US3707084A - Apparatus for forming corrugated tubing - Google Patents

Apparatus for forming corrugated tubing Download PDF

Info

Publication number
US3707084A
US3707084A US62768A US3707084DA US3707084A US 3707084 A US3707084 A US 3707084A US 62768 A US62768 A US 62768A US 3707084D A US3707084D A US 3707084DA US 3707084 A US3707084 A US 3707084A
Authority
US
United States
Prior art keywords
die
tube
corrugated
annular opening
inner frame
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
US62768A
Inventor
Joseph Winter
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Olin Corp
Original Assignee
Olin Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Olin Corp filed Critical Olin Corp
Application granted granted Critical
Publication of US3707084A publication Critical patent/US3707084A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B21MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21DWORKING OR PROCESSING OF SHEET METAL OR METAL TUBES, RODS OR PROFILES WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
    • B21D15/00Corrugating tubes
    • B21D15/04Corrugating tubes transversely, e.g. helically

Definitions

  • the disclosure teaches an improved apparatus for corrugating tubes and an improved corrugated tube produced thereby.
  • the apparatus is characterized by having an inner frame moveably mounted on an outer frame, with a die rotatably mounted on the inner frame.
  • the die has an annular opening through which passes the tube to be corrugated and shaped die members projecting into the annular opening.
  • the present invention relates to the art of producing corrugated tubes, preferably corrugated metal tubes.
  • corrugated metal tubing is highly desirable for a variety of purposes, in particular bellows and heat transfer applications.
  • corrugated or ribbed tubing is capable of yielding increased thermal efficiency for heat transfer applications. This is highly advantageous in many areas, particularly in saline water distillation apparatuses in view of the increasing demand for fresh water in many areas of the world.
  • corrugated tubing wherein the corrugations are both inside and outside the tube wall since this insures increased thermal efficiency for heat transfer by developing gross turbulent flow inside the tube in conjunction with exposing high surface area outside the tube.
  • the method is seriously limited by the geometry of the tube, particularly the wall thickness from which the tube is made and the work hardening characteristics of the tube material.
  • the twisting methods are unsatisfactory with respect to thin walled tubing and are constrained by the work hardening capacity of the particular metal.
  • these methods are significantly limited with respect to the variety of metals with which they can be used and are generally less effective with respect to welded tubing.
  • Twisting methods are also unsatisfactory in that they often cause significant amounts of metal flow to occur which results in localized strain markings, especially at the root of the threads. This accelerates corrosion and in cases where metal imperfections exist, this causes localized fracture.
  • Some art methods utilize a helically configurated die plate which is rotated about the tubing. Conventionally, when these apparatuses are used, particularly on stainless steel tubing, difficulties have been encountered with seizing of the die plate and the tubing. In addition, these methods often deform the tube due to the considerable pressure of the die plate.
  • An additional object of the present invention is to provide an improved corrugated tubing which is inexpensive to produce and is characterized by increased thermal efficiency.
  • FIG. 1 is a side view of the apparatus of the present invention
  • FIG. 2 is a side view of the inner frame of the apparatus of the present invention, with the cover plate removed;
  • FIG. 3 is a front view of a die of the present invention, with portions shown in section;
  • FIG. 4 is a sectional view of the gear and nut-assembly for causing axial motion of the inner frame
  • FIG. 5 is a side view of a portion of tubing produced in accordance with the present invention.
  • FIG. 6 is a sectional view along the lines of VIVI of FIG. 5;
  • FIG. 7 is a sectional view similar to FIG. 6 showing an alternate embodiment of the tubing of the present invention.
  • the apparatus of the present invention has an outer frame 1 having forward legs 2 and rearward legs 3. Forward end plate 4 is attached to forward legs 2 and rearward end plate 5 is attached to rearward legs 3.
  • Forward legs 2 and forward end plate 4 are spaced from rearward legs 3 and rearward end plate 5.
  • Stationary feed screw 6 is affixed to forward end plate 4 via plate 7 and nuts 8 and runs from forward end plate 4 to rearward end plate 5 as shown in FIG. 1, with stationary feed screw 6 being firmly affixed to rearward end plate 5 by any desired means, such as a plate and nut similar to plate 7 and nuts 8.
