL 29-4C AL 29-4C. Technical Data Sheet. Stainless Steel: Superferritic INTRODUCTION (UNS S44735)

UR 2202 is a low nickel, low molybdenum stainless steel designed to match the corrosion resistance of 304L in most environments.

STAINLESS STEEL SHEETS

HAYNES 230 alloy Principal Features

Free Machining Martensitic stainless steel. Oxidation resistance in continuous service to 1200 F (650 C).

Martensitic. stainless steels. Types 410, 420, 425 Mod, and 440A TECHNICAL DATA BLUE SHEET GENERAL PROPERTIES APPLICATIONS PRODUCT FORM

HAYNES 214 alloy. Principle Features

Heat and corrosion resistant alloys for chemical processing systems

C carbides can form but their damaging effect is minimal.

INCONEL alloy C-276. Publication Number SMC-019 Copyright Special Metals Corporation, 2002 (Sept 02)

Impact 7 Steel. A Durable, Dependable Steel Solution For Harsh Environments. Technical Data. Alloy Description. Alloy Type. Typical Applications

ATI 2205 ATI Technical Data Sheet. Duplex Stainless Steel GENERAL PROPERTIES. (UNS S31803 and S32205)

409 HIGH PERFORMANCE ULTRA FORM STAINLESS STEEL

Crofer 22 H. High -temperature alloy. ThyssenKrupp. ThyssenKrupp VDM. Material Data Sheet No June 2010 Edition

STANDARD FERRITIC STAINLESS STEELS

Wire Mesh Furnace Belts and Basket Liners. Waste Incinerators Haynes International

ATI Datalloy HP TM Alloy

HAYNES 242 alloy. Principal Features

PAGE 1/6 ZAPP PRECISION WIRE INCOLOY ALLOY 27-7MO (UNS S31277)

Carpenter CTS BD1 Alloy

The Convenience Stores For Metal

These elements are in carbon steels in minimal amounts, usually less than 1%.

E-BRITE E-BRITE. Technical Data Sheet. Stainless Steel: Superferritic GENERAL PROPERTIES PLANAR SOLID OXIDE FUEL CELLS CHEMICAL COMPOSITION

VIRGO 15.5 PH: A 15Cr 5Ni 3Cu precipitation hardening martensitic stainless steel

!!!! WARNING!!!! WELDING FUMES AND GASES CAN BE DANGEROUS TO YOUR HEALTH.

41003 STAINLESS STEEL

VDM Alloy 718 CTP Nicrofer 5219 Nb

Forta SDX 2507 EN , ASTM UNS S32750

HAYNES HIGH-TEMPERATURE ALLOYS

Types 316 (S31600), 316L (S31603), 317 (S31700), 317L (S31703)

a look inside the future of metals

ALLOYS 625 AND 725: TRENDS IN PROPERTIES AND APPLICATIONS

AUTOMOTIVE EXHAUST SYSTEM MATERIALS COMPARATOR

441 STAINLESS STEEL. Good High-Temperature Oxidation Resistance. Applications Potential

CHROMESHIELD 22 STAINLESS STEEL

Special Metals Co., 3200 Riverside Dr., Huntington, WV U.S.A.

Stainless Steels. Chromium-Nickel-Molybdenum Types 316 (S31600), 316L (S31603), 317 (S31700), 317L (S31703) GENERAL PROPERTIES CHEMICAL COMPOSITION

VIRGO 17.4 PH: A 17Cr 4Ni 3Cu precipitation hardening martensitic stainless steel

RA 253 MA Data Sheet. The Global Leader in Specialty Metals

15 Cr-Cb ULTRA FORM STAINLESS STEEL

ATI 45Nb Alloy. ATI 45Nb Alloy. Technical Data Sheet. Titanium Alloy

409 Ni STAINLESS STEEL

Inconel Ni-Cr-Fe Alloys Incoloy Fe-Ni-Cr Alloys Monel Ni-Cu alloys

SANICRO 30 TUBE AND PIPE, SEAMLESS

Seamless tube. Sandvik SAF S-1874-ENG May 2000 Cancels all previous editions

INCONEL ALLOY 740H. A Superalloy Specifically Designed. For Advanced Ultra Supercritical. Power Generation

RAMAX 2. Prehardened stainless holder steel

MMPDS January 2003 CHAPTER 5 TITANIUM

HIGH-TEMPERATURE ALLOYS

Standard Specification for Precipitation-Hardening Stainless and Heat-Resisting Steel Plate, Sheet, and Strip 1

Good welding practice Stainless Steels

AEROSPACE MATERIAL SPECIFICATION

A Word About Invar. Publication No. SMC-051. Copyright Special Metals Corporation, 2001

DATA SHEET Allegheny Ludlum Corporation Pittsburgh, PA

ARCAP AP1D AP1D lb/in³ 8.8 g/cm³ 240 Ohm circ mil/ft 40 microohm cm 212 F 572 F 932 F 1112 F 1832 F 100 C 300 C 500 C 600 C 1000 C

VDM Aluchrom Y Hf Aluchrom Y Hf

INCONEL, INCOLOY, and 800HT are trademarks of the Special Metals Corporation group of companies.

Seam Welded Air-Hardenable Corrosion Resistant Steel Tubing: Automotive Applications Overview

Applications Potential

SOLEIL 4003: A cost effective, easy to fabricate 12% Cr stainless steel. Thermal conductivity (W m - 1 K - 1 )

Standard Specification for Low-Carbon Magnetic Iron 1

Stainless Steel & Stainless Steel Fasteners Chemical, Physical and Mechanical Properties

Cr-(Mn)-Ni AUSTENITIC STAINLESS STEELS

CTS-XHP Alloy. Patent Number 5,370,750

Transcription:

www.specialmetals.com alloy 693 - Excellent Resistance to Metal Dusting and High Corrosion alloy 693 (UNS N6693) is a new alloy from Special Metals which offers resistance to high temperature corrosion mechanisms not previously available from a nickel-based alloy. Of particular interest to the designer is the alloy s resistance to metal dusting. alloy 693 offers the best resistance to metal dusting in chemical and petrochemical processing environments of any conventional alloy currently manufactured. Alloy 693 typically contains 6.5% nickel, 29% chromium, and 3.1% aluminum. The limiting composition is presented in Table 1. Like its predecessor, alloy 69, the alloy s high chromium content gives it excellent resistance to oxidation and sulfidation. However, the addition of 3.1% aluminum to alloy 693 vastly improves resistance to other forms of high temperature corrosion as well. Alloy 693 is protected by U.S. Patent Number 4,882,125. Table 1 - Limiting Chemical Composition, % Nickel...Remainder a Chromium...27.-31. Iron...2.5-6. Aluminum...2.5-4. Niobium...5-2.5 Manganese...1. max. Titanium...1. max. Copper...5 max. Silicon...5 max. Carbon...15 max. Sulfur...1 max. Physical and Thermal Properties Some physical properties for alloy 693 are given in Table 2. Thermal properties for the alloy from room-temperature to 21 F and 115 C are found in Table 3. Values for the Modulus of Elasticity (Young s Modulus) were determined by a dynamic method from room-temperature to 15 F and 8 C and are presented in Table 4. Table 2 - Physical constants Density, lb/in 3...28 g/cm 3...7.77 Melting Range, F...243-2493 C...1317-1367 Electrical Resistivity, ohm circ mil/ft...72.7 µω m...1.168 Publication Number SMC-43 Copyright Special Metals Corporation, 25 (Feb 5), INCOLOY, INCO-WELD and 8HT are trademarks of the Special Metals Corporation group of companies. alloy 693 a Element determined arithmetically by difference. The data contained in this publication is for informational purposes only and may be revised at any time without prior notice. The data is believed to be accurate and reliable, but Special Metals makes no representation or warranty of any kind (express or implied) and assumes no liability with respect to the accuracy or completeness of the information contained herein. Although the data is believed to be representative of the product, the actual characteristics or performance of the product may vary from what is shown in this publication. Nothing contained in this publication should be construed as guaranteeing the product for a particular use or application.

