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Principal developments in thin circular saw vibration and control research

Part 2: Reduction and control of saw vibration

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References

  • Barz, E. 1962. Der Spannungszustand von Kreissägeblättern und seine Auswirkung auf das Arbeitsverhalten. Holz Roh-Werkstoff 20(10): 393–397

    Google Scholar 

  • Barz, E. 1965. Zur Frage der Eigenspannungen in scheiben- und bandförmigen Werkzeugen. 2. Mitteilung: Sägeblätter mit von Eigenspannungen unabhängigen Eigenschaften. Holz Roh-Werkstoff 23 (12): 484–491

    Google Scholar 

  • Barz, E., Münz, U.V. 1968. Prüfung und Beurteilung des Richt- und Spannungszustandes bei Kreissägeblättern für die Holzbearbeitung. Holz Roh-Werkstoff 26 (5): 170–175

    Google Scholar 

  • Barz, E. 1969. Verfahren zum Spannen von scheibenförmigen und bandförmigen Werkzeugen durch partielle Frwärmung. German Patent Nr. P19239464 C 21d 9–24, May 10, 1969

  • Berolzheimer, C.P., Best, C.H. 1959. Improvements through research on thin circular saw blades. Forest Prod. J. 9 (11): 404–412

    Google Scholar 

  • Betts, H. 1969. Extra-thin saws increase lumber yield. Wood and Wood Prod. 74 (8): 28–29

    Google Scholar 

  • Borovikov, E.M., Orlov, B.F. 1974. Thermal method of preparing circular saws for work. Lesn. Zh. 17 (6): 90–94

    Google Scholar 

  • Carlin, J.F., Appl, F.C., Bridwell, H.C., DuBois, R.P. 1975. Effects of tensioning on buckling and vibration of circular saw blades. Eng. Ind. (2): 37–48

    Google Scholar 

  • Cheremnykh, N.N., Chizhevskii, M.P. 1971. Design features for damping circular saws to reduce noise. Lesn. Zh. 14 (6): 149–152

    Google Scholar 

  • Cudworth, A.L. 1960. Quieting circular saws. Noise Control 6 (2): 30–52

    Google Scholar 

  • DeVries, M.F. 1974. Computer design of circular saws. Annals CIR P 23 (1): 127–128

    Google Scholar 

  • DeVries, M.F., Wu, S.M. 1974. On the reduction of noise in circular sawing. Proc. Sec. North Am. Metalwork Res. Univ. Wis., pp. 22–34

  • Dugdale, D.S. 1963a. Effect of internal stress on the flexural stiffness of disks. Int. J. Eng. Sci. 1: 89–100

    Article  Google Scholar 

  • Dugdale, D.S. 1963b. Effect of internal stress on clastic stiffness. J. Mech. Phys. Solids. 11: 41–47

    Article  Google Scholar 

  • Dugdale, D.S. 1966a. Theory of circular saw tensioning. Int. J. Prod. Res. 4 (3): 237–248

    Google Scholar 

  • Dugdale, D.S. 1966b. Stiffness of a spinning disc clamped at its centre. J. Mech. Phys. Solids 14: 349–356

    Article  Google Scholar 

  • Dugdale, D.S. 1968. Flexure of thin plates containing internal stress. Int. J. Eng. Sci. 6: 239–249

    Article  Google Scholar 

  • Dugdale, D.S. 1969. Discrete frequency noise from free running circular saws. J. Sound Vib. 10 (2): 286–304

    Article  Google Scholar 

  • Ellis, R. W. 1976. Active electromagnetic vibration control in rotating dises. Ph. D. Diss. Dep. Mech. Eng., U.C. Berkeley

  • Friebe, E. 1970. Steifheit und Schwingungsverhalten von Kreissägeblättern. Holz Roh-Werkstoff 28 (9): 349–357

    Google Scholar 

  • Grinkov, V.P. 1967. Causes of noise generation during sawing with circular saws. Derev. Prom. 16 (1): 9–10

    Google Scholar 

  • Grube, A.E., Sanev, V.L., Pashkov, V.K. 1967a. Increasing of quality of sawing by cooling circular saws with the water-air mixture. Derev. Prom. 16 (3): 6–8

