Integrations

It reads your plant. It does not replace it.

Furnace, batch, forming, lehr, inspection, MES, historian, robotics and identity, through the protocols already on the floor.

Integrations

It speaks plant, not cloud

Glasent reads and writes through the furnace, forming, lehr, inspection and MES systems already on the floor. No rip-and-replace, no parallel historian, no new HMI to learn.

Furnace and batch

Furnace SCADA and PLC, batch-plant weighing, redox and fining instruments

Setpoint reads and guarded writes over OPC UA and Modbus

Forming

Float-bath and IS-machine controls, gob-weight and timing systems

Gob, pull, ribbon speed and roller reads; guarded writes

Annealing

Lehr zone controllers and belt drives

Zone temperature and curve reads; guarded writes

Inspection

Camera, optical, thermal, polariscope and birefringence stations

Frames, stress maps, defect records, line-speed streams

Glass MES

Orders, grades, lots and ware genealogy

Spec and tolerance reads; genealogy and release writes

Historian

Time-series stores and lab information systems

Backfill, replay and lab chemistry

Robotics

Robot cells, conveyors and stackers via NVIDIA Isaac

Pick, path and stack commands inside the safety envelope

Identity and edge

SSO and RBAC via SAML or OIDC; NVIDIA Jetson Orin edge nodes

Named approvers, tag-level roles, sub-100 ms inference

Compatibility

Systems and what we do with them

Protocols and record types, not vendor endorsements. Actuator and sensor interfaces vary by site and are confirmed in the data review.

Systems, protocols and operations
SystemProtocol or formatReadWrite
Furnace SCADA and PLCOPC UA, Modbus TCPZone temperatures, pull, redox, finingZone setpoints, pull steps (guarded)
Batch plantOPC UA, vendor APIWeights, cullet ratio, moistureDosing setpoints (guarded)
Float-bath controlsOPC UARibbon speed, roller angle, bath temperaturesSpeed and roller setpoints (guarded)
IS machinesVendor API, OPC UAGob weight, timing, section stateGob weight and timing (guarded)
Lehr controllersOPC UA, ModbusZone temperatures, belt speedCurve and zone setpoints (guarded)
Inspection stationsGigE Vision, vendor SDKs, file dropsFrames, defect records, stress mapsNone
Glass MESREST, SQL, file exchangeOrders, specs, lotsGenealogy and release records
Historians and LIMSSQL, REST, CSVTime series, lab chemistryNone
Robot cellsNVIDIA Isaac, vendor controllersCell state, camerasPaths and pick commands inside the safety envelope
IdentitySAML, OIDCUsers, rolesNone
Run timeline · scenario

Where the integrations appear in a run

Every Glasent run is an ordered, inspectable sequence. This is scenario_fl2_01 on FL-2 · float line · clear soda-lime: Thickness change FL-2 · 6 mm to 4 mm clear float, residual stress inside spec, zero escaped seeds. It is a worked scenario that shows the shape of a run, not a measured customer result.

scenario_fl2_01 · agent graph · FL-2 10 nodes · 1 approval gate · scenario
01 · orchestrator ingest.order ✓ SUCCEEDED 02 · twin twin.simulate ✓ SUCCEEDED 03 · batch_melt melt.pull ✓ SUCCEEDED 04 · form_shape form.ribbon ✓ SUCCEEDED 05 · anneal_stress anneal.curve ✓ SUCCEEDED 06 · defect_inspect inspect.ribbon ✓ SUCCEEDED 07 · orchestrator yield.balance ✓ SUCCEEDED 08 · orchestrator approve.human ◆ APPROVAL 09 · robot_handling handle.stack ✓ SUCCEEDED 10 · orchestrator ware.qualify ✓ SUCCEEDED
scenario_fl2_01 FL-2 · float line · clear soda-lime scenario SUCCEEDED
  1. 01 ingest.order SUCCEEDED 0.9 s

    Plant Orchestrator · Pulled the 4 mm clear float spec, optical-grade tolerances and the standing energy window from plant MES; locked the target envelope for the run.

