Claims
- 1. A method of producing a clad pipe comprising coaxially assembling a plurality of cylindrical tubular blanks of different metals, seal welding the longitudinal ends of said tubular blanks about the entire circumferential interface of said tubular blanks, maintaining vacuum conditions about said tubular blanks to a temperature of at least 750.degree. C. and a pressure of at least 200 kg/cm.sup.2 to effect metallurgical bonding over the whole interface of said tubular blanks, and elongating said metallurgically bonded tubular blanks such that the cross-section area thereof is reduced to one-third or less of its pre-elongated cross-section area to thereby produce an elongated clad pipe.
- 2. A method of producing a clad pipe according to claim 1, wherein said elongated clad pipe is double layer clad pipe.
- 3. A method of producing a clad pipe according to claim 1, wherein said plurality of tubular blanks comprises an inner tubular blank of stainless steel, an outer tubular blank of titanium and an intermediate tubular blank of carbon steel.
- 4. A method of producing a clad pipe according to claim 1 wherein said plurality of tubular blanks comprises an inner tubular blank and an outer tubular blank, said inner tubular blank having a coefficient of thermal expansion equal to or less than that of said outer tubular blank.
- 5. A method of producing a clad pipe according to claim 1 wherein the outer blank is made of a material selected from the group consisting of carbon steel and stainless steel and the inner blank is made of material selected form the group consisting of Cu, Ti, Zr, stainless steel, and a nickel or cobalt base superalloy.
- 6. A method of producing a clad pipe according to claim 5 wherein said inner blank is copper.
- 7. A method of producing a clad pipe according to claim 5 wherein the inner blank is Ti and said temperature is at least 800.degree. centigrade.
- 8. A method of producing a clad pipe according to claim 5 wherein the inner blank is Zr.
- 9. A method of producing a clad pipe according to claim 5 wherein the inner blank is made of stainless steel and said temperature is at least 900.degree. centigrade and said pressure is at least 300 kg/cm.sup.2.
- 10. A method of producing a clad pipe according to claim 5 wherein the inner blank is made of a nickel base superalloy or a cobalt base superalloy and said temperature of at least 900.degree. centigrade and said pressure is at least 300 kg/cm.sup.2.
- 11. A method of producing a clad pipe according to claim 1 wherein the maximum temperature is at least 50.degree. centigrade lower than the lowest melting point and eutectic point of the blanks.
- 12. A method of producing a clad pipe according to claim 1 wherein said pressure 500 to 1000 kg/cm.sup.2.
- 13. A method of producting a clad pipe according to claim 1 further comprising applying and interposing between the inner and outer blanks an accelerator to accelerate diffusion bonding of the inner and outer blanks, said accelerator being selected from a group consisting of Cu-P alloy, Ni-P alloy, Ni-B alloy and Ni-Cr-B alloy.
- 14. A method of producing a clad pipe according to claim 1 wherein the unelongated has a longitudinal length of about one meter or less and the elongated pipe has a longitudinal length of about twelve meters or more.
- 15. A method of producing a clad pipe according to claim 1 wherein said step of elongating is effected by utilizing hot extrusion, plug mill, pilger mill, rolling mill, or mandrel mill under hot conditions.
- 16. A method of producing a clad pipe according to claim 1 wherein said elongating step is effected utilizing a pilger mill, rolling mill with roll dies and mandrel and drawing at room temperature.
- 17. A method of producing a clad pipe according to claim 15 wherein said step of elongating is effected at a temperature corresponding to the temperature at which the hot isostatic pressing is effected.
- 18. A method according to claim 1, wherein said step of simultaneously subjecting said tubular blanks to a temperature of at least 750.degree. C. and a pressure of at least 200 kg/cm.sup.2 comprises placing said assembled blanks within a hot isostatic press enclosure in which the entire assembled blanks are enclosed by said enclosure, heating the entire assembled blanks simultaneously to said temperature of at least 750.degree. C. in said enclosure, and simultaneously subjecting the entire assembled blanks including the inside and outside of the assembled blanks to said pressure of at least 200 kg/cm.sup.2 in said enclosure.