    Google Scholar 

  • Grube, A.E., Sanev, V.L., Pashkov, V.K. 1967b. Automatic regulation of thermal stresses in circular saws. Derev. Prom. 16 (8): 4–6

    Google Scholar 

  • Hackenberg, P. 1974. Spannungen in mechanisch und thermisch vorgespannten Kreissägeblättern. Diss., T. H. Aachen

  • Hackenberg, P. 1975. Thermisches Vorspannen von Kreissägeblättern. Z. Ind. Fertig. 65 (2): 81–86

    Google Scholar 

  • Hsu, T.R., Trasi, S.R. 1976. On the analysis of residual stresses introduced in sheet metals by thermal shock treatment. Trans. ASME 43E (1): 117–123

    Google Scholar 

  • Johnston, J.S. 1960. Developing an experimental two-piece circular saw blade. Forest Prod. J. 10 (9): 443–446

    Google Scholar 

  • Johnston, J.S. St-Laurent, A. 1973. Circular saw with removable cutters. Proc. Fourth Wood Mach. Seminar, Univ. Calif. For Prod. Lab., Richmond, California, pp. 85–98

  • Kemov, A.S. 1968. Circular saws with enlarged gullets. Derev. Prom (5): 27–28

    Google Scholar 

  • Kimura, S., Ando, M. 1974. Studies on tensioning of circular saw by rolling pressure. Part. 1. J. Jap. Wood Res. Soc. 20 (5): 196–204

    Google Scholar 

  • Kimura, S., Ito, M. 1976. Studies on tensioning of circular saw by rolling pressure. Part. 2. J. Jap Wood Res. Soc. 22 (3): 139–145

    Google Scholar 

  • Kimura, S., Fukui, H. 1976. Circular saw noise. III. Free running noise. J. Jap. Wood Res. Soc. 22 (3): 146–151

    Google Scholar 

  • Malcolm F.B. 1972. Expansion stots, symmetrically placed, solve problem of “screaming” saws. World Wood (3): 10–11

    Google Scholar 

  • Mckenzie, W.M. 1971. How does heat tensioning work? Forest Prod. Newsl. CSIRO. 363: 2–3

    Google Scholar 

  • McKenzie, W.M. 1973. The effects of slots on “critical rim temperature” and other criteria of sawblade stability. Wood Sci. 5 (4): 304–311

    Google Scholar 

  • McLauchlan, T.A. 1972. Recent developments in circular rip sawing. Forest Prod. J. 22 (6): 42–48

    Google Scholar 

  • Meins, W. 1963. Gerüschuntersuchungen an Kreissägemaschinen für die Holzbearbeitung. Diss. T.U. Braunschweig

  • Mote, C.D., Jr. 1965. Free vibration of initially stressed circular discs. Trans. ASME 87B (2): 258–264

    Google Scholar 

  • Mote, C.D., Jr. 1966. Theory of thermal natural frequency variations in disks. Int. J. Mech. Sci. 8: 547–557

    Article  Google Scholar 

  • Mote, C.D., Jr. 1967. Natural frequencies in annuli with induced thermal membrane stress. Trans. ASME 89B (4): 611–618

    Google Scholar 

  • Mote, C.D., Jr. 1970a. Stability of circular plates subjected to moving loads. J. Franklin Inst. 290 (4): 329–344

    Article  Google Scholar 

  • Mote, C. D., Jr. 1970b. Formulation of discrete element models for the stress and vibration analysis of plates. Univ. Calif. For. Prod. Lab. Rep. No. 35.01.77, January 1970

  • Mote, C.D., Jr., Nieh, L.T. 1971. Control of circular disk stability with membrane stresses. Exp. Mech. 11 (11): 490–498

    Article  Google Scholar 

  • Mote, C.D., Jr. 1972. Stability control analysis of rotating plates by finite element: emphasis on slots and holes. J. Dyn. Syst., Mens. Control. Trans. ASME 94G (1): 64–70

