US3405760A - Heat exchange apparatus and method of making same - Google Patents

Heat exchange apparatus and method of making same Download PDF

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US3405760A
US3405760A US535090A US53509066A US3405760A US 3405760 A US3405760 A US 3405760A US 535090 A US535090 A US 535090A US 53509066 A US53509066 A US 53509066A US 3405760 A US3405760 A US 3405760A
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heat exchange
shaft
tube
portions
strips
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US535090A
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Robert L Smith
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SPX Corp
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Chemetron Corp
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Priority to US738755*A priority patent/US3447599A/en
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Assigned to CHEMETRON PROCESS EQUIPMENT, INC. reassignment CHEMETRON PROCESS EQUIPMENT, INC. CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). EFFECTIVE MARCH 24, 1980. Assignors: CHEMETRON-PROCESS EQUIPMENT, INC.,
Assigned to AMCA INTERNATIONAL CORPORATION, DARTMOUTH NATIONAL BANK BLDG., HANOVER, NEW HAMPSHIRE, 03755, A CORP. reassignment AMCA INTERNATIONAL CORPORATION, DARTMOUTH NATIONAL BANK BLDG., HANOVER, NEW HAMPSHIRE, 03755, A CORP. ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: CHEMETRON PROCESS EQUIPMENT, INC. A DE CORP.
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F19/00Preventing the formation of deposits or corrosion, e.g. by using filters or scrapers
    • F28F19/008Preventing the formation of deposits or corrosion, e.g. by using filters or scrapers by using scrapers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16DCOUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
    • F16D3/00Yielding couplings, i.e. with means permitting movement between the connected parts during the drive
    • F16D3/50Yielding couplings, i.e. with means permitting movement between the connected parts during the drive with the coupling parts connected by one or more intermediate members
    • F16D3/78Yielding couplings, i.e. with means permitting movement between the connected parts during the drive with the coupling parts connected by one or more intermediate members shaped as an elastic disc or flat ring, arranged perpendicular to the axis of the coupling parts, different sets of spots of the disc or ring being attached to each coupling part, e.g. Hardy couplings
    • F16D3/79Yielding couplings, i.e. with means permitting movement between the connected parts during the drive with the coupling parts connected by one or more intermediate members shaped as an elastic disc or flat ring, arranged perpendicular to the axis of the coupling parts, different sets of spots of the disc or ring being attached to each coupling part, e.g. Hardy couplings the disc or ring being metallic

Definitions

  • ABSTRAET OF THE DISELOSURE Apparatus having a treatment tube in which a scrapercarrying shaft is mounted at its ends to flexible members and about which a spirally mounted baffie arrangement provides a helical channel for a fiowable heat exchange medium.
  • This invention relates to heat exchange apparatus and method of making same.
  • heat exchange apparatus having a generally cylindrical elongated tube, means for passing a heat exchange medium into heat exchange relationship with the tube, inlet and outlet means for introducing and discharging fiowable materials from the tube, an elongated rotatable shaft disposed in the tube, mixing means carried by the shaft, and spaced apart means to mount the ends of the shaft for permitting flexure of the shaft, the shaft being unsupported between its ends.
  • fiexure permitting mounting means includes a pair of axially aligned shaft sections and flexible joints connecting the shaft and the shaft sections.
  • method of making heat exchange apparatus includes providing a pair of first and second strips, each strip having generally parallel cuts terminating short on one side edge to form a marginal flange portion and a series of bafiie portions, the bafile portions being disposed obliquely with respect to respective marginal flange portions, placing the marginal flange portions of the first and second strips in face-to-face relationship with respect to each other and so that the bafile portions of the first strip lie alongside the bafiie portions of the second strip, joining the first and second strips to each other, Wrapping the joined first and second strips spirally about a heat exchange tube, securing the joined strips to the tube, and sliding the tube and the first and second strips into a tubular shell.
  • baffle means disposed in a generally spiral arrangement between the tube and a surrounding shell so that a fiowable heat exchange medium can pass in a spiral path in heat exchange relationship in the tube.
