Heat Pipe Powder Filling Machine

Heat pipe copper powder filling machine: 4,000 pcs/hr, 99.9% yield rate (disc model), Ø3–Ø12mm, ≥0.4mm wick wall

Product Description

thermalmachinery manufactures three dedicated heat pipe powder filling machine configurations — each engineered for a specific production scale and pipe diameter range. The high-throughput Tray Model delivers 4,000 pieces per hour using a 20-pcs-per-plate batch system with dual vibration motors (60W + 30W) and an integrated 180° tube-flip step to ensure complete powder coverage of the full tube wall circumference before the second vibration pass. The Disc Model uses the principle of magnetic vibration to achieve 99.9% yield rate across a wider diameter range (Ø3 to Ø12mm) with quantified single-tube fill — the correct choice for precision production, multi-diameter flexibility, and R&D applications. The Single-Station Model provides a compact, economical solution for 6mm-diameter heat pipe production in lower-volume applications.

SpecificationTray Model (Main)Disc ModelSingle-Station Model
Pipe ODØ4 – Ø10 mmØ3 – Ø12 mmØ6 mm (standard)
Pipe Length≤ 600 mm120 – 600 mm50 – 135 mm
Wick wall thickness≥ 0.4 mm≥ 0.4 mmN/A
Center bar ODØ3 – Ø8 mm
Filling quantity20 pcs/plate1 pc at a time (quantified)1 pc at a time
Vibration system60W + 30W vibration motorsMagnetic vibration principleVibration included
Yield rateHigh — production grade99.9%
Throughput4,000 pcs/hr500 pcs/hrSingle station
Voltage / Power220V × 1φ × 0.5 kW220V × 1φ220V
Dimensions1,100 × 600 × 700 mm600 × 700 × 1,100 mm
Weight600 kg600 kg
Best forHigh-volume production linesPrecision, all diameters, R&DSmall volume, single spec

Why Powder Fill Quality at Step 3 Determines Heat Pipe Performance at Step 10

The copper powder filling step is where the thermal performance specification of every heat pipe is physically determined — before the sintering furnace, before the working fluid, before the welding station. The sintered wick structure that forms after sintering is only as good as the powder distribution that enters the furnace. Understanding this relationship helps explain why heat pipe manufacturers specify production-grade filling machines with precise vibration control — and why the ±5% powder tolerance of the disc model matters.

Wick ParameterWhat the Filling Machine ControlsEffect on Heat Pipe Performance
Wick wall thicknessPowder fill volume per pipe (center bar OD + fill depth)Thicker wick → higher capillary force → higher Qmax; ≥0.4mm is production standard
Powder packing densityVibration frequency + duration (60W+30W motors / magnetic)Higher tap density → more bonding points in sintering → stronger wick, better porosity control
Powder distribution uniformityVibration axis control + tube orientation during fillUniform distribution → uniform wick after sintering → consistent thermal resistance across production batch
Wall coverage completenessPost-fill 180° tube flip + second vibration step (tray model)Complete wall coverage → no dry spots in sintered wick → no hotspot formation in heat pipe
Powder contaminationEnclosed fill system, fixed-volume dispensingZero contamination → clean sintering → correct wick structure porosity

A heat pipe that passes helium leak testing and performance testing is not guaranteed to have a correctly filled wick — it is guaranteed to have a wick that is good enough to pass testing under controlled conditions. A poorly filled wick degrades faster under thermal cycling, has inconsistent Qmax across the production batch, and fails earlier in service. Powder fill quality at Step 3 is the single manufacturing parameter that most directly correlates with heat pipe service life.

Three Models Compared — Tray, Disc & Single-Station: Selecting the Right Heat Pipe Powder Filling Machine

Model 1 — High-Throughput Tray Model: 4,000 pcs/hr for Volume Production

The tray model is the production workhorse for high-volume heat pipe lines — the machine that Foxconn, Nidec, and Cooler Master use at the powder filling station in their sintered wick heat pipe production lines. Its 20-pieces-per-plate batch architecture means 20 copper tubes are loaded, filled, vibrated, flipped 180°, and vibrated again simultaneously — delivering the throughput of 4,000 pieces per hour that keeps pace with the upstream pipe shrinking station (500 pcs/hr × multiple machines) and feeds the sintering furnace at capacity. The two-motor vibration system (60W primary + 30W secondary) is calibrated to produce the correct tap density for copper powder in the Ø4–Ø10mm pipe diameter range at standard production fill depths. The post-fill 180° tube flip followed by the second 30W vibration step is the production process step that eliminates the powder void formation at the tube bottom that occurs with single-direction vibration — ensuring complete wall coverage before sintering.