  • stationary feed screw 6 runs the entire distance from forward end plate 4 to rearward end plate 5.
  • guide rails 9 are firmly affixed to forward end plate 4 and rearward end plate 5 by any desired means, such as clamps l0 and also run the entire distance from forward end plate 4 to rearward end plate 5.
  • Forward fixed clamp 11 is affixed to forward end plate 4 and rearward fixed clamp 12 is affixed to rearward end plate 5 via a plurality of screws 13 and 14, respectively.
  • the tube 15 to be corrugated is firmly held in clamps 11 and 12. Screws 13 and 14 may be loosened to allow easy removal of tube 15. If desired, only the forward portion of tube 15 need be held in clamp 11 and the rearward portion of tube 15 may be left free or unsecured.
  • a mandrel 16 shown in FIG. 3 is firmly held inside tube 15 in order to prevent collapse of hollow tube 15 during the corrugating operation and to insure that a core of fixed diameter remains open along the center of the tube.
  • clamps l1 and 12 associated with clamps l1 and 12 are means for firmly holding mandrel 16, not shown.
  • clamp 11 may have a larger rearward annular space'for holding tube 15 and a smaller forward annular space for holding mandrel 16.
  • the clamp for holding mandrel 16 may be eliminated by swaging the end of tube 15 down to the internal diameter of. the mandrel.
  • the single clamp for holding tube 15 also may serve the dual purpose of holding mandrel 16. This provides the additional advantage of having a corrugated tube with the internal inlet diameter and/or internal outlet diameter the same as the minor internal diameter of the corrugated tube. 7
  • Outerframe 1 may be relatively moveable to enable the firm clamping of varying sized tubing, i.e., forward legs 2 and forward end plate 4 may be moveable relative to rearward legs 3 and rearward end plate 5.
  • rearward clamp 12 may be provided with a forwardly extending section for holding shorter sections of tubing.
  • Inner frame 20 is moveably mounted on outer frame 1 in any desired manner, for example, with forwardly projecting legs 21 riding on guide members 9.
  • a preferred construction is to have guide members 9 pass through annular openings 22 in downwardly projecting legs 21.
  • Table 23 sits on top of downwardly projecting legs 21 and is firmly affixed thereto.
  • High speed, high torque motor 24 is clamped to table 23 by nuts 25.
  • Means for activating motor 24 are provided, not shown.
  • Cover plates 26 and 27 are removeably mounted on table 23 to protect the internal mechanism.
  • FIG. 2 shows the inner frame assembly with rearward cover plate 26 removed and with portions of forward cover plate 27 broken away.
  • both the tube 15 and the stationary feed screws 6 pass through the inner frame 20.
  • the operation of the mechanism of the inner frame 20 is as follows.
  • the high speed, high torque motor 24 drives gear 30 which drives gear 31.
  • Gear 31 in turn drives gear 32 through counter shaft 33.
  • Counter shaft 33 is carried between fixed forward plate 34 and fixed rearward plate 35 which in turn are mounted on table 23.
  • Gear 32 in turn drives gear 36 which rotates an integral hollow shaft 37.
  • Shaft 37 drives holding chuck 38 which holds shaping die 39 seen in more detail in FIG. 3.
  • Shaping die 39 is rotatably mounted by any desired means, such as a standard three-jawed chuck arrangement shown in FIG. 2. Thus, when jaws 40 are loosened the shaping die may be removed.
  • the rotatably mounted die 39 contains removeable shaped die members 41 which project into annular opening 42 and are seated in chambers 43. As can be seen in FIG. 3, a plurality of shaped die members 41 are used which are preferably shaped nose screws. The shaped die members 41 thus may be readily removed from chambers 43.
  • Annular opening 42 is preferably a central annular opening. Tube 15 carrying a mandrel 16 passes through annular opening 42.
  • Means may be provided through a cam action to insure uniform penetration of members 41 into tube 15. This can be done either with the system stationary or concurrent with the start of rotation and advance.
  • tube 15 is inserted through die 39 with shaped die members 41 loosened. Shaped die members 41 are then tightened so that they indent tube 15 to the desired depth. Die 39 then rotates as the entire inner frame assembly 20 moves towards rearward endplate 5.
  • various die members may be provided to utilize 2, 3, 4 or more shaped die members 41 projecting into tube 15 in order to provide a 2, 3, 4 or more lead corrugated tube. It is preferred, naturally, that the shaped die members 41 be symmetrically arranged around the periphery of the die 30.
  • Gear 31 also drives gear 50.
  • Gear 50 drives sprocket gears 51 and 52 through counter shaft 53.
  • Counter shaft 53 is mounted between fixed plates 34 and 35.
  • sprocket gear 51 holds'chain drive 54 which rotates counter shaft 55.via sprocket gear 56 offset from sprocket gear 51.