  • FIGURE 1 is a perspective view of heat exchange apparatus in accordance with the invention, together with drive means therefor;
  • FIGURE 2 is a broken away sectional view of the heat exchange apparatus shown in FIGURE 1;
  • FIGURE 3 is a sectional view taken along line 33 of FIGURE 2;
  • FIGURE 4 is a sectional view taken along line 44 of FIGURE 2;
  • FIGURE 5 is an enlarged sectional view showing a flexible couplin or joint and fragmentary portions of a shaft and a shaft section, also shown in FIGURES 2 and 4, with the shaft and shaft sections being joined axially aligned;
  • FIGURE 7 is a view of one plate of the flexible joint taken along line 7--7 of FIGURE 6;
  • FIGURE 8 is an elevational view showing one of the rings also shown in FIGURES 2, 5 and 6;
  • FIGURE 9 is a fragmentary plan view of a pair of joined strips, before being wrapped about a heat exchange tube to form bafiie structure;
  • FIGURE 10 is a fragmentary perspective view showing a portion of a heat exchange tube to which the bafiie structure shown in FIGURE 9 is secured in a spiral arrangement;
  • FIGURE 11 is a sectional view showing the baflle structure secured to the heat exchange tube
  • FIGURE 12 is a sectional view taken along line 12-12 of FIGURE 11;
  • FIGURE 13 is a sectional View taken along line i3I3 of FIGURE 12.
  • FIGURE 1 there is shown heat exchange apparatus generally indicated at 20, together with an electric drive motor 21 and a speed reducer 22.
  • the heat exchange apparatus has an elongated tubular shell 23 spaced about an elongated heat exchange tube 24.
  • Inlet and outlet conduits 25 and 26 can introduce a flowable heat exchange medium into the space 27 between the shell 23 and the tube 24.
  • the space 27 is closed off at one end by an annular spacer ring 28 and at its other end by seal structure generally indicated at 29.
  • Batlie means 34 shown in greater detail in FIGURES 9 through 13 and described hereinafter, causes the heat exchange medium to pass in a spiral path in the space 27.
  • Mixing space 33 defined by the tube 24 is closed off by plates 39 and 40 having respective, generally axially aligned, tubular central sections 41 and 2.
  • Individual seal elements 43 and 44 and bearings 36' and 37' are disposed between the central section 41 and the shaft section 34 and between the central portion 42 and the shaft section 35.
  • the pressure which the seals 43 and 44 exert against the shaft sections 34 and 35 can be increased or decreased by tightening or loosening spaced apart respective threaded fasteners 45 and 46.
  • a cup-shaped section 47 secured to the plate 39 has a central bore 48 through which the shaft section 34 extends, and, a cup-shaped section 49 secured to the plate 4% has a central bore 50 through which the shaft section 35 extends.
  • the bearings 36 and 37 are secured to respective sections 47 and 49.
  • the bottoms of sections 47 and 49 have respective outlet ports 51 and 52. Should any lubricant from the bearings 36 and/ or 37 find its way into the sections 47 and/ or 49 it will gravitate to the bottom of respective sections 47 and/or 49 and pass out of the ports 51 and 52. In like manner, should any material from within the space 38 leak past the seal elements 43 or 44, the leaked material will gravitate to the bottoms of the respective sections 47 and/ or 49 and pass out through respective ports 51 and/ or 52. It is apparent that the bearings 36 and 37 are completely isolated from the mixing space 38.
  • bearings 36 and 37' disposed inwardly of respective seal element 43 and 44 along respective shaft sections 43 and 44, can be omitted; and a rigidly mounted bearing (not shown) can be disposed about each of the respective shaft sections 34 and outwardly of respective seal elements 43 and 44 and spaced apart from respective bearings 36 and 37.
  • An annular ring 57 is secured to the exterior of the tube 24.
  • An annular ring 58 slidably received about the tube 24 for axial movement serves to compress individual seal elements 66 when spaced apart screws 61, only one of which is shown in FIG. 2, are tightened.
  • the flexible joint 33 includes a pair of plates 62 and 63.
  • the shaft 31 is suitably joined to a plate 64, as by welding and the plate 64 is rigidly secured to the plate 62 by means of spaced apart threaded fasteners 65.
  • the shat section 35 is suitably secured to a plate 66 which is rigidly connected to the plate 63 by spaced apart threaded fasteners 67.
  • a plurality of thin resilient rings 68 composed for example of spring steel, one of which is shown in FIGURE 8, have spaced apart apertures 69.
