CENOSCO
Strategic partnership
+

From prescribed maintenance to evidence-based maintenance.

Cenosco IMS tells you what matters and how it should be managed. UReason tells you what is happening to it right now. Together they continuously connect your RCM/RBI strategy with real asset condition.

The closed loop
Outcome improves the strategy
Cenosco IMSRCM / RBI strategyFailure modes, criticality, consequence, required interval.
↓
UReasonLive condition & mechanismDegradation detected, diagnosed and trended — not raw alarms.
↓
IntegratedRisk-prioritised actionRisk × condition × consequence × urgency.
↓
CMMS / fieldExecution & resultWork order, intervention, recorded outcome.
Why this partnership

The strategy is mature. The feedback loop is missing.

Most reliability programmes already know what should be maintained, why, and with what level of risk tolerance. That knowledge lives in a mature RCM/RBI strategy. The gap is operational: the strategy is set periodically, and then stays static while the equipment keeps changing.

This integration closes that gap. It is not “adding predictive maintenance to IMS” — it closes the loop between your risk-based maintenance strategy and what the equipment is actually doing in operation.

For existing IMS customers that is especially compelling. You have already invested in RCM/RBI to establish a defensible maintenance strategy for your installed base. This integration makes that strategy dynamic rather than periodic — without asking you to rebuild anything.

“Cenosco IMS tells you what matters and how it should be managed. UReason tells you what is happening to it right now.”
Closed-loop, risk-informed asset reliabilitySynergy at work!
Two systems, one decision

Complementary, not competing.

Each product answers a different half of every maintenance decision.

Cenosco IMS

Strategic & risk context

The system of record for integrity and reliability.

  • —Why maintain?
  • —What can fail?
  • —What are the consequences?
  • —How critical is the failure?
  • —What maintenance strategy is required?
  • —What is the required interval?
  • —What is the audit trail?
UReason

Operational & condition context

Continuous diagnosis of the installed base.

  • —What is happening now?
  • —Is it beginning to fail?
  • —What degradation mechanism is developing?
  • —How fast is the condition changing?
  • —What action should be considered now?
  • —Can the interval be safely extended or deferred?
  • —What does the live data tell us?
The core proposition

A continuous feedback loop on top of the strategy you already have.

The classic IMS workflow runs analysis → task → interval → schedule → execute → record → periodic reassessment. The integration adds the operational half.

StrategyRCM/RBI strategy in IMS defines failure modes, criticality and the maintenance policy.
ObserveUReason monitors actual equipment condition and detects a developing degradation or failure mechanism.
PrioritiseA risk-prioritised action is generated, with the IMS maintenance strategy and risk context consulted.
DecideA maintenance or inspection decision is taken in context — inspect, defer, monitor, reassess.
ExecuteCMMS work order and field execution.
LearnThe result returns to IMS, and the RCM/RBI strategy is validated or reconsidered. The loop closes.

The result: the right maintenance action, for the right failure mechanism, on the right asset, at the right time.

Making RCM condition-aware

A known failure mode, now supported by live evidence.

An RCM analysis manages anticipated failure modes. UReason provides continuous evidence that one of them is — or isn’t — actually developing.

Take a centrifugal pump. The IMS RCM analysis defines a failure mode of bearing degradation, a strategy of condition monitoring, and a criticality of high.

UReason monitors the pump and detects a developing condition consistent with that failure mode. Instead of firing another isolated alarm, the integrated system reports an RCM failure mode that has become observable in real life.

The user is no longer looking at “an AI prediction.” They are looking at a known, high-consequence failure mode with evidence attached — and a recommended action already tied to the IMS task and CMMS work order.

Pump P-101

Deteriorating
Failure modeBearing degradation — current condition degrading, trend deteriorating
Risk / criticalityHigh · consequence class production + safety
UReason diagnosisProbable bearing degradation · 87% confidence
IMS strategyCBM currently applicable · related IMS task and CMMS work order linked
Recommended actionInspect bearing within next 72 hours
Interpreted events, not alarm noise

IMS should not become another alarm-management system.

A deliberate design choice: UReason does not dump hundreds of raw alerts into IMS. It feeds interpreted condition events, mapped to the IMS asset, failure-mode and strategy structure.

Raw signals · UReason

Something is changing

Vibration ↑, temperature ↑, efficiency ↓ on the monitored pump.

Diagnosis · UReason

Probable mechanism

Bearing degradation, 87% confidence — not a threshold breach.

Context · IMS

Does it matter?

Criticality A, consequence class production + safety, existing CBM strategy.

Action · Integrated

One recommendation

Inspect P-101 bearing during the next maintenance window.

An experience built in three levels

Site, priorities, and the reason behind every recommendation.

Level 1 · My Site

The whole installed base at a glance

Everything prioritised by IMS criticality combined with UReason condition — never condition alone.

The rule

A slightly degraded low-criticality pump should not outrank a moderately deteriorating high-criticality pump.

Level 2 · What should I do?

Intelligent maintenance priorities

The most valuable screen for an RCM practitioner: condition, criticality, failure mechanism and recommended action fused into one ranked list.

The shift

From “what maintenance tasks are due?” to “which assets actually need my attention?”

Level 3 · Why this?

Explainable predictive maintenance

Every recommendation is traceable into the integrity and reliability model — the UReason observation, the IMS criticality and RCM context, and the integrated recommendation, side by side.

