{{flagHref}}
Products
  • Products
  • Categories
  • Blog
  • Podcast
  • Application
  • Document
|
/ {{languageFlag}}
Select language
Stanford Advanced Materials {{item.label}}
Stanford Advanced Materials
Select language
Stanford Advanced Materials {{item.label}}

AC8725 Alumina Crucible, Al2O3 Crucible Cylindrical, 99.8%, 1 mL

Catalogue Number AC8725
Material Alumina
Form Crucible
Purity 99.80%
Density 3.7-3.9 g/cm³

Alumina Crucible, Al2O3 Crucible Cylindrical, 99.8%, 1 mL is produced from high-purity alumina and fabricated into a cylindrical crucible form ideal for controlled high-temperature processing. Stanford Advanced Materials (SAM) implements advanced quality control protocols including high-temperature sintering tests and microstructural analysis with SEM to verify material consistency and defect minimisation. These measures help achieve precise thermal performance in demanding research and industrial environments.

INQUIRY
Add to Compare
Description
Specification
Reviews

FAQ

What is the significance of the alumina purity and density in this crucible?

The 99.8% purity minimises contaminants that could interfere with high-temperature processes. A density of 3.7-3.9 g/cm³ ensures adequate thermal stability and uniform heat distribution during thermal treatments. These factors are crucial in maintaining consistent material behaviour under controlled processing conditions. Contact us.

How do the flexural and compressive strength values affect its use in high-temperature applications?

A flexural strength of 300-450 MPa indicates the crucible’s resistance to bending stresses, while a compressive strength of approximately 2000–3000 MPa ensures it withstands high mechanical loads. These properties are vital to maintain structural integrity during thermal cycling and stress-intensive operations. Contact us.

What are the implications of the specified thermal conductivity and operating temperature?

A thermal conductivity of 30 W/(m·K) facilitates efficient heat transfer, reducing thermal gradients, whilst an operating temperature of ≤1600 ℃ allows use in high-temperature processes without compromising material stability. Together, these properties support accurate and safe thermal processing. Contact us.

REQUEST A QUOTE

Send us an inquiry today to learn more and receive the latest pricing. Thank you!

* Your Name
* Your Email
* Product Name
* Your Phone
* Country

United Kingdom

    Comments
    I would like to join the mailing list to receive updates from Stanford Advanced Materials.
    Please enclose drawings:

    Save files here or

    * Check Code
    Accepted file types: PDF, png, jpg, jpeg. Upload multiple files at once; each file must be under 2MB.
    Leave A Message
    Leave A Message
    * Your Name:
    * Your Email:
    * Product Name:
    * Your Phone:
    * Comments: