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Overview

General comment

On-module voltage regulator assembly for DDR5 memory modules. It converts a 12 V supply into the three regulated rails a DDR5 module needs, VDD and VDDQ at 1.1 V and VPP at 1.8 V. The dataset covers the whole regulation stage rather than one part - the multi-rail regulator controller, the buck inductors, the ceramic and polymer output capacitors, the trim resistors, and the share of module board that carries them. Regulation on the memory module itself is required by the DDR5 standard.

Technology
Power Management, Point-of-Load Regulator
Geography
Global average data from equipment vendor specifications and industry literature

System boundary

System boundary - DDR5 memory voltage regulator assembly, 15 WSystem boundary figure: identity, gate in, entering flows, the dashed system boundary and the unit processes inside it, the reference product, emissions and waste, and below it the flows that are recorded but not quantified. No inventory quantities.DDR5 memory voltage regulator assembly, 15 WGATE INRaw materials and sub-componentsENTERING FLOWSFreight transportOtherSYSTEM BOUNDARYCOMPOSED OF OTHER REEL DATASETSMulti-rail DDR5 voltageregulator ICPMIC, QFN 4x4, 180nm0805 power inductors forbuck stagesChip Inductor 0805X5R 0402 input decouplingMLCC X7RX5R 0402 output filteringMLCC X7RBulk output capacitorAluminum ElectrolyticRegulator stage board4-Layer FR4 PCB, ENIG finishREFERENCE PRODUCTDDR5 memory voltage regulatorassembly, 15 WAssembled and tested componentEMISSIONS AND WASTEEmissions to airEmissions to waterWaste routesRECORDED BUT NOT QUANTIFIEDExclusions not yet characterisedNo exclusion record was found for this datasetNOT CHARACTERISEDsystem boundaryreference flowentering flowemission / waste

The figure groups this dataset's unit processes by class. It is not a count of manufacturing steps — each process runs over as many passes as the flow requires, and those pass counts ship with the dataset.

Download this figure (SVG)

Data quality and references

Composite DQI 2.3 Good
Reliability
3.0
Completeness
2.1
Temporal
2.0
Geographic
2.0
Technological
2.4
How the score is calculated: Constituent datasets have more influence when they contribute a larger share of the modelled cradle-to-gate energy demand.

Pedigree scores follow the ecoinvent data-quality matrix: 1 is the best attainable, 5 the weakest. The composite is their aggregate.

Sampling procedure
Component vendor specifications, academic papers, industry literature
Coverage status
Composed from linked REEL datasets
Pedigree-scored source files
56 — the source records behind this dataset's manufacturing operations. Each carries the five pedigree axes above; the composite DQI aggregates them.

Technosphere inputs

7 flows. Quantities are not published; they ship with the dataset on Circa.

Multi-rail DDR5 voltage regulator IC REEL datasetunit
Derivation basis
  • Calculated by the manufacturing model. The linked REEL dataset carries the upstream life cycle sources.

No source is attached to this row.

Source citations
Not stated
Upstream REEL dataset
PMIC, QFN 4x4, 180nm
Background dataset
Modelled by REEL; see the upstream dataset above.
Notes
Adjusted for assembly yield.
Uncertainty
No range defined.
Unit
unit
0805 power inductors for buck stages REEL datasetunit
Derivation basis
  • Calculated by the manufacturing model. The linked REEL dataset carries the upstream life cycle sources.

No source is attached to this row.

Source citations
Not stated
Upstream REEL dataset
Chip Inductor 0805
Background dataset
Modelled by REEL; see the upstream dataset above.
Notes
Quantity is in reference-component equivalents, not pieces: this entry's declared total mass divided by the referenced dataset's reference-component mass, then adjusted for assembly yield. Read it against that reference mass, not against any piece count in this row's name.
Uncertainty
No range defined.
Unit
unit
X5R 0402 input decoupling REEL datasetunit
Derivation basis
  • Calculated by the manufacturing model. The linked REEL dataset carries the upstream life cycle sources.

No source is attached to this row.

