Vacuum Planetary Mixing Defoamer

TEL:18925129293

Compact Laboratory Planetary Vacuum Mixer‑Degasser SIE‑MIX80


300mL Small‑Sample Equipment · Belt‑Drive High‑Speed Mixing & Defoaming All‑in‑One Machine

300mL Laboratory Capacity + Standard Vacuum Function + 0‑3000rpm Stepless Speed Adjustment

The SIE‑MIX80 planetary mixer defoamer covers mixing and defoaming requirements from 0‑300 mL. Featuring low‑noise belt‑drive and synchronous dual‑drive mixing‑defoaming of revolution and rotation, it delivers consistent density, homogeneous dispersion and thorough degassing for multi‑material blends. Ideal for small‑batch processing of inks & coatings, silicone materials and laboratory R&D experiments. Customization is available with one‑stop solution support.

✓ CE Certified  ✓ FC Certified ✓ ISO9001 Quality System ✓ RoHS Compliance ✓ Custom Voltage Available (110V/220V)

Online Message Free Sample Testing Engineer Hotline: 189-2512-9293

Why remove micro‑bubbles from materials?

Residual micro‑bubbles directly reduce yield and degrade performance stability of end‑products.

Research & Academia

In new‑material R&D for universities and research institutes, bubbles inside slurries and gels cause deviation in experimental data and impair accuracy & repeatability of material‑property characterization. In nanomaterial dispersion tests, bubbles trap agglomerates and distort dispersion‑performance evaluation. Research experiments demand high‑data reliability; even tiny residual bubbles may bias experimental conclusions and hinder project progress as well as paper quality.

Ink & Coating Industry

Bubbles in inks trigger pinholes and streaks on printed surfaces, undermining printing quality and color consistency. Bubbles in coatings create film defects and reduce adhesion and weather resistance. During lab‑scale small‑batch formulation development for inks and coatings, bubble issues interfere with formulation screening and extend R&D cycles.

Silicone Industry

Bubbles in silicone gels reduce transparency and mechanical properties, degrading potting and encapsulation quality. Bubbles in silicone rubber compounds produce surface flaws and internal voids after vulcanization. During lab sample preparation, high‑viscosity silicone materials suffer difficult bubble removal, which distorts material‑property test results.

✨ Pain points of conventional workflows: Manual stirring or standard impeller mixers actively draw in air, generating more bubbles with agitation. Static degassing takes long time with limited outcomes. High‑speed mixing equipment generates loud noise and disturbs lab environments. The belt‑driven planetary mixer‑degasser separates bubbles during mixing via centrifugal force; its quiet operation fits laboratory conditions.

Why choose SIE‑MIX80?

Three core strengths to cover full‑lab mixing‑degassing workflows

Belt‑Drive for Low‑Noise & Stable Operation

The MIX80 adopts belt‑drive design. Compared with gear drive, it delivers lower operating noise, minimal vibration and excellent stability at high‑speed running, ideal for noise‑sensitive laboratories and R&D centers. Featuring a simplified belt‑drive structure, routine maintenance only requires belt replacement without specialized gear servicing, cutting lab equipment maintenance cost and downtime.

One‑Step Defoaming via High‑Speed Centrifugation

Synchronized revolution and rotation generate dual centrifugal shear force to achieve homogeneous dispersion even for medium‑to‑high viscosity materials. Centrifugal force continuously removes bubbles during mixing, completing mixing and defoaming in one single step within approximately 1 minute for higher efficiency versus conventional multi‑step processes. The flexible belt‑drive absorbs shock during rapid start‑stop cycles and reduces instant impact on materials.

Non‑Contact Clean Mixing

Materials are mixed by centrifugal force inside sealed containers without impeller contact. Simply replace containers for material change to skip cleaning and effectively prevent cross‑contamination. Non‑contact mixing lowers shear heat buildup to avoid premature curing of heat‑sensitive materials, suitable for high‑purity scenarios such as scientific research and pharmaceutical development. The touch‑screen supports storage of 100 recipe sets for one‑touch recall and consistent process repeatability.


✨ Integrating quiet belt‑drive operation, one‑step high‑speed centrifugal degassing and non‑contact clean mixing, MIX80 is ideal for laboratory R&D and small‑batch prototyping where low noise and easy maintenance are priorities.

Working Principle

Synchronized dual‑power revolution‑and‑rotation completes mixing and degassing in one cycle

Step 1: Centrifugal Force Generated by Revolution

The belt‑drive spins the revolution plate at high speed to generate centrifugal force on materials inside the container, driving full‑range material convection for macro‑mixing. Meanwhile, centrifugal force pushes low‑density bubbles toward the rotating axis to gather and escape. The flexible belt‑drive ensures smoother high‑speed operation and reduces equipment vibration and noise.

