G19
MOLD / CORE-PULL INTERFACE

Release every core pull and unscrewing axis as its own controlled interface.

Record the mechanism, motion and position map, drive and working demand, power and connectors, machine/ejector/robot sequence, safety boundary, abnormal recovery and FAT/SAT evidence for each mold axis.

ANSWER FIRST

A “core pull included” line is not an interface release.

The quote must pair each identified mold mechanism with one configured machine or external-drive circuit and one complete cell sequence. Keep unknown load, power, position or recovery states open; do not convert an interface name into a compatibility claim.

Carry the released axis into the cell interface register
Core-interface release gate
  • Named mold revision and mechanism/axis
  • Motion, position, working demand and action window
  • Power circuit, connector, pinout and normal/fault states
  • Mold, ejector, robot and part-release sequence
  • Safety ownership, recovery and FAT/SAT evidence
Carry the fixed context into the RFQ
MECHANISM FIRST

Do not map every mold movement to one linear core-in/core-out row.

Motion and load define the interface fields. An unscrewing or thread-release axis can require rotation, axial travel and reference behavior that a two-position slide does not describe.

Mechanism-specific motion, demand and interface fields
MechanismMotion to defineDemand to confirmInterface consequence
Linear core pull or slideTranslation between named in-mold and retracted positions, including direction, working stroke, datums and any intermediate stateRequired force or load basis through the motion, speed or time window, hold condition and permitted overlap with other movementsDrive type, power circuit, end-position evidence, command/acknowledgement semantics and collision-clear sequence
Unscrewing or thread-release axisRotation or coupled helical motion with direction, turns or angle, pitch/lead relationship, axial travel and defined thread-release stateTorque and axial-load basis, speed/profile, position or reference method, brake/hold behavior and part or insert constraintMotor/drive or hydraulic mechanism, reference and position feedback, rotation completion and recovery without treating it as a simple two-position slide
Compound or interlocked mold movementTwo or more slides, cams, rotary axes or mold sections with individual identities, collision regions and dependency orderDemand and limits for each axis plus the states that permit or block another core, mold, ejector or robot movementPer-axis commands and feedback, interlock owner, timeout/fault state and one controlled sequence drawing
Passive or mold-actuated coreMechanical motion created by mold opening/closing, a cam, spring or other mold mechanism rather than a commanded machine axisRequired mold travel, load path, wear/return condition and evidence that the mechanism reaches its defined stateRecord it explicitly even when no powered interface exists so the machine, mold-protection and robot sequence do not assume an unavailable signal
RFQ / INTERFACE REGISTER

Fourteen fields keep each mold axis traceable from drawing to recovery.

Duplicate the register for every mechanism. Do not merge two cores, a slide and a thread-release axis because they share one mold.

Core-pull and unscrewing-axis RFQ fields with requested evidence
Interface fieldRecord for each mold mechanismEvidence to request
Mold and mechanism identityMold number/revision, cavity or station, core/slide/unscrewing-axis ID, component released and drawing ownerControlled mold assembly, section and mechanism list with matching names on every interface document
Motion and position mapDirection, datums, in-mold/retracted/reference/intermediate states, collision envelope and a position diagramDimensioned motion drawing or approved kinematic record tied to the current mold revision
Mechanism and power typeLinear, rotary, helical, compound or passive mechanism; hydraulic, electric, pneumatic, mold-actuated or other driveToolmaker design record plus the proposed machine, drive, valve or external-controller scope
Working demandRequired stroke, angle/turns or coupled travel and the traceable force, torque, axial/radial load or hold-demand basisToolmaker or responsible engineer calculation, simulation, measurement or representative-trial record with assumptions
Action windowPermitted speed/profile or time window, dwell/hold condition, simultaneous movements and the process state that starts and completes the actionApproved sequence chart with conditions and owner; no transfer from another mold or mechanism
Hydraulic interfaceRequired pressure and flow basis, fluid, supply/return/drain arrangement, ports/couplings, hose route, return constraint and heat/leak responsibilityMold hydraulic schematic and supplier-confirmed configured-machine or external-power-unit circuit and limits
Electric, pneumatic or other powerMotor/drive/controller, supply and power basis, brake/reference needs; or pneumatic supply, exhaust and state behavior; plus every external deviceCurrent device data, circuit diagram, option list, protection/isolation scope and approved mating-interface detail
Sensors and state semanticsLimit/proximity/encoder or other device, location, target, normal/fault state and exact meaning of in, retracted, referenced, standstill or releasedSensor schedule, mounting drawing and controlled signal/state definition verified on the installed mechanism
Connector and pinoutConnector/mating side, cable, pin assignment, signal direction, voltage/current basis, reference potential, shielding, labels and spare contactsAs-built electrical drawing and continuity/pinout check for both endpoints; a named interface alone is insufficient
Machine sequenceCore commands and confirmations beside mold close/open, injection/holding/cooling and mold-protection statesConfigured cycle sequence with denied-motion, timeout and state-transition checks
Ejector and part-release handoffWhich core or thread-release state permits ejection, part release and return, and which evidence confirms each separate stateLinked ejector-interface record; completed core motion alone does not prove acceptable part removal
Robot and takeout handoffRobot position/enable dependencies, entry and exit clearance, insert/part state, reject path and ownership of incomplete handoffsExact robot-interface edition/implementation, mapping and cell sequence test with safety signals controlled separately
Safety and responsibility boundaryHazards, guarding/interlocking and energy-control owners across mold, machine, external drive, robot/integrator and destination siteResponsible-party risk assessment and validation records; this worksheet does not design or validate a safety function
Abnormal recovery and change controlLoss of power/pressure/signal, blocked or out-of-position mechanism, timeout, trapped part, manual recovery authority, restart state and recheck triggersManufacturer-approved recovery instructions, FAT/SAT observations, deviations, closure evidence and as-built revision set
EVIDENCE SEQUENCE