alloy 693 Table 4 - Modulus at Elevated s F Table 3 - Thermal Properties Thermal Conductivity Btu in./ft 2 h F Coefficient of Expansion a 1-6 in./in./ F Specific Heat Btu/lb F 73 64.3 -.19 2 73.1 7.22.115 4 87.8 7.57.121 6 12.8 7.84.127 8 117.2 8.9.131 1 13.8 8.28.135 12 143.2 8.6.14 14 154.6 9.2.145 16 165.2 9.38.151 18 175.5 -.156 2 186.3 -.159 21 192.2 -.16 C W/m C µm/m/ C J/kg C 23 9.1-455 1 1.7 13.4 484 2 12.6 13.61 55 3 14.2 14.5 525 4 16.1 14.42 548 5 17.8 14.8 56 6 19.5 15.22 579 7 21.6 15.72 598 8 22.8 16.32 616 9 23.6 17.1 642 1 25.2-662 11 26.8-674 115 27.5-678, F Modulus of Elasticity, Tension, 1 3 ksi 7 28.5 2 28.2 4 27.3 6 26.6 8 25.6 1 24.8 14 23.2 15 22.5 Product Form Hot-Rolled and Annealed Plate Cold-Drawn and Annealed Tubing C GPa 21 196 1 194 2 188 3 18 4 172 5 165 6 157 7 148 8 137 Table 5 - Nominal Room- Mechanical Properties Yield Strength (.2% Offset) Tensile Strength ksi MPa ksi MPa Elongation, % 71 489.5 128 882.6 45 77 53.9 136 937.7 42 a Mean coefficient of linear expansion between 78 F (26 C) and temperature shown. Mechanical Properties alloy 693 exhibits excellent mechanical properties. Nominal tensile properties are given in Table 5. Typical tensile properties of annealed bar from roomtemperature to 2 F (193 C) are found in Figure 1. Strength, ksi Elongation, % 21 16 14 12 1 8 6 4 2 7, C 649 74 76 816 871 927 982 Elongation Tensile Strength.2% Yield Strength 12 13 14 15 16 17 18, F 193 11 1 9 8 7 6 5 4 3 2 1 2 Strength, MPa Figure 1. Elevated temperature tensile properties of annealed bar. 2

alloy 693 Creep and Rupture Properties LMP=(1.8T+49)*(2+log(rl))/1, T in C, rl in Hours 3 4 5 6 1 Alloy 693 exhibits excellent rupture strength at elevated temperatures. A comparison of the rupture properties of alloy 693 with those of other alloys commonly used for high temperature service can be seen in the Larson- Miller plot in Figure 2. The creep rupture strength of alloy 693 at temperatures from 12 F (649 C) to 18 F (982 C) is seen in Figure 3. Stress, ksi 1 1 alloy 693 alloy 61 alloy 69 alloy 617 1 1 Stress, MPa.1 3 4 5 LMP=(T+46)*(2+log(rl))/1, T in F, rl in Hours 6 1 Figure 2. Larson-Miller comparison of creep-rupture properties of alloys 693, 617, 61, and 69. 1 1 12 F (65 C) 13 F (75 C) 14 F (76 C) 1 Stress, ksi 16 F (87 C) Stress, MPa 1 1 18 F (98 C) 1.1 1 1 1 2 1 3 Rupture Life, Hours 1 4 1 5 Figure 3. Stress rupture life of alloy 693. 3