Step 2: Shear Force Provided by Rotation

Containers rotate around their own axis to generate directional shear force, breaking up agglomerated particles for micro‑dispersion. Precisely calculated revolution‑to‑rotation speed ratio guarantees efficient full‑volume mixing. Shear force thins bubble membranes and accelerates bubble rupture. With no built‑in impellers contacting materials, the risk of contamination from metal debris is minimized while original chemical properties of materials are preserved.


With synchronized revolution and rotation, materials complete the full‑process of "Mixing → Dispersion → Defoaming" inside sealed containers. Belt‑drive guarantees low‑noise and stable operation.

Working Principle of Vacuum Mixer Defoamer.jpg

Quick Technical Specifications

Complete technical parameters, custom configurations available

ModelSIE‑MIX80
Mixing Capacity0‑300 mL (standard vessel) * Larger volume customizable
Vessel TypeTest tube / Jar / Cup; supports syringe & cartridge adapters
Number of Vessels1 or 2 jars (user‑selectable)
Max Speed0‑3000 RPM (stepless adjustable)
Revolution / Rotation RatioFixed planetary ratio
Vacuum DegreeStandard: –98 kPa / Optional: –100 kPa
Control SystemTouch‑screen, stores up to 100 recipe sets
Power Supply220V, 50/60Hz (110V US/JP standard customizable)
Dimensions (W×D×H)510 × 430 × 500 mm
Net WeightApprox. 95 kg
Certifications CE, FC, ISO9001, RoHS Compliance

Our Partners

Trusted by leading industrial manufacturing clusters and advanced university laboratories worldwide

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FAQ - Frequently Asked Questions

Answers to common questions about product performance and everyday process selection

  • 脱泡机的作用是什么?

    脱泡机是一种用于去除液体中的气泡的设备。它的作用在于帮助生产过程中的液体混合、反应、涂布、印刷、灌注等工艺环节,避免气泡的产生和对最终产品的影响。在许多工业和实验室环境中,去除气泡是非常必要的,因为气泡可能会对产品质量产生负面影响,如影响表面张力和稳定性等问题。脱泡机通常采用各种不同的技术,如振动、超声波、离心等,以实现有效的气泡去除。它的应用领域广泛,包括但不限于半导体、太阳能、光学、生物技术、材料科学等。

  • 售后服务怎么样?

    公司拥有专业的售后服务人员,24小时专人服务,一对一提供技术支持,解决您的后顾之忧。

  • 为什么要选择施诺斯?

    选择施诺斯的原因有很多,以下是一些主要的原因:

     1. 专业性:我们的团队由一群专业的人士组成,他们在各自的领域拥有丰富的经验和知识。我们不仅了解行业趋势和最佳实践,而且还能提供切实可行的解决方案。

     2. 服务质量:我们注重客户的需求和满意度,始终致力于提供高质量的服务。我们不仅快速响应客户需求,而且还能根据客户的要求进行定制化服务。 

    3. 可靠性:我们以诚信和专业精神为宗旨,始终遵守承诺和协议。我们的工作方法和交付成果均符合行业标准和最佳实践,使得我们的客户能够信任我们。 

    4. 创新性:我们不断探索新的方法和工具,以提供更好的服务并满足客户的需求。我们鼓励创新和实验,并愿意接受挑战和改变。 

    5. 成本效益:我们提供高性价比的服务,不仅能够帮助客户节省成本,而且还能提高效率和生产力。我们始终以客户的利益为出发点,为客户提供最优的解决方案。

     6. 团队合作:我们相信团队的力量和合作的价值,我们的团队成员之间互相支持、协作和尊重。我们与客户、合作伙伴和其他利益相关者建立紧密的合作关系,以实现共同的目标。 

    以上只是选择我们的部分原因,我们相信还有很多其他的优点和价值可以为客户提供。如果您正在寻找一家专业、可靠、高质量的服务提供商,我们非常期待与您的合作。

  • 搅拌脱泡机的工作原理?

    施诺斯搅拌脱泡机通过公转的离心力进行脱泡,通过公转与自转形成的剪切力进行搅拌,

    再辅助以真空泵抽取气体以达到真空状态,去除纳米级微小气泡。 不接触物料,无二次污染,无二次浪费。


  • 施诺斯能提供工程咨询技术服务吗?

    施诺斯能为广大客户提供全面的工程和现代化的咨询服务。施诺斯近二十年的搅拌经验,可以为你提供高效的咨询服务。

    想要让搅拌机性能更上一层楼,提升系统的整体效能?我们有全面的咨询、工程以及现代化改造服务,为您量身打造解决方案。 在如今竞争激烈的全球化浪潮中,唯有不断创新、持续优化,才能始终跑在对手前面。您的生产工艺和产品日新月异,我们就为您提供最适配的混合技术。不管是新的产品参数,还是既有的工艺条件,我们都能对现有系统和搅拌设备进行全方位的检查与评估,挖掘其中潜藏的流程优化空间和机械性能提升潜力,并且帮您把这些改进切实落地。 要是您的搅拌设备已经跟不上时代步伐,能耗居高不下,或是维护成本让您头疼不已,那就别犹豫,我们的咨询、工程设计和现代化改造服务,就是为您排忧解难的良方。欢迎随时联系我们,携手开启高效生产新征程!

