Pinch Techniques and their Effects on Pinch Effort: A Pilot Study

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Abstract:

Hands are important tools for manual work. Although researchers have identified factors that influence the grip efforts of an entire hand, there appears to be limited research concerning the use of different pinch techniques and how they affect the performance of pinch effort. Therefore, the aim for this pilot study is to determine the effects of different pinch techniques on pinch effort. A total of 110 manual workers from a wooden pallet manufacturing firm participated in this study, which involved an experiment and survey to investigate the most preferred pinch technique applied on screw knobs. The techniques used were the 3-jaw chuck, pulp-2 and lateral pinch. A total of 6 screw knobs of different shapes and sizes were used. After the data were collected, descriptive and Cronbach's alpha reliability analyses were carried out. The results show that the preferred pinch technique for the small cylindrical knob, small sphere knob and all large knobs is the lateral pinch. However, the 3-jaw chuck pinch is preferred for the small 5-lobes knob. This study provides preliminary information for further research on pinch techniques and their influences on the pinching outcomes of individuals.

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1165-1169

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December 2013

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Information on http: /www. lni. wa. gov/Safety/Research/Wmsd/IndRiskWmsd/Default. asp.

Google Scholar

[2] Information on http: /www. gloveuniversity. com/regulations/handinjuries. php.

Google Scholar

[3] S. Kumar, Biomechanics in Ergonomics, 2nd ed., CRC Press, Boca Raton, (2008).

Google Scholar

[4] N. J. Seo, T. J. Armstrong, D. B. Chaffin, and J. A. Ashton-Miller, The Effect of Handle Friction and Inward or Outward Torque on Maximum Axial Push Force, Human Factors, 50 (2008) 227-236.

DOI: 10.1518/001872008x250692

Google Scholar

[5] P. K. Ng, Q. H. Boon, K. X. Chai, S. L. Leh, M. C. Bee, and A. Saptari, The Roles of Shape and Size in the Pinch Effort of Screw Knobs, presented at the 4th International Conference on Mechanical and Manufacturing Engineering, Bangi, Putrajaya, Malaysia, (2013).

DOI: 10.4028/www.scientific.net/amm.465-466.1202

Google Scholar

[6] P. K. Ng, K. X. Chai, S. L. Leh, M. C. Bee, Q. H. Boon, and A. Saptari, Applying Clockwise and Counterclockwise Torque Directions in Pinch Grips: A Descriptive Study, presented at the 4th International Conference on Mechanical and Manufacturing Engineering, Bangi, Putrajaya, Malaysia, (2013).

DOI: 10.4028/www.scientific.net/amm.465-466.1170

Google Scholar

[7] P. K. Ng, S. L. Leh, M. C. Bee, Q. H. Boon, K. X. Chai, and K. S. Jee, The Effects of Different Tactile Sensations on Pinch Effort, presented at the 4th International Conference on Mechanical and Manufacturing Engineering, Bangi, Putrajaya, Malaysia, (2013).

DOI: 10.4028/www.scientific.net/amm.465-466.1175

Google Scholar

[8] P. K. Ng, M. C. Bee, A. Saptari, and N. A. Mohamad, A Review of Different Pinch Techniques, Theoretical Issues in Ergonomics Science, (2013), doi: 10. 1080/1463922X. 2013. 796539.

DOI: 10.1080/1463922x.2013.796539

Google Scholar

[9] R. O. Smith, Pinch and Grasp Strength: Standardization of Terminology and Protocol, The American Journal of Occupational Therapy, 39 (1985) 531-535.

DOI: 10.5014/ajot.39.8.531

Google Scholar

[10] D. J. Magee, Orthopedic Physical Assessment, 5th ed., Saunders Elsevier, St. Louis, Missouri, (2008).

Google Scholar

[11] P. K. Ng and A. Saptari, A Review of Shape and Size Considerations in Pinch Grips, Theoretical Issues in Ergonomics Science, (2012), doi: 10. 1080/1463922X. 2012. 729619.

DOI: 10.1080/1463922x.2012.729619

Google Scholar

[12] P. K. Ng, A. Saptari, and J. A. Yeow, Synthesising the Roles of Torque and Sensation in Pinch Forces: A Framework, Theoretical Issues in Ergonomics Science, (2012), doi: 10. 1080/1463922X. 2012. 691185.

DOI: 10.1080/1463922x.2012.691185

Google Scholar

[13] Information on http: /www. monroeengineering. com/index. html.

Google Scholar

[14] G. A. V. Borg, Psychophysical Bases of Perceived Exertion, Medicine and Science in Sports and Exercise, 14 (1982) 377-381.

DOI: 10.1249/00005768-198205000-00012

Google Scholar

[15] Information on http: /www. joe. org/joe/1999april/tt3. php.

Google Scholar

[16] U. Sekaran, Research Methods for Business: A Skill Building Approach, 4th ed., John Wiley & Sons, New York, (2003).

Google Scholar

[17] Information on http: /languagetesting. info/statistics/excel. html.

Google Scholar

[18] L. J. Cronbach and R. J. Shavelson, My Current Thoughts on Coefficient Alpha and Successor Procedures, Educational And Psychological Measurements, 64 (2004) 391-418.

DOI: 10.1177/0013164404266386

Google Scholar

[19] J. Nunnally and I. Bernstein, Psychometric Theory, McGraw-Hill Publication, New York, (1994).

Google Scholar

[20] H. M. Clarkson, Musculoskeletal Assessment: Joint Range of Motion and Manual Muscle Strength, 2nd ed., Lippincott Williams & Wilkins, Philadelphia, (1999).

Google Scholar

[21] A. B. Swanson, I. B. Matev, and G. de Groot, The Strength of the Hand, Inter-Clinic Information Bulletin, 13 (1974) 1-8.

Google Scholar

[22] S. N. Imrhan and R. Rahman, The Effects of Pinch Width on Pinch Strengths on Adult Males Using Realistic Pinch-Hand Coupling, International Journal of Industrial Ergonomics, 16 (1995) 123-134.

DOI: 10.1016/0169-8141(94)00090-p

Google Scholar