  • each ring 68 The apertures 69 of each ring 68 are aligned with the corresponding aperture 69 of the next adjacent ring 68, and the apertures 69 are aligned with bores 62' and 63' in the respective plates 62 and 63.
  • Connectors 70 secure the rings 68 rigidly to the plate 62 at spaced apart locations
  • connectors 71 secure the rings 68 rigidly to the plate 63 at spaced apart locations.
  • the connectors 70 and 71 are identical to each other, each including a bolt 72, a pair of washers 73 which straddle the set of rings 68 between the plates 62 and 63, and a nut 74 threadably received by the machine screw 72.
  • Connectors 70 and '71 extend freely into enlarged bores 70' and 71' in plates 63 and 62, respectively.
  • Flexible joints 32 and 33 permit the shaft 31 to be misaligned with the shaft section 35 because the portion of the set of rings 68 between next adjacent connectors 70 and 71 can flex as depicted in FIGURE 6.
  • the flexible couplings or joints 32 and 33 are commercially available and are disclosed in Engineering Catalog 760 September 1962 of the Thomas Coupling Division Chain Belt Company, Warren, Pa., now the Thomas Coupling Division, Rex Chainbelt Inc.
  • Other suitable types of joints can be used if desired, such as universal joints.
  • the shaft 31 is driven by means of the motor 21 through the speed reducer 22 coupled to the shaft section 35.
  • the scraper blades 53 scrape the inner surface of the heat exchange tube 24.
  • Flowable materials can pass through the inlet conduit 55, into and through mixing space 38, and the mixed materials pass out through the outlet conduit 56.
  • the shaft 31 is relatively long and is unsupported throughout its length except at its ends, the shaft 31 is subject to deflection due to its own weight and the weight of the scraper blades 53 and mounts 54, any unbalanced forces exerted by materials being mixed, and any thermal stresses.
  • the flexible joints 32 and 33 permit the shaft 31 to flex as the shaft 31 rotates.
  • the baflle structure 30 is shown to include a pair of strips generally indicated at St) and 81.
  • the strips and 81 include generally parallel cuts 82 which terminate short of one side edge 83 at respective enlarged holes 84.
  • the cuts 82 are so narrow that they are merely slits in the strips 80 and 81.
  • the cuts 82 form a marginal flange portion 85 and a series of baflle portions 86.
  • the marginal flange portion 85 of the strip 81 is disposed in generally face-toface relationship against the marginal flange portion 85 of the strip 88.
  • the bafile portions 86 of the strip 81 lie alongside the baflle portions 86 of the strip 80.
  • the baflle portions 86 are staggered with respect to the baffle portions 86 of the strip 80 in a spiral direction as seen for example in FIGURES 10 and 12.
  • the strips 86 and 81 are joined to each other as for example by spot welds 87.
  • the spot welds 87 join the marginal flange portions 85 of the strips 80 and 81 to each other at spaced apart locations.
  • Connectors, in the form of tablike elements 88, joined at spaced apart locations to the marginal flange portion 85 of the strip 81 as by spot welds 89, are each secured as by a spot weld to the exterior of the heat exchange tube 24.
  • the strips 80 and 81 are formed of relatively thin flexible resilient metal such as stainless steel.
  • the baflle portions 86 of the strips 86 and 81 are sufficiently long and extend obliquely with respect to the heat exchange tube 24 and the surrounding shell 23 to be flexed and urged into contact with both the heat exchange tube and the shell 23.
  • the battle portions 86 are slightly bent as best seen in FIGURE 13.
  • the strips 88 and 81 having generally parallel cuts 82 terminating short of one side edge 83 to form marginal flange portions 85 and a series of baffle portions 86 are provided.
  • the baffle portions 86 are disposed obliquely with respect to respective marginal flange portions of the strips 86 and 81 are placed in face-to-face relationship with respect to each other so that baffle portions 86 of the strip 81 lie alongside the baflle portions of the second strip 80.
  • the strips 86 and 81 are joined to each other, and the joined strips 80 and 81 are wrapped spirally about the heat exchange tube 24, and the joined strips 80 and 81 are secured to the heat exchange tube 24.
  • the tube 24 and its strips 80 and 81 are slid into the shell 23, or the shell 23 is slid over the tube 24 and its strips 80 and 81.
  • the battle means 30 provides a spiral path or channel in the space 27 through which the heat exchange medium can pass.
  • the battle means 30 provides a spiral path or channel in the space 27 through which the heat exchange medium can pass.
  • leakage between baflle portions 86 of adjacent strips is minimal.
  • rigid baflles were employed instead, a certain amount of clearance between the baffle means and the inside of the surrounding shell would be required. This would cause leakage or short circuiting of the heat exchange medium, thereby reducing the heat transfer efliciency.
  • any such clearance which would be required if the bafile means were to be rigid would thus present a definite disadvantage.
  • each of said couplings including a flexible joint
  • said mixing means including scraper blades for scraping the inner surface of said tube.

Description

R. 1.. SMITH 3,405,760
HEAT EXCHANGE APPARATUS AND METHOD OF MAKING SAME Oct. 15, 1968 3 Sheets-Sheet 1 Filed March 17, 1966 INVENTOR ROBERT L. SMITH ATTORNEY Oct. 15, 1968 s 1 3,405,760
HEAT EXCHANGE APPARATUS AND METHOD OF MAKING SAME Filed March 17, 1966 5 Sheets-Sheet 2 INVENTOR ROBERT 'L. SMITH ATTORNEY R. L. SMlTH Get. 15, 1968 HEAT EXCHANGE APPARATUS AND METHOD OF MAKING SAME 5 Sheets-Sheet 5 Filed March 17, 1966 INVENTOR ROBERT L. SMITH ATTORNEY United States Patent 3,405,760- HEAT EXCHANGE APPARATUS AND METHOD OF MAKING SAME Robert L. Smith, Louisville, Ky, assignor to Chemetron Corporation, Chicago, 111., a corporation of Delaware Filed Mar. 17, 1966, Ser. No. 535,090 2 Claims. (Cl. 16594) ABSTRAET OF THE DISELOSURE Apparatus having a treatment tube in which a scrapercarrying shaft is mounted at its ends to flexible members and about which a spirally mounted baffie arrangement provides a helical channel for a fiowable heat exchange medium.
This invention relates to heat exchange apparatus and method of making same.
In accordance with the invention there is provided heat exchange apparatus having a generally cylindrical elongated tube, means for passing a heat exchange medium into heat exchange relationship with the tube, inlet and outlet means for introducing and discharging fiowable materials from the tube, an elongated rotatable shaft disposed in the tube, mixing means carried by the shaft, and spaced apart means to mount the ends of the shaft for permitting flexure of the shaft, the shaft being unsupported between its ends. In particular, the fiexure permitting mounting means includes a pair of axially aligned shaft sections and flexible joints connecting the shaft and the shaft sections.
In accordance with the invention method of making heat exchange apparatus includes providing a pair of first and second strips, each strip having generally parallel cuts terminating short on one side edge to form a marginal flange portion and a series of bafiie portions, the bafile portions being disposed obliquely with respect to respective marginal flange portions, placing the marginal flange portions of the first and second strips in face-to-face relationship with respect to each other and so that the bafile portions of the first strip lie alongside the bafiie portions of the second strip, joining the first and second strips to each other, Wrapping the joined first and second strips spirally about a heat exchange tube, securing the joined strips to the tube, and sliding the tube and the first and second strips into a tubular shell. In carrying out the method of the invention there are provided baffle means disposed in a generally spiral arrangement between the tube and a surrounding shell so that a fiowable heat exchange medium can pass in a spiral path in heat exchange relationship in the tube. There are provided means for securing the first and second strips to each other, with the battle portions of the first and second strips spanning the distance between the tube and the shell and lying alongside each other. More particularly, the battle portions of the first strip are staggered in a spiral direction with respect to the bafile portions of the second strip, the first and second strips being formed of relatively thin resilient metal, with baflle portions being sufiiciently long and extending obliquely with respect to the tube and the shell to be flexed and urged into contact with both the tube and the shell.
In the drawings:
FIGURE 1 is a perspective view of heat exchange apparatus in accordance with the invention, together with drive means therefor;
FIGURE 2 is a broken away sectional view of the heat exchange apparatus shown in FIGURE 1;
FIGURE 3 is a sectional view taken along line 33 of FIGURE 2;
3,4fifl6fi Fatented Get. 15, 1958 FIGURE 4 is a sectional view taken along line 44 of FIGURE 2;
FIGURE 5 is an enlarged sectional view showing a flexible couplin or joint and fragmentary portions of a shaft and a shaft section, also shown in FIGURES 2 and 4, with the shaft and shaft sections being joined axially aligned;
FIGURE 6 is a sectional view taken along line 66 of FIGURE 4, showing the shaft axis misaligned with respect to the associated shaft section, the misalignment being exaggerated for the sake of clarity;
FIGURE 7 is a view of one plate of the flexible joint taken along line 7--7 of FIGURE 6;
FIGURE 8 is an elevational view showing one of the rings also shown in FIGURES 2, 5 and 6;
FIGURE 9 is a fragmentary plan view of a pair of joined strips, before being wrapped about a heat exchange tube to form bafiie structure;
FIGURE 10 is a fragmentary perspective view showing a portion of a heat exchange tube to which the bafiie structure shown in FIGURE 9 is secured in a spiral arrangement;
FIGURE 11 is a sectional view showing the baflle structure secured to the heat exchange tube;
FIGURE 12 is a sectional view taken along line 12-12 of FIGURE 11; and
FIGURE 13 is a sectional View taken along line i3I3 of FIGURE 12.
In FIGURE 1 there is shown heat exchange apparatus generally indicated at 20, together with an electric drive motor 21 and a speed reducer 22. The heat exchange apparatus has an elongated tubular shell 23 spaced about an elongated heat exchange tube 24. Inlet and outlet conduits 25 and 26 can introduce a flowable heat exchange medium into the space 27 between the shell 23 and the tube 24. The space 27 is closed off at one end by an annular spacer ring 28 and at its other end by seal structure generally indicated at 29. Batlie means 34), shown in greater detail in FIGURES 9 through 13 and described hereinafter, causes the heat exchange medium to pass in a spiral path in the space 27.
A shaft 31 is shown to be disposed in the tube 24. Although the shaft 31 is shown to be tubular in section to reduce its cost and weight, it can be solid if desired. The ends of the shaft 31 are connected to flexible couplings or joints generally indicated at 32 ad 33. The flexible joint 32 is connected to a shaft section 34 and the flexible joint 33 is connected to a shaft section 35. Shaft sections and 35 are rotatable in respective bearings generally indicated at 36 ad 36' and 37 and 37. The shaft sections as and 35 and respective bearings 36 and 36' and 57 and 37' and flexible joints 32 and 33 rotatably mount the shaft 31 at its ends.
Mixing space 33 defined by the tube 24 is closed off by plates 39 and 40 having respective, generally axially aligned, tubular central sections 41 and 2. Individual seal elements 43 and 44 and bearings 36' and 37' are disposed between the central section 41 and the shaft section 34 and between the central portion 42 and the shaft section 35. The pressure which the seals 43 and 44 exert against the shaft sections 34 and 35 can be increased or decreased by tightening or loosening spaced apart respective threaded fasteners 45 and 46. A cup-shaped section 47 secured to the plate 39 has a central bore 48 through which the shaft section 34 extends, and, a cup-shaped section 49 secured to the plate 4% has a central bore 50 through which the shaft section 35 extends. The bearings 36 and 37 are secured to respective sections 47 and 49. The bottoms of sections 47 and 49 have respective outlet ports 51 and 52. Should any lubricant from the bearings 36 and/ or 37 find its way into the sections 47 and/ or 49 it will gravitate to the bottom of respective sections 47 and/or 49 and pass out of the ports 51 and 52. In like manner, should any material from within the space 38 leak past the seal elements 43 or 44, the leaked material will gravitate to the bottoms of the respective sections 47 and/ or 49 and pass out through respective ports 51 and/ or 52. It is apparent that the bearings 36 and 37 are completely isolated from the mixing space 38.
As an alternative, bearings 36 and 37', disposed inwardly of respective seal element 43 and 44 along respective shaft sections 43 and 44, can be omitted; and a rigidly mounted bearing (not shown) can be disposed about each of the respective shaft sections 34 and outwardly of respective seal elements 43 and 44 and spaced apart from respective bearings 36 and 37.
