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Ionenaustauschmembranlösung

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Ionenaustauschmembranlösung

Based on Ion-Selective Membrane Acid Recovery Solution

Based on Ion-Selective Membrane Acid Recovery Solution
Based on Ion-Selective Membrane Acid Recovery Solution

Based on Ion-Selective Membrane Acid Recovery Solution

Core Principle of Electrodialysis

The core of electrodialysis technology lies in the combination of electric field and selective membrane technology. Its specific principle is divided into two parts:
  1. Driving Effect of DC Electric Field and Concentration Gradient
    Under the action of a DC electric field or concentration gradient, anions and cations in the solution move directionally: cations migrate toward the negative electrode, while anions migrate toward the positive electrode; solutes move from high-concentration solutions to low-concentration ones.
  2. Selective Sieving Effect of Ion Exchange Membranes
    Two types of ion exchange membranes are used in the system to achieve ion separation:
  • Cation Exchange Membrane: Only allows cations (e.g., Na⁺, Ca²⁺, Mg²⁺) to pass through, while blocking anions.
  • Anion Exchange Membrane: Only allows anions (e.g., Cl⁻, SO₄²⁻) to pass through, while blocking cations.
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Diffusion Dialysis Membranes

Including acid recovery diffusion dialysis membranes and alkali recovery diffusion dialysis membranes.

Diffusion Dialyzers

Equipment for separating alkali (acid) by arranging diffusion dialysis membranes, dialysis chamber separators, and diffusion chamber separators in a certain order, placing water distribution plates on both sides and clamping with clamping plates.

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Working Principle

The diffusion dialysis process takes concentration difference as the driving force, and uses the selective permeability of (anion) cation exchange membranes to (acid) alkali and high retention of salts or other components to separate (acid) alkali from salts or other components in the solution. The separated alkali (acid) solution is reused in the production process.

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Industrial Application of Diffusion Dialysis

1.Electronic Aluminum Foil Industry Waste Acid Recycling Project

2.Graphite Industry Waste Acid Recycling Project

3.Hydrometallurgy Industry Waste Acid Recycling Project

4.Steel Pickling Industry Waste Acid Recycling Project

5.Titanium Dioxide Industry Waste Acid Recycling Project

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Bipolar Membranes

Composed of a composite of anion membrane layer and cation membrane layer, which can perform electro-dissociation of water or alcohol under the drive of an electric field.

Equipment Structure

Assembled by alternating bipolar membranes, anion membranes, and cation membranes, separated by separators, and equipped with electrode plates, polar plates and end plates.

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Working Principle

Water is dissociated into H⁺ and OH⁻ ions, which combine with corresponding anions and cations respectively to form acids and alkalis. At the same time, wastewater desalination and acid/alkali preparation are realized.

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Industrial Application of Bipolar Membrane Electrodialysis

1.Bipolar Membrane Electrodialysis for Organic Acid/Alkali Conversion and Concentration

 2.Bipolar Membrane Electrodialysis for

Resource Utilization of Brine Treatment

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This technology is based on the principle of bipolar membrane electrodialysis. Under the action of a direct current electric field, it utilizes bipolar membranes to efficiently dissociate water molecules into hydrogen ions and hydroxide ions. This process then directionally converts salts in electroplating wastewater (such as sodium chloride, sodium sulfate, etc.) into corresponding acids (such as hydrochloric acid, sulfuric acid) and alkalis (such as sodium hydroxide), achieving the dual objectives of wastewater purification and resource recovery.

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Core Principle of Electrodialysis The core of electrodialysis technology lies in the combination of electric field and selective membrane technology. Its specific principle is divided into two parts: Driving Effect of DC Electric Field and Concentration GradientUnder the action of a DC electric field or concentration gradient, anions and cations in the solution move directionally: cations migrate toward the negative electrode, while anions migrate toward the positive electrode; solutes move from high-concentration solutions to low-concentration ones. Selective Sieving Effect of Ion Exchange MembranesTwo types of ion exchange membranes are used in the system to achieve ion separation: Cation Exchange Membrane: Only allows cations (e.g., Na⁺, Ca²⁺, Mg²⁺) to pass through, while blocking anions. Anion Exchange Membrane: Only allows anions (e.g., Cl⁻, SO₄²⁻) to pass through, while blocking cations.

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