Nickel-based

Nickel-based filler material is a brazing filler composed of nickel as the matrix, supplemented with low-melting-point elements (such as boron, silicon, phosphorus, etc.) and strengthening elements (such as chromium, cobalt, molybdenum, tungsten, iron, etc.)

+
  • TC4 钛合金粉 (5).jpg

TC4 titanium alloy powder


Features:

1. High strength and lightweight: With a density of only 4.43 g/cm³ and a tensile strength ≥ 895 MPa, its specific strength far exceeds that of steel and aluminum alloys. 2. Excellent corrosion resistance: Resistant to seawater, chlorides, and acidic/alkaline environments, making it suitable for harsh conditions. 3. Biocompatibility: Complies with ASTM F136 and ISO 5832‑3 standards, making it appropriate for medical implants such as orthopedic and dental devices. 4. Process compatibility: Compatible with additive manufacturing techniques like selective laser melting (SLM) and electron beam melting (EBM), achieving a densification level of ≥ 99.5%. 5. Powder characteristics: High sphericity, excellent flowability, controllable oxygen content, and superior batch-to-batch consistency.

Application:

Packing:

Aluminum foil bag, iron drum, plastic drum, woven bag, pallet, customized packaging

Date of delivery:

Precision grinding, intelligent manufacturing technology, integrated solutions

3-15 days

key word:



TC4 titanium alloy powder · Ti-6Al-4V titanium alloy powder
High specific strength · Biocompatible · Specifically designed for aerospace and medical implants 15-53μm / 15-45μm / 45-105μm / 53-150μm

TC4 titanium alloy powder (corresponding to Ti-6Al-4V, ASTM Grade F5, TiAl6V4) is an α+β dual-phase titanium alloy powder, with titanium as the matrix and aluminum (5.5–6.75%) and vanadium (3.5–4.5%) as the primary alloying elements. Its density is only 4.43 g/cm³ , tensile strength of the printed state 1230±50 MPa , with a specific strength far exceeding that of steel and aluminum alloys. Compliant with ASTM F136 / ISO 5832-3 Medical-grade, with excellent biocompatibility. Inert-gas atomized spherical powder, compatible with… Laser Powder Bed Fusion (SLM), Electron Beam Melting (EBM), powder metallurgy, cold spraying Advanced manufacturing processes. Widely used in aerospace structural components, medical implants, energy and chemical industry parts, and automotive lightweighting, among other fields. Maximum long-term service temperature 400℃

Core Advantages of TC4 Titanium Alloy Powder

High strength and lightweight · High specific strength

With a density of only 4.43 g/cm³, it exhibits a tensile strength of 1230 ± 50 MPa in the as‑printed state, and its specific strength far exceeds that of steel and aluminum alloys, making it an ideal material for lightweight design.

Excellent corrosion resistance

Resistant to corrosion by seawater, chlorides, and acidic and alkaline media, it is well suited for harsh environments and delivers outstanding performance in marine engineering and the chemical industry.

Biocompatibility

Complies with ASTM F136 / ISO 5832-3 standards and is suitable for human implants, such as artificial joints, bone plates, dental implants, and more.

Process Compatibility · High Density

Compatible with a variety of processes, including SLM, EBM, and powder metallurgy, it achieves a densification level of ≥99.5% and exhibits excellent batch-to-batch consistency.

Product Real-World Photos & Microscopic Morphology

15–53 μm powder SEM

High sphericity, narrow particle size distribution, and excellent flowability.

Real-life photos of the powder

Gray powder, packaged in vacuum-aluminum foil bags or iron drums, with argon gas protection.

3D printing / medical / aerospace components

Aeroengine blades, artificial joints, and lightweight structural components

TC4 titanium alloy powder (Ti-6Al-4V)

TC4 (Ti‑6Al‑4V) is the most widely used and technologically mature titanium alloy grade. Based on a titanium (Ti) matrix, it incorporates aluminum (5.5–6.75%) as an α‑phase stabilizer to enhance heat resistance and specific strength, while vanadium (3.5–4.5%) serves as a β‑phase stabilizer to improve ductility. This alloy combines high strength, lightweight characteristics, excellent corrosion resistance, and superior biocompatibility, with a specific strength that far exceeds that of steels and aluminum alloys. TIJO produces TC4 spherical powder via inert‑gas atomization, yielding high sphericity, excellent flowability, controllable oxygen content, and outstanding batch-to-batch consistency. The material is suitable for processes such as selective laser melting (SLM), electron beam melting (EBM), powder metallurgy compaction and sintering, and cold spraying. It finds extensive applications in aerospace (engine blades, structural components), medical implants (artificial joints, bone plates, dental implants), the energy and chemical industries (corrosion‑resistant valves, deep‑sea components), automotive lightweighting, and marine engineering. Its maximum long-term service temperature is 400°C. The product complies with ASTM F136, ISO 5832‑3, and GB/T 3620.1‑2016 standards.