Scraper blades 53 carried by the shaft 31, pivotally mounted by mounts indicated at 54, scrape the inner surface of the heat exchange tube 24. An inlet conduit 55 communicates with one end of the mixing space 38 and the outlet conduit 56 communicates with the other end of the mixing space 38.
An annular ring 57 is secured to the exterior of the tube 24. An annular ring 58 slidably received about the tube 24 for axial movement serves to compress individual seal elements 66 when spaced apart screws 61, only one of which is shown in FIG. 2, are tightened.
Referring particularly to FIGURES 4, 5 and 6 of the drawings, there is shown the flexible coupling or joint 33. As the flexible joints 32 and 33 are identical in construction, a detailed description of the flexible joint 32 is deemed unnecessary. The flexible joint 33 includes a pair of plates 62 and 63. The shaft 31 is suitably joined to a plate 64, as by welding and the plate 64 is rigidly secured to the plate 62 by means of spaced apart threaded fasteners 65. The shat section 35 is suitably secured to a plate 66 which is rigidly connected to the plate 63 by spaced apart threaded fasteners 67. A plurality of thin resilient rings 68 composed for example of spring steel, one of which is shown in FIGURE 8, have spaced apart apertures 69. The apertures 69 of each ring 68 are aligned with the corresponding aperture 69 of the next adjacent ring 68, and the apertures 69 are aligned with bores 62' and 63' in the respective plates 62 and 63. Connectors 70 secure the rings 68 rigidly to the plate 62 at spaced apart locations, and connectors 71 secure the rings 68 rigidly to the plate 63 at spaced apart locations. The connectors 70 and 71 are identical to each other, each including a bolt 72, a pair of washers 73 which straddle the set of rings 68 between the plates 62 and 63, and a nut 74 threadably received by the machine screw 72. Connectors 70 and '71 extend freely into enlarged bores 70' and 71' in plates 63 and 62, respectively.
Flexible joints 32 and 33 permit the shaft 31 to be misaligned with the shaft section 35 because the portion of the set of rings 68 between next adjacent connectors 70 and 71 can flex as depicted in FIGURE 6. The flexible couplings or joints 32 and 33 are commercially available and are disclosed in Engineering Catalog 760 September 1962 of the Thomas Coupling Division Chain Belt Company, Warren, Pa., now the Thomas Coupling Division, Rex Chainbelt Inc. Other suitable types of joints can be used if desired, such as universal joints.
In use, the shaft 31 is driven by means of the motor 21 through the speed reducer 22 coupled to the shaft section 35. As the shaft 31 rotates, the scraper blades 53 scrape the inner surface of the heat exchange tube 24. Flowable materials can pass through the inlet conduit 55, into and through mixing space 38, and the mixed materials pass out through the outlet conduit 56. As the shaft 31 is relatively long and is unsupported throughout its length except at its ends, the shaft 31 is subject to deflection due to its own weight and the weight of the scraper blades 53 and mounts 54, any unbalanced forces exerted by materials being mixed, and any thermal stresses. The flexible joints 32 and 33 permit the shaft 31 to flex as the shaft 31 rotates. The absence of any bearing intermediate the ends of the shaft 31 facilitates assembly and disassembly of the shaft 31, obviates the need for any such bearing to be lubricated, eliminates any pressure drop due to the restriction to flow which such a hearing would cause, and prevents any solid particles from accumulating.
'Referring now to the baflle structure 30 shown in detail in FIGURES 9 through 13 of the drawings, the baflle structure 30 is shown to include a pair of strips generally indicated at St) and 81. The strips and 81 include generally parallel cuts 82 which terminate short of one side edge 83 at respective enlarged holes 84. The cuts 82 are so narrow that they are merely slits in the strips 80 and 81. The cuts 82 form a marginal flange portion 85 and a series of baflle portions 86. The marginal flange portion 85 of the strip 81 is disposed in generally face-toface relationship against the marginal flange portion 85 of the strip 88. The bafile portions 86 of the strip 81 lie alongside the baflle portions 86 of the strip 80. In particular, the baflle portions 86 are staggered with respect to the baffle portions 86 of the strip 80 in a spiral direction as seen for example in FIGURES 10 and 12. The strips 86 and 81 are joined to each other as for example by spot welds 87. The spot welds 87 join the marginal flange portions 85 of the strips 80 and 81 to each other at spaced apart locations. Connectors, in the form of tablike elements 88, joined at spaced apart locations to the marginal flange portion 85 of the strip 81 as by spot welds 89, are each secured as by a spot weld to the exterior of the heat exchange tube 24.
