Temperature-controlled shaking Incubator

The temperature-controlled shaking incubator maintains a constant internal temperature through a heating and cooling system, while the motor drives the tray to oscillate back and forth. It provides a stable temperature environment and uniform mixing conditions for microbial cultivation, and is commonly used in laboratories for biological processes such as cell culture and fermentation research.
Selection
When selecting, consider whether the temperature range and accuracy meet cultivation requirements, whether the oscillation frequency range and uniformity satisfy mixing needs, whether the chamber volume accommodates the sample quantity, and also pay attention to whether the energy consumption indicators and equipment dimensions match the laboratory space.

Terms

Standards

Instruments

Provide a uniform and constant field source with controlled temperature, which can be used for constant temperature experiments or tests on samples, and can also be used as a heat source for direct or auxiliary heating.

$ 2784.00

The internal resistance range is less than or equal to 5mΩ, the peak current is up to 1000A, and it is automatically controlled by PLC. It has the function of temperature monitoring and can set short-circuit stop conditions to ensure accurate and reliable test data.

$ 1632.00

Set thermostatic foster and oscillation function in one, Microcomputer Control Temperature Frequency, Temperature Fluctuation +/- 0.5 ℃, Oscillation Frequency 40-260 rpm, AC brushless motor maintenance-free, independent temperature limit alarm system to ensure safe operation.

$ 1774.00

With refrigeration and heating bidirectional temperature control system, Temperature range 5~ 50 ℃, accuracy +/- 0.5 ℃, Oscillation Frequency up to 200rpm, stainless steel cavity and polyurethane insulation material, corrosion resistance and anti-interference.

$ 1027.00

Temperature range 4~ 50 ℃ and temperature resolution of 0.1 ℃, Oscillation Frequency 20~ 300rpm with 24mm swing amplitude, 304 stainless steel liner to ensure durability, support a variety of capacity configuration optional.

$ 3038.00

Temperature range 4~ 50 ℃, temperature resolution 0.1 ℃, Oscillation Frequency 20~ 300rpm, pendulum amplitude 24mm, liner made of 304 stainless steel, providing a variety of verification services.

$ 3599.00

Set thermostatic foster and oscillation in one, Temperature Fluctuation +/- 0.5 ℃, Oscillation Frequency 40-280 rpm, AC brushless motor and antibacterial stainless steel liner, support continuous operation and timing function.

$ 1555.00

With 4~ 50 ℃ wide range temperature control and 0.1 ℃ high resolution, Oscillation Frequency 20~ 300rpm with 26mm swing amplitude, liner made of 304 stainless steel, support a variety of flask configuration and verification services.

$ 3412.00

With a two-way temperature control system, the temperature can be raised to 50 ° C in -5 ° C environment, and the temperature can be cooled to 5 ° C in 32 ° C environment; the rotary oscillation mode is adopted, and the frequency range is started to 300rpm.

$ 1163.00

Set thermostatic foster and oscillation function in one, microcomputer control temperature accuracy of +/- 0.5 ℃, Oscillation Frequency single layer 40-260 rpm, with slow start splash-proof design, stainless steel liner for easy cleaning.

$ 1531.00

With refrigeration and heating bidirectional temperature control system, Temperature range 5~ 50 ℃, accuracy +/- 0.5 ℃, Oscillation Frequency starting~ 200rpm, stainless steel cavity and polyurethane insulation material, corrosion resistance and anti-interference.

$ 2084.00

Temperature range 4~ 50 ℃ accuracy 0.1 ℃, Oscillation Frequency 20~ 300rpm adjustable, swing amplitude 26mm to ensure uniform mixing, 304 stainless steel liner corrosion resistance easy to clean.

$ 4037.00

Temperature range 4~ 60 ℃, Oscillation Frequency 50~ 300rpm, swing amplitude 36mm, provide a variety of verification services, through the European Union CE safety certification.

$ 6915.00

With 0.1 ℃ temperature resolution and 20~ 300rpm Oscillation Frequency, it supports dual tray configuration and a variety of capacity options. The liner is made of 304 stainless steel to ensure stable operation and durability.

$ 3138.00

Temperature range RT + 5~ 60 ℃, Oscillation Frequency 20~ 300rpm, swing amplitude 26mm, 304 stainless steel liner, support a variety of verification services.

$ 2465.00

Articles

Incubator Selection: Applicability of Temperature Control Range and Function Configuration
This article mainly introduces the compatibility between temperature control range and functional configuration that need to be considered when selecting an incubator.
Temperature Oscillation Suppression in Reflux Synthesis Using Laboratory Stirring Heating Mantles
This article explores the causes and suppression methods of temperature oscillations in laboratory heating mantles during reflux synthesis.
High-temperature viscometer evaluates the flow characteristics of ceramic coatings before sintering.
This article introduces how to use a high-temperature viscometer to evaluate the flow characteristics of ceramic coatings before sintering. During measurement, the instrument detects changes in the viscosity of the coating sample under simulated sintering temperature conditions using rotational or oscillatory principles.
Temperature-controlled Rotational Viscometer Simulates Coating Rheology in Construction Environments
This article introduces how to use a temperature-controlled rotational viscometer to simulate construction environments in order to study the flow characteristics of coatings. The viscosity of coatings changes under different temperatures and shear conditions, which affects their application performance.
Research on the Stepwise Curing Process of Coatings Using Multi-Stage Temperature Control Ovens
This article investigates a novel process for achieving stepwise curing of coatings using a multi-stage temperature-controlled oven.
Quantitative Measurement of Carbon Black Content in Rubber by Thermogravimetric Analyzer
Thermogravimetric analyzers measure changes in sample mass through programmed temperature control, enabling the quantitative determination of carbon black content in rubber. During the experiment, the rubber is first heated in an inert atmosphere to decompose it, leaving the carbon black intact. The atmosphere is then switched to an oxidizing environment to oxidize the carbon black. The carbon black content is calculated based on the mass loss.