alloy 693 Thermal Stability alloy 693 is commonly used for service at temperatures between 1 and 14 F (538 and 76 C). The alloy exhibits good thermal stability as evidenced by the mechanical and impact properties reported in Tables 6, 7 and 8. The alloy 693 rod used to generate these data was produced by hot rolling followed by annealing at 185 F (11 C) for 3 minutes and water quenched. The test samples were then heated in a furnace to the exposure temperature, exposed for the time noted and cooled in air to room temperature. The samples tested at elevated temperature were reheated to the test temperature. Table 6 - Room- Charpy (CVN) Impact Toughness of Exposed Rod Exposure Exposure Time Impact Energy F C h ft-lb J/cm 2 11 593 1 4.5 68.6 12 649 1 16.3 27.5 13 74 1 15.5 26.3 14 76 1 23. 39. Exposure Exposure Time Table 7 - Room- Tensile Properties of Exposed Rod.2% Yield Strength Ultimate Tensile Strength F C h ksi MPa ksi MPa Elongation Reduction of Area 11 593 1 17.5 741.2 166. 1144.6 31 48 12 649 1 12. 827.4 175.5 121.1 28 47 13 74 1 117. 86.7 17.5 1175.6 31 5 14 76 5 11.5 699.8 16. 113.2 32 56 % % Test Exposure Table 8 - Elevated- Tensile Properties of Exposed Rod Exposure Time.2% Yield Strength Ultimate Tensile Strength F C F C h ksi MPa ksi MPa Elongation Reduction of Area 11 593 11 593 1 89. 613.7 132. 91.1 28 37 12 649 12 649 1 92.9 64.5 128.9 888.8 9 22 13 74 13 74 1 8.7 556.1 111.6 769.5 2 24 14 76 14 76 1 46.7 322. 78.6 541.9 32 48 % % 4

alloy 693 Resistance to Corrosion at Elevated s Alloy 693 offers superior resistance to metal dusting, a particularly aggressive form of carburization that can cause failure after very short exposures. Atmospheres containing reducing media (e.g. carbon monoxide and hydrogen) are known to induce metal dusting at elevated temperatures. Figures 4 and 5 show that alloy 693 offers vastly superior resistance to attack when compared with other alloys which are commonly used in such environments. Alloy 693 offers good resistance to sulfidation in both oxidizing and reducing environments containing sulfur. Also, the alloy performed well when exposed to oxide-rich media such as glass frit and fluxing compounds at temperatures up to 11 C (212 F). 3 762. 28 26 24 INCOLOY alloy 8 698.5 635. 22 2 alloy 61 571.5 58. Pit Depth, Mils 18 16 14 12 1 alloy 69 444.5 381. 317.5 254. Pit Depth, Microns 8 19.5 6 4 127. 2 alloy 693 63.5. 2 4 6 8 1 12 14 16 18 Exposure Time, Hours Figure 4. Pitting depth resulting from exposure in CO-2% H 2 at 115 F (621 C). 1 1-1 INCOLOY alloy 8 Mass Loss Rate, mg/cm 2 /hr 1-2 1-3 1-4 alloy 61 alloy 69 1-5 alloy 693 1-6 2 4 6 8 1 12 14 16 Exposure Time, Hours 18 Figure 5. Rate of mass loss resulting from exposure to CO-2% H 2 at 115 F (621 C). 5

