Medium Frequency Induction Heating Furnace For Forging

Medium Frequency Induction Heating Furnace For Forging

The medium frequency induction heating furnace for forging, also known as the medium frequency heating furnace, heats the bar material through electromagnetic induction to meet the temperature requirements, and then pushes the workpiece to the forging bed for forging.

What is Medium Frequency Induction Heating Furnace For Forging?

 

 

The medium frequency induction heating furnace for forging, also known as the medium frequency heating furnace, heats the bar material through electromagnetic induction to meet the temperature requirements, and then pushes the workpiece to the forging bed for forging.

 

Why Choose Us

Production equipment

We produce a complete set of equipment, induction power supply, furnace body, and cooler for 100kw-20000kw medium frequency induction melting furnaces and induction heating furnaces, which can meet the casting, forging, and heat treatment needs of metals in different fields.

 

Our Company

The company not only has industry-leading technological level, but also has a complete pre-sales and after-sales service process. At present, the cumulative number of customers served by the company has exceeded 3000, and our good reputation among customers has enabled us to continuously expand into new customers.

Production Market

We have successfully won the trust and support of over 2000 customers worldwide, and have successfully sold to multiple countries and regions such as Southeast Asia, the Middle East, North Africa, Eastern Europe, Central Asia, and South America, becoming the preferred brand for many metal processing enterprises in these regions.

Our Certificates

In 2023, Hexinda Electric Furnace received a Copyright Registration Certificate for its computer software used in manufacturing, processing, and production operation control systems. Additionally, we hold two Utility Model Patent Certificates.

 

 

 

Application and Characteristics of Medium Frequency Induction Furnace

The principle of intermediate frequency induction heating is electromagnetic induction, and its heat is generated in the workpiece itself. Ordinary workers can carry out continuous work of forging task ten minutes after going to work with intermediate frequency electric furnace, without furnace workers to carry out furnace burning and furnace sealing work in advance.

 

Using the principle of electromagnetic induction heating, the heating rate is fast, so the steel oxidation is less. The oxidation burn loss of heated forgings is only 0.5%, that of gas furnace is 2%, and that of coal furnace is 3%. Therefore, the intermediate frequency furnace heating process can save at least 20-50kg of steel raw materials per ton of forging compared with coal burning furnace, and the utilization rate of steel can reach 95%.

 

Because the heating method is uniform and the temperature difference between the core and the surface is small, the forging life of the forging die is greatly increased. The roughness of the forging surface is also less than that of the 50um process. The energy saving of the medium frequency heating is 31.5%~ 54.3%, and the energy saving of the medium frequency heating is 5%~40% compared with the gas heating.

 

Work Characteristics
Electric furnace has a wide range of applications, which can be used for the melting of steel, stainless steel, copper, aluminum, gold, silver and other materials.
The use of intermediate frequency melting technology, can quickly improve the melting metal temperature, heating range is uniform, is conducive to scum, reduce impurities;
The equipment is small in size, light in weight, melting from a few kilograms to several hundred kilograms, can choose a wide range, not only suitable for factory production and use, but also suitable for schools and institutes of small smelting use.

 

Product Features
Melting furnace capacity can be customized, 0.1T-20T, fast melting speed, 40-60 minutes/furnace
The equipment with self-test function, real-time detection of water temperature, water pressure, overcurrent, overpressure, lack of equal fault information.
Water use no carbon hose, all water dispenser and clip all use 304 stainless steel material.
Can meet 24 hours continuous work, energy saving and environmental protection, reduce costs and labor costs

 

How Does An Induction Furnace Work?

 

The working principle of the induction furnace is based on the principle of electromagnetic induction. The material is heated by the alternating magnetic field generated by the alternating current in the induction coil.

 

First, when an alternating current passes through an induction coil, an alternating magnetic field is generated around the coil. This alternating magnetic field will penetrate the material in the furnace body and generate an induced electric potential inside the material. Since the material is conductive, the induced potential will form an induced current inside the material, that is, an eddy current.