Why it matters

Explainability is decisive for the reliability and integrity engineers who live in IMS.

12
Attention
37
Deteriorating
84
Abnormal
1,709
Healthy

Maintenance priority = consequence/risk × condition × degradation trajectory × action urgency.

AssetConditionIMS criticalityFailure mechanismAction
P-101DeterioratingHighBearing degradationInspect
HX-204DegradingHighFoulingClean / inspect
M-302DegradingMediumMotor / VFD issueDiagnose
CV-118DeterioratingHighStictionService
GB-401AbnormalMediumLubrication / bearingMonitor
Closing the RCM feedback loop

Is our RCM strategy actually working?

Most RCM programmes live with a gap between what we thought would happen and what actually happens. UReason supplies empirical evidence from the installed base to close it.

RCM effectiveness, per failure mode

What IMS can finally report

Predicted failure mechanism and times detected · false positives, actual failures, and failures despite intervention · detection lead time · condition-monitoring effectiveness · actual degradation rate and operating context.

That lets the reliability engineer ask, with evidence: should this PM task remain? Can the interval be extended? Should this asset move from time-based to condition-based maintenance?

It aligns directly with a core IMS objective — rationalising maintenance intervals based on actual degradation rather than generic assumptions.

A powerful RBI proposition

A trigger mechanism, not an automatic inspection order.

RBI and condition monitoring are not the same thing, and the integration respects that distinction. For pressure equipment and heat exchangers, RBI asks what degradation mechanisms are credible, what are their consequences, and how should we inspect? UReason adds what is the equipment telling us right now?

IMS remains the system of record where the formal RBI decision, justification and audit trail reside. The predictive signal triggers or informs an integrity decision — it does not replace it.

Exchanger HX-204

RBI trigger
ObservationHeat-transfer performance deteriorating faster than the RBI model expected
Credible mechanismFouling · consistent with the RBI degradation model
Integrated resultRBI reassessment recommended
Not“Inspection required tomorrow”
Four signals

Every decision in the integrated system rests on four questions.

① Condition

Something is changing

Pump efficiency deteriorating.

Provided by UReason
② Mechanism

We believe this is happening

Probable cavitation, bearing degradation or stiction.

Provided by UReason
③ Risk

This matters, because this asset is important

Criticality, consequence and integrity context.

Provided by IMS
④ Action

Therefore, someone should do something

Inspect · lubricate · clean · calibrate · repair · investigate · monitor · defer · reassess RCM · trigger RBI.

Integrated

The action layer matters most: it turns condition intelligence into a prioritised decision, and connects directly to CMMS execution.

Built for your installed base

Your site is already modelled in IMS. Let’s make it observable.

There is no need to build a second asset hierarchy for predictive maintenance.

IMS already holds

What should we manage?

Asset model
Site→Area→System→Equipment→Functional location
Reliability
Failure modesCriticalityConsequenceRCM / FMEARBI
Governance
Maintenance strategyRequired intervalCompliance & audit trail
↓ combined intelligence ↓
UReason adds

What is happening?

Detection
Real-time condition→Degradation mechanism→Failure mechanism
Forecast
Health & performance→Prediction→Remaining useful life→Urgency
↓
Integrated

What should we do now?

Priority
Risk × condition × consequence × urgency
Prioritised
MaintenanceInspectionInvestigationReassessment
Execution
CMMS work order→Field execution→Recorded result
Feeds back
RCM effectivenessRBI reassessmentInterval optimisationFailure-mode validationInstalled-base learning
What this partnership is and is not

Precision about the claim matters.

It is
  • Dynamic Reliability Management
  • Risk-Based Predictive Maintenance
  • Closed-Loop Asset Reliability

It turns your IMS RCM and RBI strategies into living strategies that continuously learn from the real condition of your installed base.

AI replaces RCM

RCM determines the logic of how failures should be managed; predictive analytics provides evidence about what is happening. The two reinforce each other.

Predictive replaces preventive

Condition evidence is used to determine where preventive maintenance is still justified, where it can be optimised, and where condition-based maintenance can take over.

UReason writes work orders automatically

That can be an outcome, but it is not the headline. The higher-value story is the right action, for the right failure mechanism, on the right asset, at the right time. The work order is simply the execution mechanism.

See it on your own assets

One site. Five to ten real assets. Six steps.

The most convincing demonstration starts not with architecture or APIs, but with your own pumps, motors, gearboxes, control valves and heat exchangers.

01Before. “You have 1,200 maintenance strategies in IMS.”
02Turn on UReason. “Here are the 23 assets where the actual condition is now changing.”
03Apply IMS context. “Of those 23, these 7 are high-criticality.”
04Correlate. “Of those 7, these 4 have an RCM failure mode matching the degradation UReason detected.”
05Prioritise. “These 2 require intervention now. This one does not — its criticality and consequence allow continued monitoring.”
06Close the loop. “And here are the RCM strategies that now have enough operating evidence to be reconsidered.”

That final step is what makes this strategic — not just another predictive-maintenance dashboard.

The bottom line

Not another application to run.
The missing operational feedback loop.

Adopt the integration to make the RCM/RBI investment you already made substantially more valuable — so teams act on the risks that actually require attention, and improve the strategy with evidence from the installed base.

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