Model 2 — Disc Model with Magnetic Vibration: 99.9% Yield, Ø3–Ø12mm, Precision Fill

The disc model uses the principle of magnetic vibration — a resonant excitation system that generates vibration through electromagnetic force rather than eccentric motor rotation — to achieve the precise, controllable vibration amplitude and frequency needed for uniform copper powder distribution in the full diameter range from Ø3mm (micro heat pipes for smartphones) to Ø12mm (large industrial heat pipes). Magnetic vibration provides a more consistent vibration profile than motor-based systems — the vibration amplitude does not drift with motor wear over time, and the frequency can be tuned precisely for the specific copper powder particle size and fill depth. At 99.9% yield rate and single-tube quantified fill (each tube fills to a precisely controlled volume), the disc model is the quality-first choice: the correct machine for production lines where sintered wick uniformity directly determines product thermal specification compliance, not just throughput.

Model 3 — Single-Station Model: Compact, Economical, 6mm Specialist

The single-station model provides the essential powder filling function — copper tube feeding, powder filling, powder vibration-packing, center rod feeding, 180° product flip, and second vibration pass — in a compact single-station layout at 220V with minimal footprint. Optimised for Ø6mm heat pipe production (the most common diameter in CPU cooler and mid-range thermal solution applications), it is the correct entry point for manufacturers starting a sintered wick heat pipe production line or running a dedicated single-diameter product line at moderate volume. Changeover to other diameters requires fixture replacement — contact thermalmachinery’s engineering team for a complete list of available fixture sets.

thermalmachinery vs Competitors — Why Generic Powder Filling Machines Are the Wrong Choice for Heat Pipe Production

 thermalmachineryGITO (heat-cooling.com)General MgO Powder Fillers
Technical accuracyCopper powder fills sintered wick structureIncorrectly describes copper powder as ‘working fluid’MgO powder for heating elements — completely different application
Published specs4,000 pcs/hr, Ø3–12mm, ≥0.4mm wick, 3 modelsNo specifications publishedMgO specs, not heat pipe specs
Throughput4,000 pcs/hr (tray model)Not publishedN/A for heat pipe
Yield rate99.9% (disc model)Not publishedN/A for heat pipe
Diameter rangeØ3 – Ø12 mmNot published≤ 16–25mm — heater tube, not heat pipe
Model range3 dedicated heat pipe models1 model, no specsHeater-specific — incompatible
Vibration technology60W+30W motor (tray) + magnetic (disc)Not describedVibration for MgO density, different purpose
Post-fill flip180° flip + second vibration (tray model)Not describedN/A
Line integrationStep 3 of complete 10-station heat pipe lineNo line contextHeater production line, not heat pipe
Client validationFoxconn (25 lines), Nidec (20 lines)None statedHeater industry clients

The MgO (magnesium oxide) powder filling machines from companies like Futai/Tongli Machinery dominate Google search results for ‘powder filling machine’ — but they serve a completely different industry (electric heating element manufacturing) and a completely different process (filling MgO insulation powder into metal-sheathed resistance heaters). Their vibration systems are tuned for MgO powder density, their tube diameter ranges are for heater tube sizes (typically up to 25mm), and their fill process sequence has no relevance to heat pipe sintered wick formation. Using an MgO machine for heat pipe copper powder filling would produce wrong tap densities, wrong wick thickness, and wrong powder distribution for the sintered wick structure. thermalmachinery’s heat pipe powder filling machines are purpose-engineered for copper powder, heat pipe dimensions, and the specific vibration parameters needed for sintered wick quality.

Applications & Model Selection — Which Heat Pipe Powder Filling Machine Is Right for Your Production?