 

When the eddy current flows inside the material, it will be hindered by the resistance, thus generating heat. This heat is the heat source that heats or melts the material. The heating speed and temperature can be controlled by adjusting the frequency, voltage and current intensity of the current.

 

It should be noted that induction furnaces can only heat conductive materials, such as metals. For non-conductive materials, such as glass, ceramics, etc., induction furnaces cannot heat them.

 

In addition, the heating method of induction furnace is different from the traditional flame heating method. Induction furnaces directly heat materials through the principle of electromagnetic induction and do not require fuel combustion, so they have the advantages of energy saving and environmental protection. At the same time, because of the fast-heating speed and high temperature of the induction furnace, it can greatly improve production efficiency and product quality.

 

What Frequency is Required For Induction Heating?
Medium Frequency Induction Heating Furnace For Forging
Medium Frequency Induction Heating Furnace For Forging
Medium Frequency Induction Heating Furnace For Forging
Medium Frequency Induction Heating Furnace For Forging

The frequency required for induction heating depends on various factors such as the size of the workpiece, the desired heating depth, the type of material being heated, and the specific process requirements.

 

For RF induction generators, the frequency range typically used is from 100 kHz up to 10 MHz. However, most induction heating devices with frequency control have a range of 100 kHz to 200 kHz.

 

High-frequency induction heating machines primarily operate in the frequency range of 60 kHz to 200 kHz. These machines are suitable for applications such as brazing, hot forging of small-sized components (typically round bars below 15mm), and quenching operations with a layer depth of about 1-2mm.

 

Medium-frequency induction heating machines typically operate between 1 kHz and 10 kHz. They are commonly used for large tempering, quenching, heating, annealing of modular gears, large-diameter thick-wall pipes, large workpieces, large-diameter shafts, as well as hot forging, smelting, and quenching with larger layer depths.

 

Super audio frequency induction heating power supplies have a working frequency band mainly between 6 kHz and 60 kHz. Compared to lower frequency equipment, this range operates without operating noise and has a current transmission depth of above 2mm. It is suitable for applications such as brazing and hot forging of small-sized components (typically round rods below 35mm) and hardening operations with a layer depth of about 2-4mm.

 

The frequency used in an induction furnace can range from 50 kHz to 400 kHz, and it can go even higher depending on factors such as the melting speed, type of material, and the volume of the furnace.

 

Higher frequencies have a shallower penetration depth into the metal, known as skin depth. Lower frequencies offer higher penetration into the metal.

 

The choice of frequency also depends on the electrical resistivity of the material being heated. Materials with high electrical resistivity, such as steel, carbon, tin, and tungsten, heat up quickly with induction heating. On the other hand, materials with low resistivity, such as copper, brass, and aluminum, take longer to heat up.

 

Induction Furnace and Important Operational Aspects
 

The development of the induction furnace for steel making has been a boon to the small steel producers. These furnaces are easy to install, operate and maintain. These furnaces are smaller in heat size with a low cost investment and preferred by lower capacity steel plants. In these furnaces, steel is produced by melting the charge material using the heat produced by electromagnetic field.

 

The induction furnace consists basically of a crucible, inductor coil, and shell, cooling system and tilting mechanism. The crucible is formed from refractory material, which the furnace coils is lined with. This crucible holds the charge material and subsequently the melt. The choice of refractory material depends on the type of the charge and basically consist of either acidic, basic or neutral refractories.

 

The inductor coil is a tubular copper coil with specific number of turns. An alternating current (AC) passes through it and magnetic flux is generated within the conductor. The magnetic flux generated induces eddy currents that enable the heating and subsequently the melting process in the crucible.

 

The shell is the outer part of the furnace. This houses the crucible and the inductor coils, and has higher thermal capacity. It is made of rectangular parallelepiped with low carbon steel plate and joined at the corners by edge carriers from angular pieces and strips of non-magnetic metal.