The strips 80 and 81 are formed of relatively thin flexible resilient metal such as stainless steel. The baflle portions 86 of the strips 86 and 81 are sufficiently long and extend obliquely with respect to the heat exchange tube 24 and the surrounding shell 23 to be flexed and urged into contact with both the heat exchange tube and the shell 23. Thus, the battle portions 86 are slightly bent as best seen in FIGURE 13.
In making the heat exchange apparatus 20 of the invention, the strips 88 and 81 having generally parallel cuts 82 terminating short of one side edge 83 to form marginal flange portions 85 and a series of baffle portions 86 are provided. The baffle portions 86 are disposed obliquely with respect to respective marginal flange portions of the strips 86 and 81 are placed in face-to-face relationship with respect to each other so that baffle portions 86 of the strip 81 lie alongside the baflle portions of the second strip 80. Thereafter, the strips 86 and 81 are joined to each other, and the joined strips 80 and 81 are wrapped spirally about the heat exchange tube 24, and the joined strips 80 and 81 are secured to the heat exchange tube 24. Thereafter, the tube 24 and its strips 80 and 81 are slid into the shell 23, or the shell 23 is slid over the tube 24 and its strips 80 and 81.
The battle means 30 provides a spiral path or channel in the space 27 through which the heat exchange medium can pass. As there is a relatively close fit between the ends of baflle portions 86 and the inner surface of the shell 23 and as the baflle portions 86 of one strip 80 are offset or staggered in the spiral direction with respect to batile portions of the strip 81, leakage between baflle portions 86 of adjacent strips is minimal. If rigid baflles were employed instead, a certain amount of clearance between the baffle means and the inside of the surrounding shell would be required. This would cause leakage or short circuiting of the heat exchange medium, thereby reducing the heat transfer efliciency. In heat exchange apparatus 20 wherein the tube 24 and shell 23 are quite long in relation to their diameters, any such clearance which would be required if the bafile means were to be rigid would thus present a definite disadvantage.
Other embodiments and modifications of this invention will suggest themselves to those skilled in the art, and such of these as come within the spirit of this invention are included within its scope as best defined by the appended claims.
I claim:
1. In a heat exchange apparatus: a generally cylindrical elongate tube having closed ends forming a mixing chamber, means for passing a heat exchange medium into heat exchange relationship with said tube, inlet and outlet means in the tube for introducing and discharging flowable materials, an elongate rotatable shaft disposed in said tube, mixing means carried by said shaft a rotatable member mounted in each end of the tube, said members being in axial alignment and each member having a end portion extending into the mixing chamber and spaced apart flexible couplings positioned in the mixing chamber to mount the ends of said shaft in axial alignment to the extending portions of the rotatable members, said shaft being unsupported between its ends and being movable out of axial alignment by forces acting against the shaft and the rotatable members remaining in axial alignment during misalignment of the shaft.
2. In a heat exchange apparatus as claimed in claim 1, each of said couplings including a flexible joint, said mixing means including scraper blades for scraping the inner surface of said tube.
References Cited UNITED STATES PATENTS 1,692,964 11/ 1928 Thompson 16594 2,341,981 2/1944 Davids 6413 2,553,142 5/1951 McCreary 29157.3 2,846,857 8/1958 Hagerlocher 64l3 3,250,321 5/1966 Root 16594 547,801 10/1895 Otte 16592 2,449,012 9/1948 Schley 165-94 X 2,646,972 7/1953 Schmid 165-184 3,235,002 2/1966 Bevarly et al. 165-94 ROBERT A. OLEARY, Primary Examiner.