  • the provision of two different sized sprocket gears 51 and 52 is to enable the use of more than one chain drive. Naturally, three or more varying sized sprocket gears may be provided.
  • one changes the chain and sprocket gear relationship one will change the ratio of axial to rotational movement, and, as will beseen hereinafter, one will thereby change the pitch and lead of the corrugations on the tube without changing the number of corrugations or threads per load, i.e., the length of travel for one revolution is changed without changing the amplitude or number of threads.
  • sprocket gear 56 mates with and is offset from sprocket gear 51 and carries chain drive 54.
  • Sprocket gear 52 mates with and is offset from sprocket gear 57 which may carry a chain drive when chain drive 54 is removed in order to alter the speed of the inner frame assembly.
  • the apparatus of the present invention rotates a forming die with the desired number of protrusions arranged uniformly around the circumference of the tubing to becorrugated.
  • the die is rotated along with axial motion, there is generated a configuration best described as a multiple lead screw wherein the number of leads is the number of protrusions and wherein the configuration of the thread is a function of the shape of the protrusions and wherein the pitch and lead is the function of the axial motion synchronized with the aforementioned rotation.
  • Counter shaft 55 is mounted on clamps S8 and 59 which are bolted to table 23 via bolts 60.
  • Counter shaft 55 drives gear 61 which is mated to and drives gear .62.
  • Rotating nut 63 is fixed to gear 62, shown clearly in FIG. 4. Nut 63 rotates around fixed screw 6 and causes the axial motion of inner frame 20, thereby achieving the aforementioned synchronization of axial motion with rotational motion of the die member 39.
  • the apparatus of the present invention attains a hollow corrugated tube having numberous highly desirable characteristics.
  • the corrugated tube 15 has a plurality of lands and grooves 71 extending helically around the cir- ID6OI2 0045 cumference thereof.
  • the tube has in cross section a plurality of uniform, symmetrical wave-like indentations 72.
  • FIGS. 5 and 6 show a tube attained with the use of three shaped die members 41 and thus having three independent, continuous grooves 71 extending radially.
  • FIG. 7 shows a cross section of a tube attained with four shaped die members 41 and thus having four independent, continuous grooves 71.
  • the tube shown in FIG. 7 has uniform symmetrical wave-like indentations 72 which partly overlap.
  • indentations which at least partly overlap, it is required that permanent twisting be superimposed on the tube while the forming isv being done.
  • the amount of twist is achieved by leaving the rear of tube 15 unrestrained and free to rotate due to the frictional forces imposed by the die. Therefore, in the embodiment of FIGS. 5 and 6, the rear of tube 15 was restrained and in the embodiment of FIG. 7, the rear of tube 15 was unrestrained.
  • rear clamp 12 can be used as a drag brake to control the amount of twist and thereby the amount of the overlap.
  • the tube attained in accordance with the present invention achieves significant increased heat transfer due to the increased surface area per unit length of tube and increased turbulence generated both inside and outside the tube. It is a particular advantage of the present invention that the wall thickness of the corrugated tubing is substantially uniform throughout, thus minimizing localized corrosion and local thin spots in strained areas. This is particularly significant in view of the difficulty in art methods in achieving wall thickness in highly strained areas, especially at the root of the threads.
  • the apparatus of the present invention may be used on a wide variety of metals and their alloys, for example, copper and its alloys, aluminum and its alloys, titanium and its alloys, iron and its alloys and so forth.
  • the apparatus of the present invention and resulting corrugated tube is not constrained by work hardening capacity of the metal, as are those which utilize the twisted tube concept.
  • the apparatus of the present invention may be readily employed as long as embodiment is therefore to be considered as in all.
  • An apparatus for corrugating tubes which comprises an outer frame; an inner frame movably mounted on said outer frame; a die rotatably mounted on said inner frame; said die having an annular opening therein through which passes the tube'to be corrugated and having one or more shaped die members wherein each of said die members form separate leads of said corrugated tube; said die member or members projecting into said annular opening and lying in the sameplane;
  • An apparatus including means for varying the speed of the axial movement of the die.
  • clamp means is integral with the outer frame and includes support means for holding a mandrel inside said tube.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Metal Extraction Processes (AREA)