 

The cooling system is normally a through one way flow system with the tubular copper coils connected to water source through flexible rubber hoses. The cooling process is important because the circuit of the furnace appears resistive, and the real power is not only consumed in the charged material but also in the resistance of the coil. This coil loss as well as the loss of heat conducted from the charge through the refractory crucible requires the coil to be cooled with water as the cooling medium to prevent undue temperature rise of the copper coils.

 

Raw Materials And Energy Source

Steel melting scrap, direct reduced iron and pig iron/cast irons are the input raw materials for an induction furnace. The ratio of these items and the technology of melting these input materials varies according to the availability of raw materials and location of the plant. Further selected raw materials is required for the production of specific quality steel. For better and efficient operation of melting in induction furnace, raw material charge must fulfill the following criteria.

 

It must be as dense as possible. Compaction of scrap is important for ensuring uniform and rapid heating as well as for energy saving.


It must be clean. Rust, oil, grease, and sand etc. should preferably be nil.


It must be metallurgically clean, i.e. free from slag lumps, oxides etc., particularly for direct reduced iron, skull and ferro alloys.


There are no or less sharp pointed edges, particularly in case of heavy and bulky scrap.


It must be segregated from harmful ingredients like explosives, closed containers, evaporative substances and readily available in chargeable sizes on the shop floor.


Electricity is the only energy source for steel melting in the induction furnace. Induction furnace is to run at maximum power since beginning. There are some misconception of running furnace at low tap initially and then gradually increase to higher tap. Maximum power input increases rate of melting and hence reduces cycle time of a heat. Power factor to be maintained near to one.

 

Drop of voltage from the source also to be monitored for better energy efficiency. Further power consumption rate is dependent on the furnace size and it is lowered as the furnace capacity is increased approximately up to 15 to 17 tons and thereafter consumption rate remains almost constant at around 600 kWh/ton.

 

Important Aspects Of Operation
As liquid steel is excited by current opposite to current flowing in induction coil, it is agitated to raise its surface in the center. Surface of liquid steel is risen higher as frequency becomes lower, i.e. agitation of the liquid steel occurs stronger in low-frequency furnace than in high-frequency furnace. This effect of agitation makes it possible to ensure uniform temperature of the liquid steel and its uniform quality as well as to promote entrapment of material charged and fusion of chemical composition adjusting agents, specially carbon addition. On the other hand, excessive agitation may cause such troubles as oxidative wearing of liquid steel and fusing out of refractories or danger of spattering of liquid steel.

 

Once the melting is complete, the slag is skimmed off. Slag generated during melting has tendency to stick on the furnace wall. This reduces volume of furnace hence reduces metal output per heat.

 

Superheating of metal is done at higher temperature and held for few minutes. This inhibits slag to deposit on the furnace lining keeping furnace clean with full volume.

 

The composition of the slag varies depending on the specific process being used and the type of steel being produced. The compositions of furnace and ladle slags are often very complex. The slag which is formed is the result of complex reactions between silica, iron oxide from steel scrap, other oxidation by products from melting, and reactions with refractory linings. The slag consists of a complex liquid phase of oxides of iron, manganese, magnesium and silicon, silicates and sulfides plus a host of other compounds, which may include alumina, calcium oxides and sulfides, rare earth oxides and sulfides etc.

 

While producing the steel, the chemistry of end product is controlled. The chemical analysis of all the input materials is done to have a decision on the charge mix. After completing 50 % charging of the input materials, a bath sample is analyzed for chemical composition. Based on the chemical analysis of the bath sample at this stage calculations are made for further additions of the metallics. If the bath sample at this stage shows high percentage of carbon, sulphur and phosphorus then the direct reduced iron content of the charge is increased. Final bath sample is taken when 80 % melting is completed. Based on the analysis of this sample, another adjustment is made in the charge. The lower content of carbon in the sample is corrected by increasing the quantity of pig iron/cast iron in the charge. Silicon and manganese in the metal is oxidized by the iron oxide of the direct reduced iron. Sulphur is also diluted by the direct reduced iron. Because of use of direct reduced iron the trace elements in the steel made in the induction furnace remains under control.