T. W. STREULE, Assistant Examiner.
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Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3731339A (en) * 1971-09-29 1973-05-08 Sun Oil Co Pennsylvania Scraper assembly for process vessels
US3955617A (en) * 1974-12-09 1976-05-11 The De Laval Separator Company Swept surface heat exchanger with dual heat exchange media
US4126177A (en) * 1977-03-10 1978-11-21 Chemetron Corporation Dual scraped surface heat exchanger
US4353704A (en) * 1980-03-28 1982-10-12 Rexnord Inc. Piloted flexible coupling
US5678772A (en) * 1995-11-13 1997-10-21 Bettenhausen; Roger V. Universal coupler for in-line coupling drive shafts together in a motor driven irrigation system
US8257184B1 (en) 2008-09-05 2012-09-04 Universal Motion Components Co. Inc. Driveline coupler
US9771983B2 (en) 2015-09-04 2017-09-26 Phoenix Sokoh Couplings, LLC Coupling assembly
US10495152B2 (en) 2015-09-04 2019-12-03 Phoenix Sokoh Couplings, LLC Coupling assembly
US11454286B2 (en) 2018-10-18 2022-09-27 Nebraska Irrigation, Inc. Inline coupler

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US547801A (en) * 1895-10-15 Appaeattts foe woeking up animal oaeoasses
US1692964A (en) * 1924-03-17 1928-11-27 H H Miller Ind Company Machine for treating materials
US2341981A (en) * 1940-06-27 1944-02-15 Fairbanks Morse & Co Shaft coupling mechanism for internal combustion engines
US2449012A (en) * 1945-07-19 1948-09-07 Socony Vacuum Oil Co Inc Pipe exchanger scraper
US2553142A (en) * 1947-05-29 1951-05-15 Johns Manville Method for making heat exchangers
US2646972A (en) * 1950-02-04 1953-07-28 Knapp Monarch Co Fin type radiator
US2846857A (en) * 1952-02-11 1958-08-12 Hagenlocher Ernest Torsionally resilient flexible couplings
US3235002A (en) * 1963-11-07 1966-02-15 Chemetron Corp Heat exchange apparatus
US3250321A (en) * 1964-07-09 1966-05-10 Bethlehem Steel Corp Rotary batch processor

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US547801A (en) * 1895-10-15 Appaeattts foe woeking up animal oaeoasses
US1692964A (en) * 1924-03-17 1928-11-27 H H Miller Ind Company Machine for treating materials
US2341981A (en) * 1940-06-27 1944-02-15 Fairbanks Morse & Co Shaft coupling mechanism for internal combustion engines
US2449012A (en) * 1945-07-19 1948-09-07 Socony Vacuum Oil Co Inc Pipe exchanger scraper
US2553142A (en) * 1947-05-29 1951-05-15 Johns Manville Method for making heat exchangers
US2646972A (en) * 1950-02-04 1953-07-28 Knapp Monarch Co Fin type radiator
US2846857A (en) * 1952-02-11 1958-08-12 Hagenlocher Ernest Torsionally resilient flexible couplings
US3235002A (en) * 1963-11-07 1966-02-15 Chemetron Corp Heat exchange apparatus
US3250321A (en) * 1964-07-09 1966-05-10 Bethlehem Steel Corp Rotary batch processor

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3731339A (en) * 1971-09-29 1973-05-08 Sun Oil Co Pennsylvania Scraper assembly for process vessels
US3955617A (en) * 1974-12-09 1976-05-11 The De Laval Separator Company Swept surface heat exchanger with dual heat exchange media
US4126177A (en) * 1977-03-10 1978-11-21 Chemetron Corporation Dual scraped surface heat exchanger
US4353704A (en) * 1980-03-28 1982-10-12 Rexnord Inc. Piloted flexible coupling
DK154171B (en) * 1980-03-28 1988-10-17 Rexnord Inc FLEXIBLE CLUTCH
US5678772A (en) * 1995-11-13 1997-10-21 Bettenhausen; Roger V. Universal coupler for in-line coupling drive shafts together in a motor driven irrigation system
US8257184B1 (en) 2008-09-05 2012-09-04 Universal Motion Components Co. Inc. Driveline coupler
US9771983B2 (en) 2015-09-04 2017-09-26 Phoenix Sokoh Couplings, LLC Coupling assembly
US10495152B2 (en) 2015-09-04 2019-12-03 Phoenix Sokoh Couplings, LLC Coupling assembly
US11454286B2 (en) 2018-10-18 2022-09-27 Nebraska Irrigation, Inc. Inline coupler

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