  2. 02 twin.simulate SUCCEEDED 41 s

    Glastwin · Simulated 36 candidate transition recipes across furnace pull, tin-bath ribbon speed and lehr curve; ranked them on seed risk, residual stress and energy per tonne.

  3. 03 melt.pull SUCCEEDED 6 m 20 s

    Meltrix · Stepped furnace pull toward the new ribbon mass flow while holding melt temperature and fining; chemistry stayed inside the composition window.

  4. 04 form.ribbon SUCCEEDED 4 m 05 s

    Formeon · Raised ribbon speed and re-angled the top rollers to thin the ribbon toward 4 mm; thickness converged inside the design tolerance.

  5. 05 anneal.curve SUCCEEDED 3 m 12 s

    Anneon · Re-shaped the lehr cooling curve for the thinner, faster ribbon so residual stress stays inside spec at the higher speed.

  6. 06 inspect.ribbon SUCCEEDED continuous

    Seedscan · 8 camera, optical and stress stations streaming; a seed cluster flagged at the ribbon edge and attributed to the pull transient, routed to cullet.

  7. 07 yield.balance SUCCEEDED 2.4 s

    Plant Orchestrator · Re-sequenced cut sizes so transition ribbon routes to cullet recovery and good ribbon to the highest-value open order.

  8. 08 approve.human APPROVAL 48 s

    Plant Orchestrator · The second pull step exceeded the site autonomy threshold. Held for the glass technologist on shift; approved and written to the audit log.

  9. 09 handle.stack SUCCEEDED 1 m 10 s

    Panebot · Re-planned pick and stack paths for the thinner panes; plates flagged by Seedscan diverted to cullet, good plates stacked to rack A3.

  10. 10 ware.qualify SUCCEEDED 1 m 02 s

    Plant Orchestrator · Lot released with full genealogy: batch, melt, forming, lehr curve, defect map, stress map and the technologist's approval.

Tool calls · scenario

Integration calls, in the open

Every tool invocation, argument and result is written to an immutable, human-readable log, and every reasoning step is expandable. Nothing about a run is hidden from the plant.

tool-call stream · scenario_fl2_01
  1. 02:14:03mes.read_orders({ line: "FL-2", next: "CLR-4MM" })
  2. 02:14:03ok spec locked · 4.0 mm · optical grade · stress limit set
  3. 02:14:04twin.simulate({ candidates: 36, horizon: "22 min" })
  4. 02:14:45ok best recipe #19 · seed risk low · stress inside spec
  5. 02:14:46policy.evaluate({ recipe: 19, autonomy: "L3" })
  6. 02:14:46ok 11 writes permitted · 1 write requires human approval
  7. 02:14:47scada.write_setpoint({ tag: "F1.PULL_SP", step: 1 })
  8. 02:21:07ok pull step 1 settled · fining stable · chemistry in window
  9. 02:21:08float.write_ribbon({ speed: "+", rollers: "re-angle" })
  10. 02:25:13ok thickness converging to 4.0 mm · flatness in tolerance
  11. 02:25:14lehr.write_curve({ zones: 12, profile: "4mm-fast" })
  12. 02:28:26ok residual stress inside spec at new belt speed
  13. 02:28:27vision.stream({ stations: 8, model: "seedscan-v3" })
  14. 02:28:41seed cluster · ribbon edge · attributed to pull transient
  15. 02:28:42cuopt.sequence({ objective: "cullet+energy" })
  16. 02:28:44ok transition ribbon routed to cullet · good ribbon to order
  17. 02:28:45approval.request({ action: "pull_step_2" })
  18. 02:29:33ok approved by the technologist on shift · logged
  19. 02:31:02isaac.plan_path({ stack: "A3", thickness: "4.0 mm" })
  20. 02:32:12ok paths validated in Isaac Sim · flagged plates diverted
  21. 02:33:15mes.log_lot({ lot: "FL2-4MM", genealogy: "full" })
  22. 02:34:17ok scenario run complete · stress in spec · 0 escaped seeds

Reasoning trace

Plan, thought, action, observation, exactly as the orchestrator would record it.