    Google Scholar 

  • Mote, C.D., Jr., Nieh, L.T. 1973. On the foundation of circular saw stability theory. Wood Fiber 5 (2): 160–169

    Google Scholar 

  • Mote, C.D., Jr., Holoyen, S. 1973. The temperature distribution in circular saws during cutting. Norsk Treteknisk Inst., Oslo Medd. Nr. 49

  • Mote, C.D., Jr., Holoyen, S. 1975. Confirmation of the critical speed stability theory for symmetrical circular saws. Trans. ASME., 97B (3): 1112–1118

    Google Scholar 

  • Mote, C.D., Jr. 1975. Stability of a rotating disc on a floating arbor. Univ. Calif. For Prod. Lab. Tech. Rep. Nr. 3 (File Rep. No. 35.01.130), October, 1975

  • Mote, C.D., Jr. 1977. Moving load stability of a circular plate on a floating central collar. J. Acoust. Soc. Am. 61 (2): 439–447

    Article  Google Scholar 

  • Neumann, K., Varhanicek, J. 1970. Verfahren zur Wärmebehandlung der Sägeblätter von Kreissägen. East Germany Patent (APC21d/ 148332), Priorität 1969 (PV4436-69) ČSSR

  • Okushima, S., Sugihara, H. 1969. Temperature distribution of circular saw blade-measurement with infrared radiometric microscope J. Jap. Wood Res. Soc. 15 (1): 11–19

    Google Scholar 

  • Pahlitzsch, G., Meins, W. 1961. Geräuschuntersuchungen an Kreissägemaschinen. Werkstattstechnik 51 (5): 250–254

    Google Scholar 

  • Pahlitzsch, G., Rowinski, B. 1966a. Über das Schwingungsverhalten von Kressägeblättern. I. Mitteilung: Bestimmung und Auswirkungen der geometrischen Form und des Vorspannungszustandes der Sägeblätter. Holz Roh-Werkstoff 24 (4): 125–134

    Google Scholar 

  • Pahlitzsch, G., Rowinski, B. 1966b. Über das Schwingungsverhalten von Kreissägeblättern. 2. Mitteilung: Ermittlung und Auswirkunggen der kritischen Drehzahlen und Eigenfrequenzen der Sägeblätter. Holz Roh-Werkstoff 24 (8): 341–346

    Google Scholar 

  • Pahlitzsch, G., Rowinski, B. 1967a. Über das Schwingungsverhalten von Kreissägeblättern. 3. Mitteilung: Schwingungen der Sägeblätter im Schnitt und ihre Dämpfung. Holz Roh-Werkstoff 25 (9): 348–357

    Google Scholar 

  • Pahltizsch, G., Rowinski, B. 1967b. Über das Schwingungsverhalten von Kreissägeblättern. 4. Mitteilung: Ursachen des Pfeifens von Kreissägeblättern und Maßnahmen zu seiner Vermeidung. Holz Roh-Wekstoff 25 (10): 393–397

    Google Scholar 

  • Pahlitzsch, G., Friebe, F. 1973a. Über das Vorspannen von Kreissägeblätern. 1. Mitteilung: Spannungen in umlaufenden, durch den Schnittvorgang in der Zahnzone erwärmten vorgespannten Sägeblättern. Holz Roh-Werkstoff 31 (11): 429–436

    Google Scholar 

  • Pahlitzsch, G., Friebe, E. 1973b. Über das Vorspannen von Kreissägeblättern. 2. Mitteilung: Rechnerische und experimentelle Ermittlung der Vorspann-Spannungen in Sägeblättern. Holz Roh-Werkstoff 31 (12): 457–463

    Google Scholar 

  • Pahlitzsch, G., Friebe, E. 1974. Über das Vorspannen von Kreissägeblättern. 3. Mitteilung: Einfluß des Vorspannens auf die Steifheit und das Schwingungsverhalten von Sägeblättern. Holz. Roh-Werkstoff 32 (1): 5–12

    Google Scholar 

  • Pahlitzsch. G. 1974. Geräuschentstehung und Geräuschbekämpfung bei Holzhearbeitungsmaschinen. Proc. Ergonomics in Sawmills and Woodworking Industries, IUFRO Symp. Sweden, Aug. 26–30, 1974, pp. 59–76