alloy 693 alloy 693 offers excellent resistance to corrosive attack at elevated temperatures in a variety of media. The alloy offers excellent resistance to oxidation in air at temperatures up to 12 C (2192 F) as seen in Figure 6. The alloy also resists oxidation in moist air (Figure 7). Alloy 693 demonstrated excellent resistance to carburization when exposed in a medium containing hydrogen, methane, and carbon dioxide at 1 C (1832 F) as shown in Figure 8. 5-5 -1 Mass Change, mg/cm 2 5-5 -1-15 -2-25 -3-35 -4 1 2 3 Time, Hours alloy 693 alloy 617 alloy 61 4 5 6 Mass Change, mg/cm 2-15 -2-25 Figure 7. Oxidation resistance in air + 5% water at 11 C (212 F). 25-3 -35-4 -45 1 INCOLOY alloy MA956 alloy 693 alloy 61 2 3 4 5 6 Exposure Time, Hours Figure 6. Oxidation resistance at 12 C (2192 F). 7 8 9 Mass Change, mg/cm 2 2 15 1 INCOLOY alloy 8HT alloy 61 alloy 693 5 Aqueous Corrosion Resistance Table 9 - Comparison of Aqueous Corrosion Properties of alloy 69 and alloy 693 Environment alloy 693, mpy (mm/a) alloy 69, mpy (mm/a) 1% HNO 3 + 3% HF 6 C(14 F) 27.5 (.699) 11 (.279) 1% Sulfuric 6 C (14 F) No attack 19.5 (.495) 3% HCl at room temperature 1.2 (.3) 1. (.25) 3% HCl at 45 C (113 F) 8 (.23) 1 (.254) 1% HCl at room temperature 2.8 (.71) 6 (.152) 1% HCl at 45 C (113 F) 39.5 (1.3) 13 (3.32) 15% HCl at room temperature 8 (.23) 14.7 (.373) 15% HCl at 45 C (113 F) 12 (3.48) 368 (9.347) 65% boiling Nitric acid (Huey) 1 (.254) 3 (.76) 1 Time, Hours 2 Figure 8. Mass change resulting from exposure in H 2-5.5% CH 4-4.5% CO 2 at 1 C (1832 F). 6

alloy 693 Fabrication Joining alloy 693 is readily fabricated by conventional techniques. Its forming and machining characteristics are similar to those of alloy 6 or 69. The work hardening response of alloy 693 is shown in Figure 9. Alloy 693 can precipitate second phases when exposed to intermediate temperatures (1 to 14 F, 538 to 76 C). The presence of these phases can decrease the ductility and impact properties of the alloy. Therefore, care must be taken to avoid extended exposure within this temperature range during fabrication and forming. Alloy 693 components exposed to intermediate temperatures for extended periods should be annealed prior to subsequent forming or service as described under Heat Treatment to re-solution these deleterious phases. Rockwell C Hardness 5 4 3 2 1 1 2 3 4 5 6 7 8 Figure 9. Work Hardening Curve for alloy 693 Heat Treatment % Cold Work alloy 693 is a solid-solution, single-phase alloy and as such is supplied in the annealed condition. Annealing of alloy 693 can be accomplished by heating to 185 to 195 F (11 to 166 C), and holding for a time commensurate with section thickness, followed by rapid cooling in air or water quenching (recommended quenching method dependent upon section thickness - consult the manufacturer). Table 1 - Room- Mechanical properties of an filler metal 53MD GMA Weldment in ½-in Plate (All Weld Metal Longitudinal Tensile Test Specimen) Tensile strength, ksi (MPa) 18.3 (746).2% Yield Strength, ksi (MPa) 7.1 (483) Elongation, % 48.1 Reduction of area, % 58.7 2T side bend tests No fissures alloy 693 exhibits good weldability for matching and dissimilar joints. Alloy 693 components are best joined in the annealed condition. Gas Tungsten Arc-Welding (GTAW or "TIG") and Gas Metal-Arc Welding (GMAW or "MIG") are the most commonly used processes. Argon or argon / helium mixtures are suitable as shielding gases. Preheat is not normally required. Filler Metal 53MD, a near-matching composition welding product, is normally used for joining alloy 693 products. This consumable is suitable for similar metal joints in light to moderate sections (generally up to ½ inch dependent upon joint design and the resulting welding stresses). The properties of an Filler Metal 53MD weldment deposited in ½ inch plate using the GMAW process are reported in Table 1. Welding parameters were 17 amps (DCEP), 29 Volts, and 1% argon shielding gas flowing at 35 CFH. For heavier sections or highly stressed joints or when welding dissimilar materials, it may be preferable to use either Filler Metal 52 or Filler Metal 617 for the structural portion of the weldment. The welding process is completed by overlaying the portion of the joint exposed to the service environment with two layers of either Filler Metal 53MD or Filler Metal 72. Alloy 693 welded components to be exposed to high temperatures (e.g, temperatures greater than 14 F or 76 C) do not normally require post weld heat treatment. Welded and/or formed components to be exposed to intermediate service temperatures (1 to 14 F, 538 to 76 C) should be stress relieved after forming and welding for 2 to 3 hours at a temperature in the range of 1742 to 1922 F (95 to 15 C), followed by air cooling. If an alloy 693 component is to be pre-oxidized prior to service to improve its resistance to high temperature corrosion, the treatment should be done after welding so that the weldment develops the same protective oxide film as the base metal. Filler Metal 53MD may also be used for overlaying purposes. For example, carbon or stainless steel tubesheets may be overlaid with Filler Metal 53MD for some applications as an alternative to solid alloy 693 construction. The application, joint design, and material thickness must be considered in development of the optimum welding procedure. General welding information for alloy 693 and the other nickel-base alloys manufactured by Special Metals is available on the websites, www.specialmetals.com and www.specialmetalswelding.com. 7