Heat Pipe ApplicationPipe ODRecommended ModelKey Filling Requirement
CPU cooler heat pipesØ4–Ø8mmTray Model (4,000 pcs/hr)≥0.4mm wick, uniform density for consistent
Server / AI cooling heat pipesØ6–Ø10mmTray Model (high volume)High throughput 4,000 pcs/hr, 20 pcs/plate batch
Laptop thermal modulesØ4–Ø6mm thin wallTray or Disc ModelPrecise wick thickness for thin pipe OD
Micro heat pipes (smartphone/wearable)Ø3–Ø4mmDisc Model (Ø3–Ø12mm range)Precision single-tube fill at small OD
Large industrial / EV heat pipesØ10–Ø12mmDisc Model (up to Ø12mm)Quantified fill for large diameter
R&D / prototype / mixed batchesAny Ø3–Ø12mmDisc Model or Single-StationFlexible, single-tube, precise quantity

For production lines running multiple pipe diameters — for example, both Ø6mm CPU cooler heat pipes and Ø4mm laptop heat pipes — the disc model’s Ø3–Ø12mm range eliminates the need for separate machines per diameter, at the cost of lower throughput (500 pcs/hr vs 4,000 pcs/hr for the tray model). For high-volume single-diameter production, the tray model’s 4,000 pcs/hr is the correct choice. Contact our engineering team with your production volume, pipe diameter range, and target wick thickness — we will recommend the optimal machine configuration and, where relevant, the complete production line layout.

Where Powder Filling Fits in the Manufacturing Sequence

The powder filling machine operates as Step 3 in the heat pipe production sequence — after cutting (Step 1) and shrinking (Step 2), and immediately before sintering (Step 4). It is the last step before high-temperature processing, and therefore the last step at which the sintered wick quality can be influenced by the manufacturing process. After the tubes enter

Production StepEquipment
Step 1Automatic Pipe Cutting Machine (±0.10mm, 1,500 pcs/hr)
Step 2Pipe Shrinking Machine — Servo / Hydraulic / Rotary
Step 3Copper Powder Filling Machine (4,000 pcs/hr, Ø3–Ø12mm)
Step 4Vacuum Sintering Furnace (850–1,000°C, ±5°C uniformity)
Step 5Vacuum Degassing & Water Filling Machine (10⁻³ torr)
Step 6Automatic Welder (550 pcs/hr)
Step 7Hot Press Machine (±0.05mm, 15t)
Step 8Automatic Bending Machine (99% yield, 2D/3D)
Step 9Helium Leak Testing Machine (1,000 pcs/hr)
Step 10Automatic Performance Testing Machine (250 pcs/hr)

Throughput matching between Step 3 and adjacent stations: The powder filling station’s 4,000 pcs/hr (tray model) is significantly higher than the downstream sintering furnace’s batch capacity — this is intentional. The sintering furnace operates on a long cycle time (typically 2–4 hours at temperature) and processes large batches; the filling machine must be able to fill tubes fast enough that it is never the bottleneck for furnace loading. At 4,000 pcs/hr, one tray-model filling machine can fill sufficient tubes for multiple furnace loads within a single shift, ensuring continuous furnace utilisation. For the disc model at 500 pcs/hr, multiple machines may be needed depending on furnace batch size — contact our engineering team for a capacity analysis.

FAQ

Q1: Why is vibration necessary during the powder filling process?

A: Without vibration, copper powder tends to “bridge” or clump, leaving empty voids inside the pipe. Vibration ensures that the tiny spherical particles settle into a dense, interlocking structure, which is essential for uniform pore size after the sintering process.

A: The mandrel creates the central vapor channel. By filling powder around the mandrel, we form a hollow tube of powder. After filling, the assembly goes to a furnace for sintering, and the mandrel is later removed, leaving a porous copper wick attached to the inner wall with a clear path for vapor flow.

A: Yes. The feeding system is designed to handle various powder mesh sizes (100∼300 mesh). However, we recommend using high-purity spherical powder to ensure the best flowability and wick permeability.

A: The tubes are placed into a specialized “Bottom Plug” or “Base Plate” fixture. This fixture seals the bottom of the tube and holds the mandrel in a centered position during the filling and vibration stages.

A: With a 10-station machine and a cycle time of 20 seconds, an experienced operator can process approximately 1,200 to 1,500 pipes per hour, including loading and unloading time.