Move from one mechanism drawing to one as-tested cell record.

This is a procurement evidence sequence, not a mold setup, troubleshooting, maintenance or functional-safety procedure.

01

Freeze identities before mapping signals

Name the exact mold revision and every core, slide, unscrewing axis, drive and sensor. A generic 'core pull' line cannot control multiple mechanisms.

02

Draw motion and collision states

Show in-mold, retracted, reference and intermediate positions, the direction of motion and the regions shared with the mold, ejector, part and robot.

03

Separate demand from available power

Keep mold-required stroke/rotation and load beside supplier-confirmed hydraulic, electric, pneumatic or external-drive capability for the proposed configuration.

04

Map commands, confirmations and safety separately

Record the exact connector, pinout and normal/fault semantics. Keep ordinary control or OPC UA data distinct from the responsible safety design and signals.

05

Build the complete cell sequence

Place each axis beside mold movement, injection, ejector, robot entry/takeout and part release, including denied states, timeouts and abnormal recovery.

06

Retain FAT, SAT and as-built evidence

Tie the test result to the delivered machine, mold, options, external devices, robot, software and drawings. Reopen affected checks after any change.

FAT / SAT / HANDOVER

An interface is released only inside its tested configuration.

The result stays tied to the identified mold mechanism, machine circuit, external devices, robot, software and test conditions.

Acceptance gates, evidence and release boundaries
GateEvidence to retainBoundary
Document matchMold/mechanism IDs, drawings, machine option list, external drives, connector maps and software/configuration revisions agree.Document agreement establishes identity, not working compatibility or safe operation.
Endpoint and state checkEach command, normal confirmation, fault state, reference state and connector/pin is checked against the installed endpoints.An electrical state does not prove hydraulic load capacity, mechanical clearance or part release.
Sequence FATAvailable normal, denied, timeout, loss-of-signal and restart cases are recorded on the identified machine/mold or approved representative setup.FAT covers only the test arrangement and does not replace final cell or site acceptance.
Installed-cell SATThe final mold, power circuits, machine, robot, guarding, takeout path and destination conditions are checked under an approved plan.SAT evidence remains conditional on the stated configuration, conditions and responsible approvals.
Recovery and handoverApproved abnormal-state recovery, energy-control boundary, training, as-built files, deviations and revalidation triggers are handed over.This buyer checklist is not an operating, maintenance, troubleshooting or functional-safety procedure.
PRIMARY SOURCES / BOUNDARY

Use interface documents and named-OEM examples without transferring capability.

Reviewed 31 July 2026. EUROMAP 13 supplies an electrical connection and position-feedback structure, EUROMAP 74 addresses external electric core drives, and EUROMAP 79 supplies non-safety machine/robot data semantics. ARBURG documents are product-specific catalogue examples only. None proves a NEW ORIENTAL IMM interface, hydraulic or electric capability, safety function, compatibility, option or delivered application.

EUROMAP

EUROMAP 13 Version 1.5 — IMM and Core Pullers, Electrical Interface

The official recommendation defines a plug interface for two core pullers, including supply/reference contacts and separate core-in/core-retracted limit or proximity signals; an additional plug is needed for further core pullers under this interface.