GoalMove FL-2 from 6 mm to 4 mm clear float with residual stress i…

Move FL-2 from 6 mm to 4 mm clear float with residual stress inside spec and zero escaped seeds.

PlanSimulate the transition on the twin first. Lead with furnace p…

Simulate the transition on the twin first. Lead with furnace pull so the ribbon mass flow is right before the forming change, then thin the ribbon, then re-shape the lehr curve. Watch the ribbon continuously; hold the second pull step for a human.

ThoughtThe standing recipe changes pull and ribbon speed together. On…

The standing recipe changes pull and ribbon speed together. On the twin that produces a fining transient that seeds the ribbon edge. Sequencing the pull step ahead of the forming change and holding fining removes most of it.

Actiontwin.simulate(candidates=36) returned recipe #19: pull in two …

twin.simulate(candidates=36) returned recipe #19: pull in two steps, forming change after fining settles, lehr curve re-shaped before belt speed rises.

ObservationRecipe #19 scored lowest on seed risk with stress inside spec.…

Recipe #19 scored lowest on seed risk with stress inside spec. Two candidates scored lower on energy but pushed residual stress over the site limit and were discarded.

ActionExecute recipe #19 under autonomy level L3: eleven setpoint wr…

Execute recipe #19 under autonomy level L3: eleven setpoint writes permitted, the second pull step routed to the glass technologist.

ObservationSeed cluster at the ribbon edge at 02:28:41, attributed to the…

Seed cluster at the ribbon edge at 02:28:41, attributed to the pull transient. cuOpt routed that ribbon to cullet recovery; no flagged plate reached a customer stack.

OutcomeScenario run complete. Thickness at 4.0 mm, residual stress in…

Scenario run complete. Thickness at 4.0 mm, residual stress inside spec, one approval gate, full genealogy written to the lot record.

Connection

How a plant gets connected

Connection is the first three weeks of a pilot and the part most likely to surprise, which is why it is scoped in the data review.

  1. 01Tag survey

    The plant's tag list, inspection record formats and MES exports are reviewed against the wedge workflow's needs.

  2. 02Read-only connectors

    The edge node reads furnace, forming, lehr, inspection and MES data. No write path exists yet.

  3. 03Tag model

    Reads are mapped into one typed tag model with units, ranges and owners. This becomes the tool registry.

  4. 04Allow-list

    The site names the tags an agent may write, with rate and magnitude limits, at the autonomy level chosen.

  5. 05Shadow mode

    Recommendations are generated and scored against the baseline before any write is enabled.

Boundaries

What Glasent deliberately does not do

A supervisory layer is defined as much by what it leaves alone.

No replacement

It does not replace your DCS, SCADA or MES

Glasent reads and writes through them. If Glasent stops, the plant keeps running on its existing control.

No safety writes

It does not touch interlocks or safety PLCs

Safety systems are read for state and never written. Robot safety controllers are untouched.

No parallel historian

It does not build a second source of truth

Telemetry is read from the plant's historian; the audit log and genealogy are written back to plant storage.

No undeclared tags

It does not write outside the allow-list

A tag not in the registry cannot be written, whatever a model proposes.

Accelerated computing

Physical AI, at the furnace

A float ribbon never stops and an IS machine forms thousands of pieces an hour. Perception has to be local, deterministic and fast, so Glasent runs GPU inference at the plant edge and keeps training, simulation and optimisation on DGX, HGX and OVX.

Jetson Orin · DeepStream · Holoscan · TensorRT

Edge perception

4 to 24 synchronised camera, optical, thermal and stress stations per line. Sub-100 ms defect alerts on container lines and sub-500 ms fused stress and flatness decisions on flat glass are the design targets.

Triton · NIM

Model serving

Defect, stress, time-series drift and process-risk models served across edge and plant servers, with glass-knowledge and reasoning endpoints packaged as NIM services.