Corresponding grade

Standard system Corresponding grade
China GB/T TC4
American ASTM Grade F5
International ISO TiAl6V4
German DIN TiAl6V4
Japanese JIS YATB640
French NF TA6V
Russian TOCT BT6

* Complies with ASTM F136, ISO 5832-3, ASTM B348, and GB/T 3620.1-2016 standards.

Chemical Composition (wt%)

element Content range Note
Ti Margin (≈90%) Matrix element
Al 5.50-6.75 α-phase stabilizing elements, enhancing heat resistance and specific strength.
V 3.50-4.50 β-phase stabilizing element, improves ductility.
Fe ≤0.25-0.30 Impurity element
O ≤0.13-0.20 Impurity element
C ≤0.08 Impurity element
N ≤0.05 Impurity element
H ≤0.012-0.015 Impurity element

* Complies with ASTM F136, ISO 5832‑3, and GB/T 3620.1‑2016 standards. The specific composition shall be subject to the batch inspection report.

Particle Size Specifications & Physical Properties

Particle size specification Loose packing density (g/cm³) Hall flow rate (s/50g) Oxygen content (ppm) D10(μm) D50(μm) D90(μm) Recommended Process
15–53 μm ≥2.40 ≤35-40 800-1600 ≥17.0 30.0-40.0 ≤58.0 SLM/LPBF laser printing
15–45 μm ≥2.40 ≤35-40 800-1600 ≥15.0 25.0-35.0 ≤50.0 SLM/LPBF Precision Printing
0-15μm ≥2.10 800-1600 ≥4.0 6.0-12.0 ≤20.0 Fine powder metallurgy, MIM
45–105 μm ≥2.50 ≤40 800-1600 ≥55.0 70.0-80.0 ≤120.0 EBM electron beam melting, powder metallurgy
53-150 μm ≥2.40 ≤40 800-1600 ≥50.0 80.0-100.0 ≤155.0 Powder metallurgy, hot isostatic pressing
45-150 μm ≥2.40 ≤40 800-1600 ≥45.0 80.0-100.0 ≤155.0 Powder metallurgy, thermal spraying

* 15–53 μm is the standard recommended specification; other particle sizes are available upon request. Refer to the batch test report for specific details.

Dense State & Mechanical Properties

Dense-state performance

Parameter Typical value
Density 4.43 g/cm³
Degree of densification (metallographic method) >99.9%
Hardness (as-printed) 38 ± 3 HRC

Mechanical Properties (Reference Values)

Status Tensile strength (MPa) Yield Strength (MPa) Elongation (%)
Print state 1230±50 1050±50 7±3
Heat-treated state 1015±50 950±50 13±3
Heat-treated condition (400°C) 700±30 585±30 14±3

* Heat treatment process: hold at 800°C for 4 hours, then furnace cool. Varies depending on the process and the heat‑treatment condition.

Typical application areas

Aerospace

Aircraft engine blades, spacecraft structural components, and rocket fuel tanks—high specific strength and corrosion-resistant.

Medical implant

Artificial joints, bone plates, dental implants, and cranial prostheses exhibit excellent biocompatibility.

Energy and Chemical Industry

Deep-sea drilling components, corrosion-resistant valves, and heat exchangers exhibit excellent corrosion resistance.

Automotive industry

Lightweight racing components and high-end suspension systems—lightweight yet highly robust.

Additive manufacturing

Topological optimization of functional components, customized complex molds, and integrated forming of intricate structures.

Marine Vessels

Pressure-resistant hulls, valve pumps, propellers, and engine components—lightweight, high-strength, and corrosion-resistant.

Medical device

Porous and dense titanium biomaterials, with personalized design and fabrication.