- 19. A method according to claim 18 further comprising producing a thick diffusion layer of coarse grains at the matrix of said assembled blanks during said step of simultaneously heating and pressurizing said assembled blanks, and reducing the thickness of said diffusion layer and refining said coarse grain by elongating said diffusion layer during said elongating step.
- 20. A method of producing corrosion and wear resistant clad pipes for use in the oil industry to transport oil and the like comprising assembling a plurality of cylindrical tubular blanks of dissimilar metals having different ductibility and different deforming resistance, seal welding the longitudinal ends of said blanks, placing the entire assembled blanks within a hot isostatic press enclosure, simultaneously heating for about one hour the entire assembled blanks to a temperature of at least 750.degree. C. in said enclosure, simultaneously with said heating, pressurizing for about one hour the entire assembled blanks including the inside and outside of the assembled blank to a pressure of at least 200 kg/cm.sup.2 in said enclosure, providing a one hundred percent metallurgical bond between said blanks and a thick diffusion layer of coarse grains at the matrix of said assembled blanks during said steps of simultaneously heating and pressurizing said assembled blanks in said enclosure, removing said metallurgically bonded blanks form said enclosure, elongating said metallurgically bonded blanks such that the cross-section area of the metallurgically bonded blanks is reduced to one-third or less of its pre-elongated cross-section area, said step of elongating said metallurgically bonded blanks comprising simultaneously elongating said diffusion layer, reducing the thickness of said diffusion layer, and refining said coarse grain in said diffusion layer, thereby producing a strong, corrosion resistant and wear resistant clad pipe suitable for use in the oil industry.
- 21. A method according to claim 20 wherein said elongating is effected at room temperature.
- 22. A method according to claim 20 comprising effecting said simultaneous heating and pressurizing step in argon atmosphere.
- 23. A method according to claim 20 wherein said step of assembling a plurality of cylindrical tubular blanks comprises assembling at least three cylindrical tubular blanks.
- 24. A method of producing a clad pipe comprising coaxially assembling inner and outer cylindrical tubular blanks, forming a radial projection on at least one longitudinal end of said inner tubular blank such that said projection abut one longitudinal end of said outer tubular blank, simultaneously subjecting said tubular blanks to a temperature of at least 750.degree. C. and a pressure of at least 200 kg/cm.sup.2, and elongating said metallurgically bonded inner and outer tubular blanks such that the cross-section area thereof is reduced one-third or less of its pre-elongated cross-section area to thereby produce an elongated clad pipe.
- 25. A method of producing a clad pipe according to claim 24, further comprising forming a radial projection on the other longitudinal end of said inner tubular blank such that the last said projection abuts the other longitudinal end of said outer tubular blank.
- 26. A method according to claim 24, wherein said step of simultaneously subjecting said tubular blanks to a temperature of at least 750.degree. C. and a pressure of at least 200 kg/cm.sup.2 comprises placing said assembled blanks within a hot isostatic press enclosure in which the entire assembled blanks are enclosed by said enclosure, heating the entire assembled blanks simultaneously to said temperature of at least 750.degree. C. in said enclosure, and simultaneously subjecting the entire assembled blanks including the inside and outside of the assembled blanks to said pressure of at least 200 kg/cm.sup.2 in said enclosure.
- 27. A method according to claim 26 further comprising producing a thick diffusion layer of coarse grains at the matrix of said assembled blanks during said step of simultaneously heating and pressurizing said assembled blanks, and reducing the thickness of said diffusion layer and refining said coarse grain by elongating said diffusion layer during said elongating step.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 472,370, filed Mar. 4, 1983, now abandoned.
US Referenced Citations (7)
Foreign Referenced Citations (1)
Number |
Date |
Country |
195590 |
Dec 1982 |
JPX |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
472370 |
Mar 1983 |
|