Boundary: EUROMAP 13 is an electrical connection and feedback interface. It does not establish hydraulic pressure/flow or force capability, complete safety functions, motion clearance, sequence acceptance or compatibility of any proposed machine and mold.

EUROMAP

EUROMAP 74 Version 1.3 — IMM and Electrically Driven Cores

The official recommendation covers the connection to an external servo drive or frequency converter for electrically driven cores and defines movement, ready, reference and optional standstill/shutdown signal concepts.

Boundary: EUROMAP 74 does not turn a rotary or helical thread-release axis into an ordinary linear core pull. The corresponding motion, drive, feedback, collision regions and safety responsibilities still require project definitions and validation.

EUROMAP

EUROMAP 79 RC 1.00.06 — IMM-to-Robot Data Exchange

The official page lists position signals for multiple cores and robot enabling signals inside the March 2024 release-candidate data model.

Boundary: EUROMAP 79 data exchange does not replace safety signals; the official page directs safety signals to EUROMAP 81. It also does not prove a physical connector, core drive, mechanical fit or complete cell sequence.

EUROMAP

EUROMAP Technical Recommendations Catalogue

The current official catalogue identifies EUROMAP 13 as the electrical interface for injection molding machines and core pullers and lists adjacent mold, robot and electrically driven-core recommendations separately.

Boundary: The catalogue is used to verify recommendation identity and scope. Listing a recommendation is not evidence that any endpoint implements it or that two implementations are compatible.

ARBURG

Multi-Axis Robots — Yaskawa, Powered by ARBURG Technical Data

The official 2026 technical catalogue is a named-OEM example showing that core-pull communication can depend on the selected machine/robot control architecture and option scope.

Boundary: Its equipment, interface and option statements apply only to the identified ARBURG system and document revision. No ARBURG interface, count, robot function or capability is transferred to NEW ORIENTAL IMM.

ARBURG

Rotary Units — Technical Data

The official accessory data is a product-specific example separating hydraulic and electric rotary drives, rotation fields, sequence integration and optional core-pull oil circuits.

Boundary: A platen rotary unit is not automatically a mold unscrewing axis. Its architecture, dimensions and values are not copied into a universal rule or attributed to NEW ORIENTAL IMM.

BUYER QUESTIONS

Core-pull and unscrewing interface FAQ

These answers keep electrical interfaces, working capability, mechanism type, robot data and safety evidence in separate records.

01Is EUROMAP 13 enough to prove that a hydraulic core pull will work?

No. EUROMAP 13 Version 1.5 defines an electrical plug and position-feedback interface for core pullers. Record hydraulic pressure/flow and return requirements, ports, configured supply capability, working stroke/load, sequence, safety responsibility and acceptance evidence separately.

02Can an unscrewing axis be listed as a normal core-in/core-out circuit?

Not by default. A thread-release mechanism may need rotational direction, turns or angle, pitch-related axial travel, torque and axial load, a reference method, braking/holding and a defined release state. Preserve the actual mechanism rather than forcing it into a two-position linear-core record.

03Does EUROMAP 79 replace the robot or cell safety interface?

No. The current EUROMAP 79 page says its OPC UA interface does not exchange safety signals and points to EUROMAP 81. Data nodes and ordinary enabling semantics remain separate from the responsible cell safety design, hardware/signals and validation.

04What should be recorded for each position sensor?

Record the device and target, physical location, connector/pin, voltage and signal direction, the exact meaning of normal and fault states, and how the installed sequence proves in-mold, retracted, referenced, standstill or another required condition.

05Can the core move while the mold, ejector or robot is moving?

Only when the identified mechanism, configured cell and responsible engineering review explicitly permit the combined motion and define its collision, load, control and safety conditions. Do not infer simultaneous motion from a catalogue label or another installation.

06What belongs in FAT and SAT for the core-pull interface?

Use an approved plan covering document identity, endpoints, normal and fault states, permitted and denied sequences, timeouts, loss of power or signal, recovery, part release and robot handoff. Retain the exact test configuration, observations, deviations, approvals and as-built files.

CORE-PULL INTERFACE / NEXT STEP

Send one controlled register for every mold axis.

Attach the mold and mechanism drawings, motion/load basis, power circuits, sensors, connectors and pinouts, complete machine/ejector/robot sequence, safety ownership, abnormal recovery plan, FAT/SAT matrix and open evidence list.

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