  • Pashkov, V.K., Bodalev, V.G. 1971 Nomogram for selecting working schedules for circular saws. Lesn. Zh. 14 (1): 57–60

    Google Scholar 

  • Pashkov, V.K., Bodalev, V.G. 1973 Experimental methods of determining the critical rotations of thin disks. Lesn. Zh. 16 (6): 63–68

    Google Scholar 

  • Prokeš, S. 1972. Comparison of method for measuring tension of saw discs. Drevo 27 (7): 181–183

    Google Scholar 

  • Quinn, R.S. 1967. A report on heat tensioning. Forest Ind. 94 (19): 99

    Google Scholar 

  • Rathiff, R. 1973. Operation and mantenance of Strob-Saws. Modern Sawmill Techniques. Vol. 2; Proc. Second Sawmill Clinic. New Orleans. I.A., November 1973, pp. 293–301

  • Sanev, V.I., Pashkov, V.K. 1973. Practical methods for the reduction of kerf losses during rip sawing with circular saws. Lesn. Zh. 16 (5): 71–75

    Google Scholar 

  • Schmutzler, W. 1976. Lärmbekämpfung bei der maschinellen Holzbearbeitung. Holz Roh-Werkstoff 25 (4): 130–134

    Google Scholar 

  • Stakhiev, Yu.M. 1972. Vibrations in thin steel dises. Russian Eng. J. 52 (8): 14–17

    Google Scholar 

  • Stakhiev, Yu.M., Lyzhin, F.V. 1972. Stability of the circular saw blades. Lesn. Zh. 15 (1): 163–168

    Google Scholar 

  • Streleck, A. 1970. Damping the vibrations of a rotating circular saw in a magnetics field. Fol. For. Polonica, Serta B (9): 29–56

    Google Scholar 

  • Strzelecki, A. 1971. Noise reduction as a result of damping the vibrations of a rotating circular saw in a magnetic field. Fol. For. Polonica. Seria B, (10): 35–53

    Google Scholar 

  • Szymani, R. 1973. Evaluation of tensioning stresses in circular saws. Proc. Fourth Wood Mach. Seminar. Univ. Calif. Forest Prod. Lab., Richmond, California, pp. 23–37

    Google Scholar 

  • Szymani, R., Mote, C.D., Jr. 1974 A review of residual stresses and tensioning in circular saws. Wood Sci. Technol. 8 (12): 148–161

    Article  Google Scholar 

  • Szymani, R., Mote, C.D., Jr. 1977. Circular saw stiffness as a measure of tension. Forest Prod. J. 27 (3): 28–32

    Google Scholar 

  • Thrasher, E.W. 1972. Method and apparatus for operating a rotary saw. (U.S. Patent No. 3,645,304) U.S. Patent Office, Washington, D.C.

    Google Scholar 

  • Tröger, J. 1973. Lärmminderung an Doppelformatkreissängen durch Kapselung. Holztechnologie 11 (3): 145–152

    Google Scholar 

  • Trusov, V.A., Trusova, L.P. 1963. Segmental saws tipped with wearresistant alloy. Derev. Prom. 12 (7): 25–26

    Google Scholar 

  • Turikov, E.M., Shevchenko, A.I., Pashkov, V.K. 1973. Experimental investigation of the oscillations of flat circular saws. Lesn. Zh. 16 (1): 98–104

    Google Scholar 

  • Wikner, G. 1975. Experience from development of the Minibel-Gomex sound dampened saw. Gomex Verktyg AB, Salmar, Sweden

    Google Scholar 

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The authors are, respectively, Assistant Specialist, Forest Products Laboratory; and Professor, Department of Mechanical Engineering and Research Engineer, Forest Products Laboratory, University of California, Richmond, California 94804 USA

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Szymani, R., Mote, C.D. Principal developments in thin circular saw vibration and control research. Holz als Roh-und Werkstoff 35, 219–225 (1977). https://doi.org/10.1007/BF02608337

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