Source citations
Not stated
Upstream REEL dataset
MLCC X7R
Background dataset
Modelled by REEL; see the upstream dataset above.
Notes
Quantity is in reference-component equivalents, not pieces: this entry's declared total mass divided by the referenced dataset's reference-component mass, then adjusted for assembly yield. Read it against that reference mass, not against any piece count in this row's name.
Uncertainty
No range defined.
Unit
unit
X5R 0402 output filtering REEL datasetunit
Derivation basis
  • Calculated by the manufacturing model. The linked REEL dataset carries the upstream life cycle sources.

No source is attached to this row.

Source citations
Not stated
Upstream REEL dataset
MLCC X7R
Background dataset
Modelled by REEL; see the upstream dataset above.
Notes
Quantity is in reference-component equivalents, not pieces: this entry's declared total mass divided by the referenced dataset's reference-component mass, then adjusted for assembly yield. Read it against that reference mass, not against any piece count in this row's name.
Uncertainty
No range defined.
Unit
unit
Bulk output capacitor REEL datasetunit
Derivation basis
  • Calculated by the manufacturing model. The linked REEL dataset carries the upstream life cycle sources.

No source is attached to this row.

Source citations
Not stated
Upstream REEL dataset
Aluminum Electrolytic
Background dataset
Modelled by REEL; see the upstream dataset above.
Notes
Quantity is in reference-component equivalents, not pieces: this entry's declared total mass divided by the referenced dataset's reference-component mass, then adjusted for assembly yield. Read it against that reference mass, not against any piece count in this row's name.
Uncertainty
No range defined.
Unit
unit
Regulator stage board REEL datasetm2
Derivation basis
  • Calculated by the manufacturing model. The linked REEL dataset carries the upstream life cycle sources.

No source is attached to this row.

Source citations
Not stated
Upstream REEL dataset
4-Layer FR4 PCB, ENIG finish
Background dataset
Modelled by REEL; see the upstream dataset above.
Notes
Adjusted for assembly yield.
Uncertainty
No range defined.
Unit
m2
Component inbound, CN component supply to CN PSU assembly - Road Freight transporttkm · -40% / +400%
Derivation basis
  • Specified for this manufacturing operation and scaled to the dataset's functional unit.

No source is attached to this row.

Source citations
Not stated
Background data
ecoinvent 3.12
Background dataset
transport, freight, lorry, unspecified
Notes
Inbound freight uses the net-of-market mass basis: parent product mass after subtracting material mapped to ecoinvent markets, because those market datasets already include their own freight. Ref-linked components remain in the transported mass as discrete goods. Bulk tray or light carton shipping packaging is included at the class-specific factor while its production burden is excluded.
Uncertainty
-40% / +400% around the published quantity. The bounds themselves ship with the dataset on Circa.
Unit
tkm — tonne-kilometres, a transport effort rather than a mass

Outputs and waste

No output flows are recorded at this level.

Emissions to air

No emissions to air are recorded at this level.

Emissions to water

No emissions to water are recorded at this level.

Flows not quantified

No flows are recorded for this dataset without a quantity.

Limitations and unquantified flows (3)

Limits this dataset declares about itself: first any limit stated in its own description, then any limit it declares flow by flow, grouped by channel. Each entry below is the model's own disclosure.

  • The polymer capacitor rows on this dataset are booked against a wet aluminum electrolytic capacitor, because no dataset in this collection describes the polymer part. That is a different construction: a solid conductive-polymer cathode in place of an impregnated liquid one, made by a different sequence of steps. The quantity published for these rows is not a count of capacitors either. It is the ratio of the mass declared here to the reference part's mass, and because these capacitors are LIGHTER than that reference part the published number is smaller than the number of capacitors on the board, and their materials and energy are under-counted in the same proportion. The declared masses also sit below every published mass that could be retrieved for surface-mount polymer capacitors of this rating, but that population is four figures deep and from a single maker, which is too thin to re-base them on. Correcting the mass without correcting the construction would only make a wrong-chemistry row look more plausible, so the two are held together for one correction. These rows carry well under one percent of this dataset's electricity.
  • Two of the ceramic capacitor rows here name one temperature-characteristic class of dielectric and are booked against a dataset for another. The substituted part is the same kind of component, built the same way, in the same case size and at the same piece mass this dataset declares; the two differ in the dopant package that sets how far the capacitance drifts with temperature. No dataset in this collection describes the named class in this case size, and moving these rows onto the dataset that carries the named class would put a smaller case and a much lighter piece in place of the declared ones, which is the larger of the two errors. The substitution is stated on each affected row.
  • The board this regulator stage sits on is represented by a general-purpose four-layer rigid board of the same area. This dataset states only how much board the stage carries; it states no outline, no layer count and no surface finish. So the layer count and the surface finish published here are the substituted board properties rather than measured properties of this product, and the board area is that declared mass converted at the substituted board's own mass per unit area rather than a dimension anyone has read.