 

The liquid steel is the desired output of the induction furnace. The quantity depends upon the capacity of the furnace, and the quality depends upon the raw materials and the steel composition. The tapping temperature depends upon the type of steel and the super heat needed in the liquid steel for its end use. Tapping of steel at high temperatures increases refractory erosion and power consumption.

 

Unnecessary superheating of liquid steel to high temperature costs to energy significantly. Minimizing the overheating of molten bath saves energy. Depending on steel specification and temperature loss during transfer of liquid steel to continuous casting machine, superheat temperature is to be decided. In every heat, temperature of the liquid steel bath is to be measured and monitored to get optimum energy saving. Proper power control systems with potentiometer adjustment need to be provided for minimizing energy losses due to overheating.

 

Other Aspects Of Induction Furnace Steel Making
Depending on the installed power density and the melting practice, the thermal efficiency of the induction furnace can exceed 80 %, but usually it is in the range of 60 % to 78 %.

 

Induction furnaces are normally kept open during the entire melting process where the workers engage in slag skimming and monitoring of the quality of molten bath. However, this leads to significant heat loss and hence special covers or lids need to be installed for reducing heat losses. In particular, reducing the time the lid is kept open while melting, can lead to substantial energy savings.

 

The theoretical requirement of energy for melting iron is only 340 kWh per ton whereas the actual power required is around 600 kWh. This difference is due to two factors namely (i) inherent in the principle of melting in an induction furnace which include the inefficiency in electrical bus bar losses, eddy current losses, refractory losses, and cooling water losses etc., and (ii) the operational losses which are largely due to unnecessary and excessive holding of liquid steel in the induction furnace.

 

Induction furnace equipment should be placed with minimum distance between each equipment to reduce wiring losses. To reduce the wiring losses remarkably, it is essential to shorten the distance between furnace body and power factor improving capacitor as very large current flows between them.

 

Efficiency of induction furnace is expressed as a total, deducting electrical and heat transfer losses. Electrical losses consist in transformer, frequency converter, condenser, wiring, cable, coil, etc. Loss in coil is essential factor, on which the furnace capacity depends. Heat losses in induction furnace consist of conduction loss of heat escaping from furnace wall to coil side, radiation loss of heat released from melt surface, absorption loss in ring hood, slag melting loss, etc. The coils of furnace are water cooled which also results in heat loss. Heat efficiency of high and medium frequency furnaces (60 % – 78 %) is slightly larger than that of low frequency furnace (58 % – 71 %).

 

How to Maintain the Medium Frequency Induction Heating Machine with ?

 

 

As more and more companies use medium frequency induction heating machines, now we will share with you how to maintain medium frequency induction heating equipment. Persistence and understanding are the most important in doing anything. What we are sharing now is what maintenance measures should be taken for induction heating equipment in the process of seasonal changes:

 

How To Maintain The Medium Frequency Induction Heating Machine In Spring
Spring is a rainy season. When the weather is wet, pay attention to the moisture-proof of the electrical components of the medium frequency induction heating machine (to prevent the electrical components from burning out due to dampness), and try to put the equipment in a well-ventilated and dry place;

 

How To Maintain The Medium Frequency Induction Heating Machine In Summer
Summer is a season of scorching heat and high temperature. Generally, the water temperature difference of the medium frequency induction heating machine should not be higher than 35℃, otherwise the equipment will burn out more frequently than in other seasons due to high temperature. There are also many faults in summer due to the increase of water temperature caused by waterway scaling and waterway blockage, so in summer, we must pay more attention to the maintenance of equipment and waterway.

 

How To Maintain The Medium Frequency Induction Heating Machine In Winter
It is necessary to prevent the waterway from freezing in cold places in winter. When the ambient temperature reaches below 0°C, it is recommended to add antifreeze to the circulating water to ensure that the waterway does not freeze and prevent the pipeline from cracking.