Abstract

The disclosure teaches an improved apparatus for corrugating tubes and an improved corrugated tube produced thereby. The apparatus is characterized by having an inner frame moveably mounted on an outer frame, with a die rotatably mounted on the inner frame. The die has an annular opening through which passes the tube to be corrugated and shaped die members projecting into the annular opening.

Description

United States Patent Related US. Application Data Division of Ser. No. 840,564, March 25, 1969, Pat. No. 3,614,884, which is a division of Ser. No. 679,459, Oct. 31, 1967, abandoned,
References Cited UNITED STATES PATENTS 8/1905 Pogany et a]. ..72/100 12/1934 4/1936 Guarnaschelli ..72/77 Winter 1 1 Dec. 26, 1972 541 APPARATUS FOR vFORMING 2,023,417 12/1935 Guarnaschelli ..72/77 CORRUGATED TUBING 3,323,339 6 1967 Mattil ..72 78 [72] Inventor: Joseph winter, New Haven, Com 1,554,739 9/1925 Lewis ..72 77 [73 Assignee: Olin Corporation FOREIGN PATENTS OR APPLICATIONS [22] Filed. My 17 1970 449,486 6/1936 Great Britain ..72 102 55,042 4/1890 Germany ..72/78 [21] AppL'No; 62,768
Primary Examiner-Richard J. Herbst Attorney-Robert H. Bachman, Henry W. Cummings, Arthur N. Krein, Richard S. Strickler and George J. Koeser [57] ABSTRACT The disclosure teaches an improved apparatus for corrugating tubes and an improved corrugated tube produced thereby. The apparatus is characterized by having an inner frame moveably mounted on an outer frame, with a die rotatably mounted on the inner frame. The die has an annular opening through which passes the tube to be corrugated and shaped die members projecting into the annular opening.
7 Claims, 7 Drawing Figures PATENTED I972 3.707, 084
JOSEPH WIN TE R i m m ATTORNEY PATENTED um 26 m2 SHEET 2 BF 2 INVENTOR JOSEPH WINTER ATTORNEY Zw/x/ APPARATUS FOR FORMING CORRUGATED TUBING This application is a division of copending application Ser. No. 840,564, filed Mar. 25, 1969 now US. Pat. No. 3,614,884, which in turn is a division of copending application Ser. No. 679,459, filed Oct. 31, 1967, now abandoned.
The present invention relates to the art of producing corrugated tubes, preferably corrugated metal tubes.
As is well known, corrugated metal tubing is highly desirable for a variety of purposes, in particular bellows and heat transfer applications. For example, it is well known that corrugated or ribbed tubing is capable of yielding increased thermal efficiency for heat transfer applications. This is highly advantageous in many areas, particularly in saline water distillation apparatuses in view of the increasing demand for fresh water in many areas of the world.
It is especially desirable to utilize corrugated tubing wherein the corrugations are both inside and outside the tube wall since this insures increased thermal efficiency for heat transfer by developing gross turbulent flow inside the tube in conjunction with exposing high surface area outside the tube.
Numerous methods have been suggested for achieving corrugated tubing. These methods are, however, associated with one or more significant disadvantages.
Art methods for forming helically corrugated tubing from straight-walled tubing are frequently characterized by utilizing a twisting action on the tube in association with a die plate. This method, however, has serious shortcomings.
The method is seriously limited by the geometry of the tube, particularly the wall thickness from which the tube is made and the work hardening characteristics of the tube material. Thus, the twisting methods are unsatisfactory with respect to thin walled tubing and are constrained by the work hardening capacity of the particular metal. Furthermore, these methods are significantly limited with respect to the variety of metals with which they can be used and are generally less effective with respect to welded tubing.
Twisting methods are also unsatisfactory in that they often cause significant amounts of metal flow to occur which results in localized strain markings, especially at the root of the threads. This accelerates corrosion and in cases where metal imperfections exist, this causes localized fracture.
Some art methods utilize a helically configurated die plate which is rotated about the tubing. Conventionally, when these apparatuses are used, particularly on stainless steel tubing, difficulties have been encountered with seizing of the die plate and the tubing. In addition, these methods often deform the tube due to the considerable pressure of the die plate.
Accordingly, it is a principal object of the present invention to provide an improved apparatus for corrugating metal tubes and an improved corrugated tube produced thereby. I
It is an additional object of the present invention to provide an improved apparatus as aforesaid which is capable of being utilized with a variety of wall thicknesses and with a variety of materials.
It is a further object of the present invention to provide an apparatus as aforesaid which is not limited by the work hardening characteristics of the particular metal and which may be conveniently utilized with welded tubing.
It is a still further object of the present invention to provide an apparatus as aforesaid which is relatively inexpensive and convenient to operate on a commercial basis.
An additional object of the present invention is to provide an improved corrugated tubing which is inexpensive to produce and is characterized by increased thermal efficiency.
Further objects and advantages of the-present invention will appear hereinafter.
The present invention will be further understood by reference to the following specification and drawings which form a part thereof wherein:
FIG. 1 is a side view of the apparatus of the present invention;
FIG. 2 is a side view of the inner frame of the apparatus of the present invention, with the cover plate removed;
FIG. 3 is a front view of a die of the present invention, with portions shown in section;
FIG. 4 is a sectional view of the gear and nut-assembly for causing axial motion of the inner frame;
FIG. 5 is a side view of a portion of tubing produced in accordance with the present invention;
FIG. 6 is a sectional view along the lines of VIVI of FIG. 5; and
FIG. 7 is a sectional view similar to FIG. 6 showing an alternate embodiment of the tubing of the present invention.
