· Mounting orientation affects directional stiffness, deflection and available travel.
· Compression and shear performance should not be assumed to be identical.
· Check load direction and clearance before rotating an isolator.
A vibration isolator may fit the same bolt pattern after being rotated 90°, but its performance can change.
The equipment weight is still the same. The mounting holes still line up. What changes is the direction in which the isolator carries the load and deforms.
For vibration isolation, that difference matters.
The key question is not simply whether an isolator is mounted vertically or horizontally. It is how the load acts relative to the isolator's working structure.
|
Item |
Compression Loading |
Shear Loading |
|
Load direction |
Along the compression axis |
Across the isolator |
|
Main movement |
Compression |
Lateral movement |
|
Effective stiffness |
Compression stiffness |
Shear/lateral stiffness |
|
Available travel |
Compression direction |
Lateral direction |
|
Main check |
Load + deflection |
Load + travel + clearance |
For wire rope isolators, the cable loops deform differently under compression and shear. Their directional stiffness and available displacement therefore should not be assumed to be identical.
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fn = (1 / 2π) × √(k / m)
· fn = natural frequency
· k = effective stiffness in the working direction
· m = supported mass
If rotating the isolator changes its effective stiffness, the natural frequency can change even though the equipment mass remains exactly the same.
Mounting Orientation → Directional Stiffness → Deflection → Natural Frequency → Isolation Performance
Available travel matters as well. A mount may safely support the static load but still have insufficient movement in the direction of vibration or shock.
For this reason, model selection should use performance data for the actual mounting and loading direction, rather than assuming one stiffness value applies in every direction.
A common installation issue appears when an isolator is rotated late in the mechanical design to save space.
The bolt pattern still works, but the available movement around the isolator may no longer be sufficient.
Under vibration or shock, the equipment or isolator can approach a nearby bracket, panel or frame. If contact occurs, the rigid connection creates another vibration path and reduces the benefit of the isolation system.
Can the isolator carry the equipment weight?
Does it have enough travel in the direction it will actually move?
This becomes especially important in compact cabinets and installations where surrounding clearance is limited.
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A useful example comes from HOAN's JGX-1276S-220A telecom cabinet application.
In this installation, maintaining the intended working orientation and leaving sufficient space for wire-rope movement are both important. The mounting structure also needs enough rigidity to carry the concentrated load at each attachment point.
This illustrates a practical point that is easy to miss during CAD layout:
Correct model selection does not compensate for an incorrect installation condition.
If an isolator is rotated or installed too close to surrounding hardware, its installed behavior may no longer match the conditions considered during selection.
Before rotating or repositioning a vibration isolator, check:
· Equipment weight
· Number and position of isolators
· Center of gravity, if known
· Vibration frequency or RPM
· Main vibration or shock direction
· Available travel and clearance
· Final mounting orientation
For asymmetric equipment or space-limited installations, a CAD, STEP file or mounting drawing is often more useful than equipment weight alone.
It shows where the isolators are located and how they will actually carry the load.
Sometimes, but horizontal installation should not be decided from the bolt pattern alone.
The load direction, directional stiffness, working deflection and available travel should be checked for the proposed orientation. Some isolators can operate in several directions, while others have a preferred working orientation.
It can.
For the same supported mass:
fn ∝ √k
If rotation changes the effective stiffness in the working direction, natural frequency changes accordingly.
The actual effect should be evaluated using stiffness or load-deflection data for the intended orientation rather than assuming identical performance in compression and shear.
Mounting orientation is part of vibration isolator selection—not simply an assembly decision.
If your equipment requires a vertical, horizontal or space-limited installation, provide HOAN with the equipment weight, mounting layout, vibration frequency/RPM, shock direction and available installation space.
For installations where the loading direction is difficult to determine, send a CAD, STEP file or mounting drawing. HOAN can review the proposed arrangement before the final isolator model is selected.