DGX / HGX · NeMo

Training

Multimodal models fine-tuned on inspection imagery, optical and stress outputs, PLC time series, recipes, gob weight, furnace temperature, pull rate, lehr curves, energy, cullet and final grade. Planned cadence: monthly plant refreshes.

Omniverse · OVX

Digital twin

GPU-accelerated furnace CFD, glass-flow and annealing-stress simulation of the as-run line, with 10 to 100 candidate recipes evaluated per grade change.

Omniverse Replicator · Cosmos

Synthetic data

50,000 to 250,000 rare seed, stone, cord, inclusion, check and stress scenes per glass family, always validated against real inspection distributions before training use.

cuOpt · RAPIDS

Optimisation

Pull-rate constraints, energy windows, cullet routing, forming and annealing sequence and line takt, with RAPIDS for high-volume telemetry ETL.

Autonomy

Four levels, set per agent and per tag

A plant does not go from manual to unattended in one step. Glasent makes the level explicit, auditable and reversible at any time, and the first release plan is shadow, then assist, then graduated autonomy.

Autonomy levels and the human role at each
LevelWhat the agent doesWhat the person doesWhen
L1 · Shadow and advisoryObserves, predicts and recommends setpoints with its reasoningEnters every change manually; a baseline is measuredPilot weeks 1 to 3
L2 · AssistProposes a write; it executes on approvalApproves each write in the review consolePilot weeks 4 to 8
L3 · BoundedWrites inside tag, rate and magnitude limits on low-risk loopsApproves pull steps, grade releases and anything above thresholdPilot week 9 onward
L4 · UnattendedRuns the approved envelope without promptingSets the envelope; reviews the shift recordPlanned, after graduated autonomy proves out
Guardrails

An agent that can move a furnace needs a leash

Glasent writes to production equipment. Every capability is scoped, every write is policy-checked, and every action is written to an append-only audit log the plant owns.

  • Bounded action space. Each agent can only write to an explicit tag allow-list, inside per-tag rate and magnitude limits.
  • Policy engine before every write. Autonomy level, shift, product, interlock state and operator presence are all evaluated before a setpoint moves.
  • Human-in-the-loop gates. Anything above the site threshold, pull steps, grade releases, safety-adjacent moves, waits for a named approver.
  • Immutable audit log. Append-only, hash-chained, exportable, and retained on the plant's own storage.
  • Hard fallback. Loss of the edge node, the network or the model returns control to the furnace, forming and lehr systems' last known-good state.
  • Tenant and IP isolation. Compositions, forming recipes and defect libraries never cross a customer boundary. On-prem deployment available.

Compliance posture

Compliance and certification status
StandardScopeStatus
SOC 2 Type ICloud control plane RUNNING Planned in the first six months
SOC 2 Type IICloud control plane QUEUED Planned in months six to twelve
IEC 62443Plant-edge OT security RUNNING Design-aligned
ISO 9001 / IATF 16949Quality and genealogy records SUCCEEDED Record formats supported
Container and safety-glass standardsStress and defect conformance records SUCCEEDED Record formats supported

Read the security overview

From the plant floor

The problems we hear

No customer quotes yet; we are pre-launch. These are the three buyer personas the product is built for and the pain each one describes, in their own terms.

"The furnace has run for years on the same setpoints. The process never has. We find out a melt drifted when the cullet pile grows."

Plant / operations director · ICP persona

"I can tell you why a check appeared from the lehr curve and the gob weight. I cannot be at every line, and the people who could are retiring."

Glass technologist · ICP persona

"A missed seed is a reject. A missed stress fault is a pane that shatters in the field. I need genealogy on every piece, not a spot check."

Quality / reliability engineer · ICP persona
FAQ

Straight answers

The questions plant directors and glass technologists ask in the first meeting.

Yes, but only within an explicit tag allow-list with per-tag rate and magnitude limits, and only at the autonomy level your site has set. Every pilot starts in shadow mode, where Glasent predicts and recommends and a person enters everything. Writes come later, after the recommendations have earned it.

Get started

Check your stack

Send the tag list and the inspection record format. The data review says what connects in week one and what needs a vendor conversation.