www.specialmetals.com Applications Petrochemical: Synthesis gas production Applications for alloy 693 are found in the petrochemical processing industry. Of special interest is the production of synthesis gas for production of ammonia, methanol and hydrogen. Typical products are reformer tubes, thermowells, thermocouple sheathing, tube ferrules, baffle plates and valve components. alloy 693 has been successfully used in a reactor for syngas production. Tube ferrules and baffle plates have also been fabricated from alloy 693. Alloy 693 wire has been used for refractory anchor supports in an ammonia plant. Waste to Energy and Biomass Incinerators alloy 693 is a candidate for service in hightemperature waste and biomass incinerators at temperatures above 7 C (1292 F), where fuel ash corrosion, chloridation and sulfidation can cause rapid failure of traditional materials. Alloy 693 may be used to protect superheater walls in low NOx plants. The material can be used either solid or as a weld overlay. Thermal Processing With its excellent resistance to corrosive attack and deterioration at elevated temperatures, alloy 693 is a candidate for construction of thermal processing equipment and in chemical processes where high levels of chlorine or sulfur are present. Catalyst manufacturing processes, where high levels of sulfur are present, may require alloy 693. Burner Nozzles Alloy 693 may be used as an upgrade for alloy 61 and alloy 62CA in heating burner nozzles, which can suffer metal dusting due to new low sulfur regulations for heating oil. High- Fuel Cell Reformers Alloy 693 is a candidate for service in high temperature fuel cell developments where synthesis gas is produced (e.g., fuel cells to power automobiles). Typical product forms are strip and tube. Some designs of high temperature fuel cells have gas compositions with the potential to induce metal dusting. Alloy 693 should be of special interest for this service. Available Products and Specifications alloy 693, designated UNS N6693, is available in a variety of product forms and sizes. Specifications for the alloy include: All Forms - NACE RP294 Rod and Bar - ASTM B 166 Plate and Sheet - ASTM B 168, ASTM B 96 Pipe and Tube - ASTM B 167 U.S.A. Special Metals Corporation 32 Riverside Drive Huntington, WV 2575-1771 Phone +1 (34) 526-51 +1 (8) 334-4626 Fax +1 (34) 526-5643 4317 Middle Settlement Road New Hartford, NY 13413-5392 Phone +1 (315) 798-29 +1 (8) 334-8351 Fax +1 (315)798-216 United Kingdom Special Metals Wiggin Ltd. Holmer Road Hereford HR4 9SL England Phone +44 () 1432 3822 Fax +44 () 1432 2643