You need to pay attention to moisture, dust and ventilation during routine maintenance of the medium frequency induction heating machine. Regularly clean the waterway pool, ensure that the inlet water temperature is not higher than 35℃, and keep the waterway unblocked. Doing these will extend the life of the medium frequency induction heating equipment by several years.

 

 
Our Factory

 

Shandong Hexinda Electric Furnace Co., Ltd. was established in 2014. After 10 years of development, the company has become a production-oriented company that integrates research and development, production, sales, and after-sales service, and has passed ISO9001 quality system certification. We produce a complete set of equipment, induction power supply, furnace body, and cooler for 100kw-20000kw medium frequency induction melting furnaces and induction heating furnaces, which can meet the casting, forging, and heat treatment needs of metals in different fields. The company not only has industry-leading technological level, but also has a complete pre-sales and after-sales service process.

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FAQ
 

Q: What is medium frequency induction furnace?

A: The basic principle of the medium frequency induction furnace The basic principle of the medium frequency induction furnaces is using eddy currents in the metal for heating the metal, which are induced by an alternating magnetic field. The frequency of the alternating magnetic field is, generally, of 200~2000 Hz.

Q: What is the role of frequency in induction furnace?

A: The frequency of an induction furnace has a significant impact on its heating efficiency. Higher frequencies, such as those above 1 kHz, result in faster and more efficient heating.

Q: What is the choice of frequency for induction heating?

A: Induction Heating Frequency Selection for Melting
The furnace produces high heat until the metal reaches the melting point. Generally, operators set the frequency of the induction melting machine between 3-30 kHz. But it all depends on the metal material and its melting capability.

Q: What is the benefit of induction furnace?

A: Induction furnace capacities range from less than one kilogram to one hundred tons, and are used to melt iron and steel, copper, aluminum, and precious metals. The advantage of the induction furnace is a clean, energy-efficient and well-controlled melting process, compared to most other means of metal melting.

Q: What is the meaning of frequency induction?

A: The frequency of the inductive current determines the depth that the induced eddy currents penetrate the workpiece. In the simplest case of a solid round bar, the induced current decreases exponentially from the surface.

Q: How to choose an induction furnace?

A: How Experts Choose Induction Furnaces
Know the Melting Points of Different Metals. An induction furnace is meant to heat to a specific limit. ...
Look For High-Quality Furnaces. Experts often look at the quality of every induction furnace before buying it. ...
Think About the Melting Capacity and Energy Needs.

Q: What is the difference between medium frequency and high frequency induction furnace?

A: According to the current frequency, induction heating can be divided into: high frequency induction heating (20,000 ~1000000 weeks/second), medium frequency induction heating (5000 ~10000 weeks/second) and the working frequency induction heating (50 weeks/second).

Q: How hot does an induction furnace get?

A: About 3300°F
Induction furnaces do not have a limit to the temperature they can melt and/or heat. However, the refractories and materials that contain the heated or melted material have limitations. The highest temperature typically reached in open air is about 3300°F for a platinum melt.

Q: What is the best frequency for induction heating?

A: Most induction heating devices (with induction frequency control) have a frequency range of 100 kHz to 200 kHz. The output range typically incorporates 2.5 kW to 40 kW. Induction heaters in this range are used for smaller components and applications such as induction hardening an engine valve.

Q: What is the main frequency of induction furnace?

A: Frequencies used in induction melting vary from 50 cycles per second (mains frequency) to 10,000 cycles per second (high frequency). The higher the operating frequency, the greater the maximum amount of power that can be applied to a furnace of given capacity and the lower the amount of turbulence induced.

Q: What is the insulation material for induction furnace?

A: Fiberglass Tape
The cloth that is used for the fabrication has the highest glass-to-resin ratio. Fiber glass tape is mainly use in coil insulation material.

Q: What metals can be melted in induction furnace?

A: Induction equipment can melt/heat virtually all metals and materials including, gray and ductile iron, steel, copper and copper-based alloys, aluminum, zinc, reactive metals, precious metals, silicon and graphite.

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