Referring to FIGS. 1 through 4, the apparatus of the present invention has an outer frame 1 having forward legs 2 and rearward legs 3. Forward end plate 4 is attached to forward legs 2 and rearward end plate 5 is attached to rearward legs 3.
Forward legs 2 and forward end plate 4 are spaced from rearward legs 3 and rearward end plate 5. Stationary feed screw 6 is affixed to forward end plate 4 via plate 7 and nuts 8 and runs from forward end plate 4 to rearward end plate 5 as shown in FIG. 1, with stationary feed screw 6 being firmly affixed to rearward end plate 5 by any desired means, such as a plate and nut similar to plate 7 and nuts 8. As shown in FIG. 1, stationary feed screw 6 runs the entire distance from forward end plate 4 to rearward end plate 5. Similarly, guide rails 9 are firmly affixed to forward end plate 4 and rearward end plate 5 by any desired means, such as clamps l0 and also run the entire distance from forward end plate 4 to rearward end plate 5.
Forward fixed clamp 11 is affixed to forward end plate 4 and rearward fixed clamp 12 is affixed to rearward end plate 5 via a plurality of screws 13 and 14, respectively. The tube 15 to be corrugated is firmly held in clamps 11 and 12. Screws 13 and 14 may be loosened to allow easy removal of tube 15. If desired, only the forward portion of tube 15 need be held in clamp 11 and the rearward portion of tube 15 may be left free or unsecured.
In operation, a mandrel 16 shown in FIG. 3 is firmly held inside tube 15 in order to prevent collapse of hollow tube 15 during the corrugating operation and to insure that a core of fixed diameter remains open along the center of the tube. Accordingly, associated with clamps l1 and 12 are means for firmly holding mandrel 16, not shown. For example, clamp 11 may have a larger rearward annular space'for holding tube 15 and a smaller forward annular space for holding mandrel 16. If desired, the clamp for holding mandrel 16 may be eliminated by swaging the end of tube 15 down to the internal diameter of. the mandrel. Thus, the single clamp for holding tube 15 also may serve the dual purpose of holding mandrel 16. This provides the additional advantage of having a corrugated tube with the internal inlet diameter and/or internal outlet diameter the same as the minor internal diameter of the corrugated tube. 7
Outerframe 1 may be relatively moveable to enable the firm clamping of varying sized tubing, i.e., forward legs 2 and forward end plate 4 may be moveable relative to rearward legs 3 and rearward end plate 5. Alternatively, or in addition, rearward clamp 12 may be provided with a forwardly extending section for holding shorter sections of tubing.
Inner frame 20 is moveably mounted on outer frame 1 in any desired manner, for example, with forwardly projecting legs 21 riding on guide members 9. A preferred construction is to have guide members 9 pass through annular openings 22 in downwardly projecting legs 21. Table 23 sits on top of downwardly projecting legs 21 and is firmly affixed thereto. High speed, high torque motor 24 is clamped to table 23 by nuts 25. Means for activating motor 24 are provided, not shown. Cover plates 26 and 27 are removeably mounted on table 23 to protect the internal mechanism.
FIG. 2 shows the inner frame assembly with rearward cover plate 26 removed and with portions of forward cover plate 27 broken away.
As can be seen from FIG. 1, both the tube 15 and the stationary feed screws 6 pass through the inner frame 20.
The operation of the mechanism of the inner frame 20 is as follows. The high speed, high torque motor 24 drives gear 30 which drives gear 31. Gear 31 in turn drives gear 32 through counter shaft 33. Counter shaft 33 is carried between fixed forward plate 34 and fixed rearward plate 35 which in turn are mounted on table 23.
Gear 32 in turn drives gear 36 which rotates an integral hollow shaft 37. Shaft 37 drives holding chuck 38 which holds shaping die 39 seen in more detail in FIG. 3. Shaping die 39 is rotatably mounted by any desired means, such as a standard three-jawed chuck arrangement shown in FIG. 2. Thus, when jaws 40 are loosened the shaping die may be removed.
The rotatably mounted die 39 contains removeable shaped die members 41 which project into annular opening 42 and are seated in chambers 43. As can be seen in FIG. 3, a plurality of shaped die members 41 are used which are preferably shaped nose screws. The shaped die members 41 thus may be readily removed from chambers 43. Annular opening 42 is preferably a central annular opening. Tube 15 carrying a mandrel 16 passes through annular opening 42.
Means may be provided through a cam action to insure uniform penetration of members 41 into tube 15. This can be done either with the system stationary or concurrent with the start of rotation and advance. The
latter can create a gradual, smooth approach to the final configuration desired.
In operation, tube 15 is inserted through die 39 with shaped die members 41 loosened. Shaped die members 41 are then tightened so that they indent tube 15 to the desired depth. Die 39 then rotates as the entire inner frame assembly 20 moves towards rearward endplate 5.
If desired, naturally, various die members may be provided to utilize 2, 3, 4 or more shaped die members 41 projecting into tube 15 in order to provide a 2, 3, 4 or more lead corrugated tube. It is preferred, naturally, that the shaped die members 41 be symmetrically arranged around the periphery of the die 30. I
It is a principal advantage of the present invention that axial movement of inner frame 20 is achieved synchronously with rotational movement of die 39. This may be achieved in the following manner.
Gear 31 also drives gear 50. Gear 50 drives sprocket gears 51 and 52 through counter shaft 53. Counter shaft 53 is mounted between fixed plates 34 and 35.
