Vibratory Stress Relief, often abbreviated VSR, is a non-thermal stress relief method used by the metal working industry to enhance the dimensional stability an
Vibratory Stress Relief, often abbreviated VSR, is a non-thermal stress relief method used by the metal working industry to enhance the dimensional stability and mechanical integrity of castings, forgings, and welded components, chiefly for two categories of these metal workpieces:
These stresses, called residual stresses, because they reside within the metal workpiece, rather than as a result of external loading, are caused by rapid, unequal cooling. This unequal cooling occurs during welding, casting, forging, rough machining or hot rolling. These stresses often lead to distortion or warping of the structure during machining, assembly, testing, transport, field-use or over time. In extreme cases, residual stress can cause structural failure.(McGoldrick, Saunders)
Vibratory stress relief uses controlled and monitored vibration to cause dynamic loading. This dynamic loading, combined with the internal load from residual stresses, enables plastic flow to occur. Flexure is a key requirement of the process.
Residual stresses can be viewed as a form of potential energy, and stress relieving, whether the result of vibratory, thermal, long term storage, or transport, as a release of this potential. It has been observed for decades that a workpiece that has been final machined can change shape during transport, often outside tolerances. (Klauba, Adams, and Berry)
Such unacceptable changes in shape are usually addressed by corrective measures, such as straightening (which can be done at room or locally elevated temperature) or further machining. While precise tolerances might be achieved by these means, questions can remain as to whether the workpiece is stable, ie, will it change shape again?
Almost all vibratory stress relief equipment manufacturers and procedures use the workpiece’s own resonant frequency to boost the dynamic loading experienced by induced vibration, so to maximize the degree of stress relief achieved. Some equipment and procedures are designed to operate near, but not at, workpiece resonances (perhaps to extend equipment life), but independent research has consistently shown resonant frequency vibration to be more effective. (Shakar, Hahn, and Yang)
A significant number of researchers have measured the effectiveness of vibration in relieving stress, with a variety of results. Among the better results are those of Dawson & Moffat , who reported more than 90% of stresses relieved by vibration. This level of stress relief is depicted in Figure 15 of their work, which has been graphically updated and reproduced here. See Figure 1

Effective vibratory stress relief treatment results from a combination of factors:



Each of these changes, which often combine, ie, peak growth AND shifting, is consistent with a lowering of the rigidity of the workpiece. The workpiece rigidity is inflated by the presence of residual stress. In the example below, which depicts a common resonance pattern change that occurs during vibratory stress relief, the large peak grew by 47%, while simultaneously shifting to the left 28-RPM, which is less than 0.75%. See Figure 5.
The equipment used to perform this stress relief had vibrator speed regulation of ± 0.02%, and speed increment fine-tuning of 1-RPM, which allowed even subtle shifting of the peaks to be accurately tracked to their final, stable locale.
The pattern of change, ie, how quickly the peaks grow and shift, is faster at the beginning of vibration treatment: As treatment continues, the rate of change decreases, eventually resulting in a new, stable resonance pattern. Stability of this new resonance pattern indicates that dimensional stability of the workpiece has been achieved.

The power plot is useful in both positioning and orienting the vibrator, and when adjusting the vibrator unbalance. Poor or inappropriate vibrator locations or orientations, or excessive vibrator unbalance settings, cause large peaks in the power plot. Use of higher-powered vibrator motors (above 2-kW) provides more "head-room" for peaks in power to be tolerated, and treatment to take place, which was the case here: The power peak at ≈ 3700-RPM was only half of the vibrator motor’s 2.3-kW power capacity (top of the power scale).
A Pre-Treatment Scan, which functions as a base-line, is first recorded in green. The operator uses this green data set to tune upon the resonances, and monitor the growth and shifting of the resonance peaks. After peak growth and shifting have subsided, a Post-Treatment Scan is made (red). This data is superimposed on the original, green, Pre-Treatment Scan data, documenting the changes in resonance pattern. The stress relief treatment resulted in 47% growth of the original, large peak, while it shifted to the left 28-RPM (less than 0.75%).

After stress relief treatment, the braces (rust-colored, structural beams), which are used to maintain the desired shape during welding, were removed. The spacing between the two "arms" remained the same; no change was detectable (measured to 1/32" or less than 1 mm), and the spacing remained so throughout assembly, testing (to 60 ton test loads), transport, and installation.
Historically, the first type of stress relief was performed on castings by storing them outside for months or even years. This was referred to as curing, a term used for long-term storage of freshly hewn wood. Fresh castings were referred to as being green, meaning, they were prone to distortion during precision machining, just as green wood bows during cutting.
Later, thermal stress relief (TSR) was developed to alleviate the lengthy time requirements of curing. It has been known for many years, however, that TSR has limitations or shortcomings, specifically:
Metal components, whose function would be enhanced by stress relief, and fall into one or more of the above categories, are strong candidates for VSR for quality-related reasons.
Further, there is a strong economic incentive to use vibratory stress relief on large workpieces, since stress relief using a furnace (thermal stress relief or TSR) is highly energy-intensive; consuming much natural gas, and hence, producing much CO2. The cost of TSR is approximately proportional to a metal component’s weight or overall size, estimated to be $ 2500 USD for the structure pictured, plus transportation costs, which might involve special transport permits, to and from a furnace. VSR Treatment would cost a company owning appropriate equipment less than 15% as much ( ≈ $ 400 ) as TSR Treatment, chiefly amortization of equipment investment plus labor, and a modest amount of electrical consumption, and treatment would take less than two hours, with no transport required.
[1] R.T. McGoldrick and H. Saunders, Some Experiments in Stress-Relieving Castings and Structures by Vibration, Journal of the American Society of Naval Engineer., 55, 589-609 (1943).
[2] R. Dawson and D.G. Moffat, Vibratory Stress Relief: A Fundamental Study of Effectiveness, Journal of Engineering Material and Technology, 102, 169-176 (1980).
[3] C. A. Walker, A.J. Waddell and D.J. Johnston, Vibratory Stress Relief - An Investigation of the Underlying Process, Proc. Inst. Mechanical Engineers 209, 51-58 (1995).
[4] W. Hahn, Report on Vibratory Stress and Modifications in Materials to Conserve Resources and Prevent Pollution, Afred University (NY), Center for Environmental and Energy Research (CEER), 2002.
[5] S. Shakar, Vibratory Stress Relief of Mild Steel Weldments, PhD Dissertation, Oregon Graduate Center, U. of Oregon (1982).
[6] B.B. Klauba, C.M. Adams, J.T. Berry, Vibratory Stress Relief: Methods Used to Monitor and Document Effective Treatment, A Survey of Users, and Directions for Further Research, Proc. of ASM, 7th International Conference: Trends in Welding Research 601-606 (2005)
[7] D. Rao, J. Ge, and L. Chen, Vibratory Stress Relief in the Manufacturing the Rails of a Maglev System, J. of Manufacturing Science and Engineering, 126, Issue 2, 388-391 (2004)
[8] Y. Yang, G. Jung, and R. Yancey, Finite Element Modeling of Vibratory Stress Relief after Welding, Proc of ASM, 7th International Conference; Trends in Welding Research 547-552 (2005)
Is Vibratory Stress Relief as Effective as Thermal Stress Relief?, ESBA Website
Energy Lost From Vibrations, Vibrations and Waves by Benjamin Crowell
Putting Energy Into Vibrations, Vibrations and Waves by Benjamin Crowell
Plate Specification Guide, ArcelorMittalUSA
How to Weld "T-1"® Constructional Alloy Steels, ArcelorMittalUSA
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