Water Jacketed Laboratory Incubator NovaIncu WT162-I
- Utilizes efficient water bath heating for minimal temperature drift and energy conservation.
- Constructed with corrosion-resistant stainless steel shelves and chamber for easy maintenance.
- Smart water management system provides audible/visual alerts for level abnormalities.
- Precise temperature control via a high-speed microprocessor and laboratory-grade Pt sensor.
- Supports sophisticated automation with preset programs lasting up to 99 hours.
- Multi-parameter alarm suite ensures process integrity and equipment safety.
- User-centric features include data memory, calibration function, and auto-diagnostics.
- Can be upgraded with a secondary over-temperature cutoff and germicidal UV lamp.
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Model |
NovaIncu WT162-I |
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Chamber volume(L) |
160 |
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Temp. Control Range |
RT+5℃~65℃ |
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Temperature |
Resolution |
0.1℃ |
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Fluctuation |
±0.3℃ |
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Uniformity |
±0.5℃ at 37℃ |
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Controller |
PID microprocessor control, soft touch, LED display |
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Sensor |
PT100 |
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Timer |
Power-on, power off and working. Timing range: 1min-99hr |
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Material |
Internal |
Mirror polished 304 stainless steel |
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External |
Steel (powder coating) |
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Dimensions (WxDxH,mm) |
Internal |
500×500×650 |
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External |
660×610×930 |
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Net Weight(Kg) |
72.5 |
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Consumption Power(W) |
≤1220 |
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Shelf Size(mm) |
495×478 |
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Shelf Qty(Standard/Maximum) |
2/4 |
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Power Supply |
220V/50Hz (Optional: 220V/60Hz, 110V/60Hz) |
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Beyond simple warming, modern laboratory incubors are sophisticated life-support systems for in-vitro studies. Their advanced control over atmospheric conditions within the chamber is what truly distinguishes them. While temperature stability remains paramount, high-end models excel in regulating relative humidity levels, often between 95-98%, to prevent critical desiccation of cell cultures.
Furthermore, CO2 incubators actively control carbon dioxide concentration (usually 5%) in tandem with temperature to maintain precise pH levels in bicarbonate-buffered media, a non-negotiable requirement for most mammalian cell cultures. Some specialized units extend control to oxygen (O2) levels, creating hypoxic environments to study tumor biology or stem cell niches. Integration of sterilization technologies like automated, periodic UV-C light decontamination cycles or copper-lined interiors adds a layer of protection against microbial invaders.
For suspension cultures, shaking incubators introduce controlled orbital agitation, ensuring homogeneous nutrient and gas distribution. These multifaceted capabilities support complex applications: developing organoid models, producing monoclonal antibodies, conducting medicine cytotoxicity assays, and preserving sensitive enzyme reactions. Thus, the contemporary incubator is a dynamic, programmable bioreactor chamber, enabling scientists to dissect the very conditions that sustain life at a cellular level.
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