As shown in FIG. 2, sprocket gear 51 holds'chain drive 54 which rotates counter shaft 55.via sprocket gear 56 offset from sprocket gear 51. The provision of two different sized sprocket gears 51 and 52 is to enable the use of more than one chain drive. Naturally, three or more varying sized sprocket gears may be provided. Thus, when one changes the chain and sprocket gear relationship, one will change the ratio of axial to rotational movement, and, as will beseen hereinafter, one will thereby change the pitch and lead of the corrugations on the tube without changing the number of corrugations or threads per load, i.e., the length of travel for one revolution is changed without changing the amplitude or number of threads. Thus, sprocket gear 56 mates with and is offset from sprocket gear 51 and carries chain drive 54. Sprocket gear 52 mates with and is offset from sprocket gear 57 which may carry a chain drive when chain drive 54 is removed in order to alter the speed of the inner frame assembly.
Thus, it will be seen that the apparatus of the present invention rotates a forming die with the desired number of protrusions arranged uniformly around the circumference of the tubing to becorrugated. When the die is rotated along with axial motion, there is generated a configuration best described as a multiple lead screw wherein the number of leads is the number of protrusions and wherein the configuration of the thread is a function of the shape of the protrusions and wherein the pitch and lead is the function of the axial motion synchronized with the aforementioned rotation.
Counter shaft 55 is mounted on clamps S8 and 59 which are bolted to table 23 via bolts 60. Counter shaft 55 drives gear 61 which is mated to and drives gear .62. Rotating nut 63 is fixed to gear 62, shown clearly in FIG. 4. Nut 63 rotates around fixed screw 6 and causes the axial motion of inner frame 20, thereby achieving the aforementioned synchronization of axial motion with rotational motion of the die member 39.
As can be seen from FIGS. 5, 6, and 7, the apparatus of the present invention attains a hollow corrugated tube having numberous highly desirable characteristics.
Thus, the corrugated tube 15 has a plurality of lands and grooves 71 extending helically around the cir- ID6OI2 0045 cumference thereof. The tube has in cross section a plurality of uniform, symmetrical wave-like indentations 72.
It should be noted that the wall thickness of the corrugated tube is approximately uniform throughout and grooves 71 comprise a plurality of independent, continuous grooves extending helically along the circumference of tube 15, with each groove being in fixed spaced relationship to each other groove. The number of grooves depends upon the number of shaped die members 41 which are used. Thus, FIGS. 5 and 6 show a tube attained with the use of three shaped die members 41 and thus having three independent, continuous grooves 71 extending radially. FIG. 7 shows a cross section of a tube attained with four shaped die members 41 and thus having four independent, continuous grooves 71.
It is noted that the tube shown in FIG. 7 has uniform symmetrical wave-like indentations 72 which partly overlap. In order to have indentations which at least partly overlap, it is required that permanent twisting be superimposed on the tube while the forming isv being done. The amount of twist is achieved by leaving the rear of tube 15 unrestrained and free to rotate due to the frictional forces imposed by the die. Therefore, in the embodiment of FIGS. 5 and 6, the rear of tube 15 was restrained and in the embodiment of FIG. 7, the rear of tube 15 was unrestrained. If desired, rear clamp 12 can be used as a drag brake to control the amount of twist and thereby the amount of the overlap.
The tube attained in accordance with the present invention achieves significant increased heat transfer due to the increased surface area per unit length of tube and increased turbulence generated both inside and outside the tube. It is a particular advantage of the present invention that the wall thickness of the corrugated tubing is substantially uniform throughout, thus minimizing localized corrosion and local thin spots in strained areas. This is particularly significant in view of the difficulty in art methods in achieving wall thickness in highly strained areas, especially at the root of the threads.
In addition, the apparatus of the present invention may be used on a wide variety of metals and their alloys, for example, copper and its alloys, aluminum and its alloys, titanium and its alloys, iron and its alloys and so forth. The apparatus of the present invention and resulting corrugated tube is not constrained by work hardening capacity of the metal, as are those which utilize the twisted tube concept. The apparatus of the present invention may be readily employed as long as embodiment is therefore to be considered as in all.
respects illustrative and not restrictive, the scope of the invention being indicated 1; the appended claims, and all changes which come wt in the meanlng and range of equivalency are intended to be embraced therein.
What is claimed isi 1. An apparatus for corrugating tubes which comprises an outer frame; an inner frame movably mounted on said outer frame; a die rotatably mounted on said inner frame; said die having an annular opening therein through which passes the tube'to be corrugated and having one or more shaped die members wherein each of said die members form separate leads of said corrugated tube; said die member or members projecting into said annular opening and lying in the sameplane;
means for rotating said die; means for axially moving said die synchronously with the rotational movement thereof; means for changing the pitch of the corrugations by changing the ratio of axial to rotational movement; and clamp means for holding the tube to be corrugated.
2. An apparatus according to claim 1 wherein said means for axially moving said die, axially moves the inner frame.
3. An apparatus according to claim 1 including means for varying the speed of the axial movement of the die.
4. An apparatus according to claim 1 wherein said clamp means is integral with the outer frame and includes support means for holding a mandrel inside said tube.
5. An apparatus according to claim 1 wherein said die has three relatively moveable shaped die members projecting into said annular opening.
6. An apparatus according to claim 1 wherein said die has four relatively moveable shaped die members projecting into said annular opening.
7. An apparatus according to claim 1 wherein multiple die members are incorporated.

