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What is a CIP Tank?

What is a CIP Tank?

MOQ: 1 Sets
Price: 10000 USD
Delivery Period: 2 months
Payment Method: L/C,T/T
Supply Capacity: 200 sets / days
Detail Information
Place of Origin
China
Brand Name
Center Enamel
Certification
ASME,ISO 9001,CE, NSF/ANSI 61, WRAS, ISO 28765, LFGB, BSCI, ISO 45001
Material:
Stainless Steel, Carbon Steel
Size:
Customized
Design Pressure:
0.1-10 Mpa
Applications:
Chemical, Food Processing, Beverage Processing, Brewing, Metallurgy, Oil Refining, Pharmaceuticals
Highlight:

CIP tank stainless steel

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stainless steel CIP system

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CIP tank cleaning equipment

Product Description


What is a CIP Tank?

A CIP (Clean-In-Place) tank is an industrial storage and preparation vessel used as the heart of an automated cleaning system. These tanks are designed to hold, heat, and precisely mix cleaning chemicals (such as caustic soda or nitric acid) and purified water.

The primary purpose of a CIP system is to thoroughly clean the interior surfaces of pipes, vessels, heat exchangers, and process equipment without requiring operators to physically disassemble the plant. CIP tanks are strictly utilized in industries where absolute hygiene is non-negotiable, primarily food and beverage, dairy, brewing, and pharmaceutical manufacturing.

1. Anatomy of a CIP System

A true CIP process rarely relies on a single tank. Industrial systems are built as "skids" containing multiple CIP tanks to handle different steps of the wash cycle. A typical 3-tank CIP skid includes:

  • The Caustic Tank: Holds the alkaline solution (usually 1% to 2% Sodium Hydroxide) heated to 70°C - 85°C. Caustic breaks down organic soils, fats, and proteins.

  • The Acid Tank: Holds a mild acidic solution (like Nitric or Phosphoric acid) used at lower temperatures to remove mineral scale (like milk stone or calcium deposits) and to neutralize the pH after a caustic wash.

  • The Recovery/Water Tank: Holds the final rinse water. To save utility costs, many plants use the final rinse water from the previous cycle as the pre-rinse water for the next cycle.

2. The Science of Cleaning: The T.A.C.T. Principle

A CIP tank does not just hold liquid; it is engineered to deliver the four foundational pillars of industrial hygiene, known as the TACT principle. If any one of these pillars is reduced, another must be increased to achieve the same level of cleanliness.

  1. Time: The duration the cleaning fluid is in contact with the equipment.

  2. Action (Mechanical): The physical scrubbing force of the fluid. In tanks, this is achieved using rotary spray balls. In pipes, this is achieved by pumping the fluid fast enough to create turbulent flow.

  3. Chemical: The concentration of the cleaning agents.

  4. Temperature: The thermal energy applied to the fluid. Higher temperatures drastically reduce the time and chemicals required.

Calculating "Action" (Turbulent Flow)

For a CIP system to effectively clean a pipe, the fluid cannot just slide through smoothly (laminar flow); it must churn and scrub the pipe walls (turbulent flow). Engineers guarantee this by calculating the Reynolds Number (Re) and ensuring it is strictly greater than 4,000.



To achieve necessary turbulence, the industry standard is to design CIP pumps to deliver a fluid velocity of at least 1.5 m/s through the largest pipe in the circuit.

3. The Thermodynamics: Heating the CIP Tank

Heating a large volume of caustic solution from ambient temperature to 80°C requires a massive amount of thermal energy. CIP tanks are usually equipped with internal steam coils or external heat exchangers. The thermal power required ($Q$) is calculated using the specific heat capacity formula:



Interactive CIP Heating & Flow Calculator

To understand the utility requirements for a CIP skid, use the engineering simulator below. Adjust your CIP tank volume, target cleaning temperature, and the process pipe diameter to calculate the required thermal energy and the minimum pump flow rate needed to achieve the 1.5 m/s scrubbing velocity.





4. Single vs. Multi-Tank CIP Systems

When designing a plant, engineers must balance capital costs against operational efficiency and chemical waste.

Feature Single-Tank CIP System Multi-Tank CIP System (3 or 4 Tanks)
Footprint Highly compact, often mobile (on wheels). Very large, requires dedicated floor space.
Chemical Usage "Total Loss" system. Chemicals are dumped down the drain after one use. "Recovery" system. Caustic and acid are reclaimed, filtered, and reused.
Utility Costs High. Fresh water must be heated from scratch for every single wash. Low. Tanks are kept hot on standby, and rinse water is recycled.
Best Used For Small wineries, craft breweries, pilot-scale pharma. Massive dairy plants, large-scale beverage production.

5. Frequently Asked Questions (FAQ)

What is a spray ball?

A spray ball is a stainless steel sphere with precisely drilled holes, mounted at the top of a processing vessel. The CIP pump forces cleaning solution into the ball, spraying it in a 360-degree pattern to cascade down the tank walls, providing the "Action" part of the TACT principle.

Why is caustic soda the primary chemical in CIP tanks?

Caustic soda (Sodium Hydroxide) is incredibly effective at saponifying fats and dissolving proteins. Because organic matter is the primary contaminant in food and beverage systems, a hot caustic wash is the most efficient way to break down these soils so they can be flushed away.

Can a CIP system clean dead legs?

No. A "dead leg" is a section of piping (like an unused T-junction or a capped off pipe) where fluid cannot flow through continuously. Because CIP relies entirely on turbulent flow velocity, dead legs do not get the required mechanical scrubbing and will harbor bacteria. Good sanitary engineering strictly forbids the design of dead legs in a process line.