Technical Specification List

Side‑by‑Side Comparison of Series Models for Accurate Model Selection

ModelSIE‑MIX60 (Gear‑Drive)SIE‑MIX80 (Belt‑Drive)SIE‑MIXF301
Mixing Capacity0‑300 mL (standard vessel) * Customizable0‑300 mL (standard vessel) * Customizable0‑300 mL (standard vessel) * Customizable
Vessel TypeTest tube / Jar / Cup; supports syringe & cartridge adaptersTest tube / Jar / Cup; supports syringe & cartridge adaptersTest tube / Jar / Cup; supports syringe & cartridge adapters
Number of Vessels1  or 2 jars (user‑selectable)1  or 2 jars (user‑selectable)1  or 2 jars (user‑selectable)
Max Speed0‑3000 RPM (stepless adjustable)0‑3000 RPM (stepless adjustable)0‑2000 RPM (stepless adjustable)
Revolution / Rotation RatioFixed planetary ratioFixed planetary ratioFreely adjustable
Vacuum DegreeStandard: –98 kPa / Optional: –100 kPaStandard: –98 kPa / Optional: –100 kPaStandard: –98 kPa / Optional: –100 kPa
Control SystemTouch‑screen, stores up to 100 recipe setsTouch‑screen, stores up to 100 recipe setsTouch‑screen, stores up to 100 recipe sets
Power Supply220V, 50/60Hz (110V US/JP standard customizable)220V, 50/60Hz (110V US/JP standard customizable)220V, 50/60Hz (110V US/JP standard customizable)
Dimensions (W×D×H)510 × 430 × 500 mm510 × 430 × 500 mm510 × 430 × 500 mm
Net Weight95 kg95 kg115 kg
CertificationsCE, FCCE, FCCE, FC

*** The above are typical models only. SIENOS provides customized solutions according to customer requirements. For model selection consultation: 189‑2512‑9293


Multi‑industry Application Solutions

Six‑Industry Typical Material Mixing & Defoaming Applications

Testing Institution.jpg

Research & Academia

Nanomaterial dispersions, polymer solutions, experimental slurries, functional coating liquids, composite prepregs

Inks & Coatings.jpg

Ink & Coating Industry

UV‑curable inks, solvent‑based inks, water‑borne coatings, industrial baking paints, functional coating liquids

Adhesives.jpg

Silicone Industry

Silicone gels, silicone rubber compounds, silicone resins, thermal‑conductive greases, silicone sealants

Thermal‑conductive Silicone Gel.jpg

Electronics Industry

Conductive silver paste, insulating adhesives, potting adhesives, UV adhesives, thermal‑conductive gels

Petrochemical.jpg

Chemical Industry

Chemical slurries, resin solutions, catalyst slurries, reactive adhesives, intermediate solutions

Battery.jpg

Battery Industry

Cathode slurries, anode slurries, electrolyte additives, separator coating liquids, battery adhesives

Comprehensive Equipment Operation Demo Video

Intuitive, clear and dynamic experience of the technical advantages of synchronous defoaming by planetary centrifugal force and high negative pressure.

Actual Test Results of Defoaming Process

Actual Treatment Performance of Six Typical Materials

Gel Defoaming.jpg

Gel

Tricolor Ink Mixing & Defoaming.jpg

Ink

Silver Paste Mixing & Defoaming.jpg

Silver Paste

Silicone.jpg

Silicone

Electronic Adhesive & Powder Mixing Defoaming.jpg

Electronic Adhesive + Powder

Glass Powder Mixing & Defoaming.jpg

Glass Powder



Measured Data Comparison

Three Representative Materials Before‑After Defoaming Comparison


Material Type

Condition Before Treatment

After MIX80 Treatment

Silicone Gel

Dense internal bubbles, low transparency, tensile strength deviation ±20%

Bubbles eliminated, improved transparency, tensile strength deviation ±5%

UV‑Curable Ink

Abundant internal bubbles, printing pinhole rate approx. 8%, large color deviation

Bubbles eliminated, printing pinhole rate <1%, consistent color

Conductive Silver Adhesive

Obvious silver‑powder agglomeration, numerous internal bubbles, volatile volume resistivity

Uniform silver‑powder dispersion, bubbles eliminated, stable volume resistivity

* Internal laboratory test data. Actual improvement varies with material formulation. Real customer cases are available upon request from sales.

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