Claims (7)

1. An apparatus for corrugating tubes which comprises an outer frame; an inner frame movably mounted on said outer frame; a die rotatably mounted on said inner frame; said die having an annular opening therein through which passes the tube to be corrugated and having one or more shaped die members wherein each of said die members form separate leads of said corrugated tube; said die member or members projecting into said annular opening and lying in the same plane; means for rotating said die; means for axially moving said die synchronously with the rotational movement thereof; means for changing the pitch of the corrugations by changing the ratio of axial to rotational movement; and clamp means for holding the tube to be corrugated.
2. An apparatus according to claim 1 wherein said means for axially moving said die, axially moves the inner frame.
3. An apparatus according to claim 1 including means for varying the speed of the axial movement of the die.
4. An apparatus according to claim 1 wherein said clamp means is integral with the outer frame and includes support means for holding a mandrel inside said tube.
5. An apparatus according to claim 1 wherein said die has three relatively moveable shaped die members projecting into said annular opening.
6. An apparatus according to claim 1 wherein said die has four relatively moveable shaped die members projecting into said annular opening.
7. An apparatus according to claim 1 wherein multiple die members are incorporated.
US62768A 1970-07-17 1970-07-17 Apparatus for forming corrugated tubing Expired - Lifetime US3707084A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US6276870A 1970-07-17 1970-07-17

Publications (1)

Publication Number Publication Date
US3707084A true US3707084A (en) 1972-12-26

Family

ID=22044668

Family Applications (1)

Application Number Title Priority Date Filing Date
US62768A Expired - Lifetime US3707084A (en) 1970-07-17 1970-07-17 Apparatus for forming corrugated tubing

Country Status (1)

Country Link
US (1) US3707084A (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2647994A1 (en) * 1976-02-20 1977-08-25 Spiral Tubing Corp METHOD OF FORMING SCREW-SHAPED PIPES
DE3310133C1 (en) * 1983-03-21 1984-11-08 Packless Metal Hose, Inc., Waco, Tex. Method and apparatus for the helical corrugation of metallic tubes
ITRA20110019A1 (en) * 2011-06-14 2012-12-15 Marco Senni MACHINE FOR THE PRODUCTION OF CORRUGATED TUBES FOR COLD PLASTIC DEFORMATION.

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US798448A (en) * 1904-02-15 1905-08-29 Alexander Pogany Mechanism for corrugating tubes.
US1554739A (en) * 1920-05-24 1925-09-22 United Metal Hose Company Inc Method and apparatus for making corrugated tubes
US1983468A (en) * 1930-04-02 1934-12-04 Sprague Specialties Co Process and apparatus for making corrugated tubes
US2023417A (en) * 1933-12-11 1935-12-10 Packless Metal Products Corp Die for and method of making spirally corrugated tubing
US2037378A (en) * 1933-12-06 1936-04-14 Packless Metal Products Corp Method of and means for making spirally corrugated tubing
GB449486A (en) * 1935-01-19 1936-06-29 Jacob Frank Henri Renard Improvements relating to the manufacture of corrugated metal tubes
US3323339A (en) * 1963-10-30 1967-06-06 Phelps Dodge Copper Prod Method and apparatus for corrugating tubes

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US798448A (en) * 1904-02-15 1905-08-29 Alexander Pogany Mechanism for corrugating tubes.
US1554739A (en) * 1920-05-24 1925-09-22 United Metal Hose Company Inc Method and apparatus for making corrugated tubes
US1983468A (en) * 1930-04-02 1934-12-04 Sprague Specialties Co Process and apparatus for making corrugated tubes
US2037378A (en) * 1933-12-06 1936-04-14 Packless Metal Products Corp Method of and means for making spirally corrugated tubing
US2023417A (en) * 1933-12-11 1935-12-10 Packless Metal Products Corp Die for and method of making spirally corrugated tubing
GB449486A (en) * 1935-01-19 1936-06-29 Jacob Frank Henri Renard Improvements relating to the manufacture of corrugated metal tubes
US3323339A (en) * 1963-10-30 1967-06-06 Phelps Dodge Copper Prod Method and apparatus for corrugating tubes

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2647994A1 (en) * 1976-02-20 1977-08-25 Spiral Tubing Corp METHOD OF FORMING SCREW-SHAPED PIPES
DE3310133C1 (en) * 1983-03-21 1984-11-08 Packless Metal Hose, Inc., Waco, Tex. Method and apparatus for the helical corrugation of metallic tubes
ITRA20110019A1 (en) * 2011-06-14 2012-12-15 Marco Senni MACHINE FOR THE PRODUCTION OF CORRUGATED TUBES FOR COLD PLASTIC DEFORMATION.

Similar Documents

Publication Publication Date Title
US3578075A (en) Corrugated tubing
US5339670A (en) Apparatus and method for bending tubing
US4846392A (en) Continuously variable speed, die-drawing device and process for metal, composites, and the like, and compositions therefrom
US3289451A (en) Method and apparatus for forming internal helical ribbing in a tube
US3707084A (en) Apparatus for forming corrugated tubing
CN106272160A (en) A kind of automatic centering clamping mechanism
US3842635A (en) Tube rolling mill for producing tubing with various external configurations
US3986381A (en) Bending head for a tube bending machine
US3614884A (en) Process for forming corrugated tubing
US4287743A (en) Method and device for the manufacture of helical rotor blanks for helical gear machines
US4299106A (en) Finned tubing
CN208050660U (en) A kind of building steel tube apparatus for bending
US3855832A (en) Method of and apparatus for manufacturing integral finned tubing
CN2150937Y (en) Propelling pipe and bar drawbench
US2310091A (en) Machine for and method of bending tubing
US3611772A (en) Apparatus for rolling toothed parts
US3845649A (en) Tube production
US3693394A (en) Process in continuous extrusion of metals and the like
US3572078A (en) Variable orifice, zero friction draw die
SU667280A1 (en) Machine for helical bending of tubes
CN219309741U (en) Shaping machine for processing aluminum profile
SU425427A1 (en) Method of drawing pipes, round stock and other profiles
CN217165895U (en) Sizing device for welded pipe
DE1777103A1 (en) Device for forming corrugated tubes
US447582A (en) robebtson