Dimensional Inspection
Dimensional inspection
A tied universal expansion joint uses two flexible bellows elements to create lateral movement within a restrained assembly.
Permanent tie rods connect the end structures, control the overall length and provide a load path for internal pressure thrust.
The rods are not temporary shipping restraints. They remain in service and carry the axial force generated when process pressure acts on the effective bellows area.
Because the overall length is restrained, the standard tied universal joint is generally not free to absorb axial pipeline movement. Its principal function is lateral displacement.
Rod quantity, diameter, material and attachment geometry must be selected from pressure thrust, structural loading and the required movement arrangement.
When the piping shifts laterally, the two bellows rotate in opposite directions. Their combined angular deformation allows the intermediate pipe to translate relative to the connection ends.
The bellows are not intended to be pulled directly sideways. Lateral travel is created by controlled rotation at two flexible centers.
A longer distance between those centers can provide greater lateral movement for the same bellows rotation, but also increases overall length, weight and installation-space requirements.
A conventional tie-rod arrangement normally directs lateral movement within one specified plane.
A specially designed two-rod configuration can also permit limited angular movement in that same plane, but this capability must be stated in the approved manufacturing drawing.
Multi-plane movement generally requires gimbal hardware or another purpose-designed restraint arrangement.
Both designs contain two bellows separated by an intermediate pipe and can accommodate lateral movement.
An untied universal joint does not contain permanent hardware that restrains pressure thrust. External main anchors normally carry that load.
The tied design restrains overall length and contains pressure thrust through rods and structural end components.
Rod-nut position and clearance depend on the intended movement and structural load path.
Some designs require the nuts to remain continuously engaged, while selected arrangements require calculated clearance for angular rotation.
Site personnel should not tighten, loosen or reposition the nuts without the approved installation instructions. An incorrect adjustment can change movement capacity and bellows loading.
The intermediate pipe establishes the distance between the two rotation centers, but also adds dead weight to the assembly.
Long or large-diameter horizontal units should be evaluated for center-spool sag and continuous lateral loading on the bellows.
Where support is required, it must carry weight without preventing the specified lateral movement.
High-velocity, turbulent or particle-laden media may require an internal liner to protect the bellows.
The liner requires sufficient overlap and radial clearance for the full lateral travel. Inadequate clearance can cause contact, noise, wear or movement restriction.
Bidirectional flow, reverse purging and solids accumulation should be identified before the liner arrangement is finalized.
The two bellows should share the lateral movement in the manner anticipated by the design.
Inspection should check for uneven bellows rotation, bent rods, loose nuts, intermediate-pipe sagging and liner contact.
Excessive movement at one bellows or movement outside the specified plane may indicate incorrect guiding, preset direction or piping displacement.
Final tie-rod quantity and arrangement, center-spool length, bellows rotation, lateral movement capacity, spring forces and structural loads are subject to the approved calculations, technical specification and manufacturing drawing.
参考尺寸仅供选型。可根据项目定制尺寸和法兰标准。
Quality control and inspection items are determined by product structure, order requirements and the order quality plan.
Dimensional inspection
Pressure testing
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