The flows above are this dataset's own records. What follows are the scope rules set once for the whole database in the methodology report, repeated here so every dataset page carries them.

Database-wide boundary policy — applies to every REEL dataset

These boundaries are set once for the whole database, in Chapter 2 of the methodology report, and apply to this dataset wherever they are relevant to it. The excluded flows listed above are specific to this dataset.

Use phase
Product operation is outside the cradle-to-gate scope.
End-of-life treatment
Recycling and disposal are outside the cradle-to-gate scope.
Distribution and retail
The gate is a finished component ready for integration into a higher-level assembly.
Inbound transport of raw materials
Transport of purchased raw materials to the manufacturing facility is already inside the upstream "market for" datasets that users link to a background database, so it is not modelled a second time here. This does not cover freight between REEL production stages, which is modelled where a dataset authors it.
Returnable shipping containers
Where freight between production stages is modelled, the mass moved is the product itself. The shipping container (FOSB, SEMI M31) is returnable capital equipment whose per-trip share is unsourced, so its tare is excluded from the transport effort.
Photomask fabrication
A mask set's embodied burden is amortised across a high-volume production run and is not attributed per wafer. Users assessing low-volume production should add mask fabrication separately; the methodology report gives the basis for the exclusion.
Employee transport, administration and R&D overhead
Employee transportation, facility administration and R&D/pilot-production overhead are outside scope.
Capital goods
Manufacturing equipment, cleanroom construction and facility infrastructure are excluded, on the grounds of absent public data on equipment embodied energy, uncertainty in equipment lifetime and allocation, common practice in electronics LCA, and a focus on the operational inventory. Future versions may include capital goods when sufficient public data becomes available.
Precious metal recovery credits
Scrap recovery credits for precious metals are excluded pending data availability.
Wafer reclaim
Test wafers and scrap are outside the system boundary.

Inside the boundary, linked rather than modelled

Silicon ingot growth and wafer slicing
Inside the cradle-to-gate scope, but treated as upstream material inputs linked to background databases rather than modelled as REEL processes.
Freight between production stages
Where a dataset's product moves between REEL production stages - wafer fabrication to the packaging site, for example - that leg is authored as a transport service and linked to an ecoinvent freight activity. It is measured as a transport effort in tonne-kilometres, not as a mass. Route distances are authored per route class with a stated band; a lower bound of zero is a modelling statement that the two sites can be co-located, not a missing value.

Cut-off criteria

A flow is excluded from a process inventory when it contributes less than 1 % of the total mass of inputs to that unit process, or less than 1 % of its total energy input. The denominator is total process inputs, not product mass. That distinction matters in semiconductor manufacturing, where the input mass of water, chemicals and gases greatly exceeds the product mass, so the threshold removes only genuinely minor flows.

Included regardless of the cut-off

  • Perfluorocarbons (CF4, C2F6, SF6, NF3) - high GWP, EPA regulated
  • Heavy metals (Pb, Cd, Hg, Cr(VI)) - RoHS regulated, high toxicity
  • Volatile organics (photoresist solvents, PGMEA) - air quality
  • Precious metals (Au, Ag, Pd, Pt) - high embodied impacts
  • Ozone-depleting substances (legacy CFCs, HCFCs) - Montreal Protocol