TC4 vs. Related Titanium Alloys

Material Type Key Features Tensile strength (MPa) Density (g/cm³) Main applications
TC4 (Ti-6Al-4V) α+β dual-phase, the most widely used, with excellent overall performance. ≥895 4.43 Aerospace, medical implants, automotive
TC4 ELI Ultra-low gap, high-toughness fracture resistance ≥860 4.43 Medical implants
TA1/TA2 (Industrial Pure Titanium) High-purity titanium, excellent corrosion resistance, relatively low strength 240-390 4.51 Chemical equipment, corrosion-resistant structural components
TA15 Near-α type, with excellent high-temperature performance ≈1160 4.45 High-Temperature Structural Components

TC4 is the most widely used and technologically mature titanium alloy grade, with a specific strength far exceeding that of steel and aluminum alloys, and a maximum long-term service temperature of 400°C.

Process Recommendations and Component Selection

Craftsmanship Recommended particle size Key parameters Post-processing
SLM/LPBF Additive Manufacturing 15-53μm / 15-45μm Laser power: 150–350 W; layer thickness: 30–50 μm; preheating temperature: 100–200°C. Stress relief + heat treatment
EBM Electron Beam Melting 45–105 μm Electron beam power: 1–3 kW; layer thickness: 50–100 μm. Heat treatment
Powder metallurgy pressing + sintering 53-150 μm Press at 400–700 MPa, sinter at 1100–1250°C (in vacuum or argon atmosphere). Heat treatment
MIM injection molding 0-15μm Catalytic degreasing + sintering at 1200–1250°C Heat treatment

* When handling titanium powder, strict precautions must be taken to prevent explosions and oxidation; sintering or printing is recommended under vacuum or in an argon atmosphere.

End-to-end testing capability

Laser Particle Size Analyzer Oxygen, Nitrogen, and Hydrogen Analyzer Scanning Electron Microscopy (SEM+EDS) Carbon-sulfur analyzer Hall flowmeter/vibrating density meter ICP-OES Elemental Analysis

Each batch of TC4 powder is analyzed for major elements (Ti, Al, V), impurities (Fe, O, C, N, H), particle size distribution, oxygen content, flowability, and both loose‑packed and tapped densities. A Certificate of Analysis (COA) is provided, compliant with ASTM F136 and ISO 5832‑3 standards.

Packaging & Delivery

 

Powder packaging

Double-layer aluminum foil bag, vacuum-sealed, plus iron drum/plastic drum.
Specifications: 1 kg, 5 kg, 10 kg, 25–50 kg per drum

 

Delivery date

In stock; ships within 3–7 days after order confirmation.
Custom particle size or minor formulation adjustments: 7–15 days

 

Batch Traceability

Bulk product samples are retained, and COA reports are provided with the shipment.
MSDS available.

 

Free sample

Samples are provided for the validation of SLM, EBM, MIM, and powder metallurgy processes.

 

Customized Services

Grain size customization
Can be finely adjusted according to customer requirements.

 

Technical Support

Provide guidance
Assist customers in resolving various issues that arise during use.

Chemical composition(wt%)

Grade

Chemical composition ( wt% )

Other >

TC4

Al

V

Fe

C

N

H

O

Ti

5.5-6.75

3.5-4.5

0.3

0.08

0.05

0.015

0.2

Bal.

Physical indicators

Powder specifications

Loose packing density ( g/cm³ )

Hall velocity ( s/50g )

Oxygen content

( ppm )

Particle size distribution ( micrometer )

D10

D50

D90

0-15μm

2.1

-

800-1600

4.0

6.0-12.0

20.0

15–53 μm

2.4

40

800-1600

17.0

30.0-40.0

58.0

53–105 μm

2.5

40

800-1600

55.0

70.0-80.0

120.0

105–150 μm

2.4

40

800-1600

108.0

125.0-135.0

158.0

Mechanical properties

Deposited state

Annealed state

Tensile strength /MPa

1150

Yield strength /MPa

1050

Elongation %

8.0

Tensile strength /MPa

1000

Yield strength /MPa

950

Elongation /%

10.0

Application areas

Recommend products

Product customization

Submit immediately
All
  • All
  • Product Management
  • News
  • Introduction
  • Enterprise outlets
  • FAQ
  • Enterprise Video
  • Enterprise Atlas

316L、17-4PH、304L、MS1、FeSi6.5、FeCrAl、HK30、430