Thursday, 25 April 2019

Frozen desserts- Ice cream manufacturing

FROZEN DESSERTS



In present times, frozen desserts have become so popular that they are now a major profit - making item on the menu in many commercial outlets such as fast foods and coffee shops. It also has an advantage that they can be prepared in advance and can be stored for long periods of time. Ice creams are purchased ready- made and require no preparation time, space or manpower.



-        Frozen Yoghurts contains yoghurt in addition to the normal ingredients for ice cream

-        Sherbets and Ices made from fruit juices, water and sugar. American sherbets usually contain cream or milk and sometimes egg whites. The egg whites increase smoothness and volume. Ices, which are also called water ices, contain only fruit juices, purees and sugar. The do not contain milk products and are often referred to as sorbets or granite. Ice creams and sorbets are churn frozen and are constantly mixed while they are freezing. If they are not churned, they would freeze into a solid block of ice. The churning keeps the ice crystals small and also incorporates air into the ice cream.

-        Frozen souffle, bavarois and mousses are referred to as still-frozen desserts. There is no churning involved. Egg whites or fresh cream is incorporated to give lightness.

-        Specialty ice creams are commonly found ways in which ice creams are served. These include :

1.       Bombes

2.       Parfaits

3.       Coupes/sundaes

4.       Meringues glace

5.       Baked alaska

6.       Frozen eclairs and profiteroles

What is Ice cream?

Technically, ice cream may be defined as the partly frozen foam with an air content of 40-50% air by volume. The continuous phase of the foam contains dissolved and colloidal solids such as sugars, proteins and stabilizers. The fatty phase is in the emulsified form. Some of the milk proteins are structurally related to the fat globules of the emulsion.

Imitation ice cream is known as Mellorine and is made now in many parts of the world. Mellorine is cheaper than ice cream because in expensive vegetable fats and oils are substituted for the more expensive dairy fats. Other than this, mellorine has almost the same composition as ice cream. There is still no cheap substitute for milk protein, although some vegetable proteins, particularly from soy bean, with improved flavors are used to prepare lactose free ice creams.

Prevention of food adulteration Act (PFA) Rule A 11.02.08, defines ice cream and kulfi as under:

The frozen food obtained from cow or buffalo milk, or a combination thereof, or from cream and /or milk product with or without the addition of cane sugar (dextrose, liquid glucose and dried liquid glucose), eggs, fruit and fruit juices, preserved fruits, nuts, chocolate, edible flavors and permitted food colors. It may contain permitted stabilizers and emulsifiers not exceeding.5% by weight. The mixture should be suitably heated before freezing. The product must contain not less than 10% milk fat, not less than 36% total solids, except when the aforesaid preparation contains fruits, nuts or both, the content of the milk fat shall not be less than 8% by weight. Starch may be added to a maximum extent of 5% under the declaration on the label. The standards of ice cream shall also be applied to softee.

Ice cream is a complex system in which the stable mixed emulsion of four phase system of fat-water-ice-air, must be balanced and protected from breaking and separating.



The blend of milk fat and non-fat solids with sugar must result in a product of pleasing taste and one which is smooth and creamy. Composition of the mix is important, but the most critical stage of ice cream manufacture is the mechanical blending, freezing and hardening of the ice cream.



COMPOSITION OF ICE CREAM



The ingredients used in ice cream manufacture are milk, skim milk powder, cream, butterfat, sugar, stabilizers, emulsifiers, food grade flavors and permitted colors. Chocolate, dried fruits and nuts, honey, fruit pulps and other such ingredients are also added to give variety.



Normal ice creams will have a milk fat content of 10-14% but richer ice cream will have a dairy fat content of up to 20-24%. Proteins are usually between 3.5-4%, sugar 14-15%, stabilizers .3-.5% and emulsifiers .1-.2%



MANUFACTURE OF ICE CREAM



The following are the steps involved in the processing of ice cream:

-    Pasteurization

-        Homogenization

-        Cooling

-        Ageing

-        Freezing

-        Hardening

-        Storage

-        Transportation and delivery



After weighing or metering by volume, the ingredients are heated together in a jacketed tank with strong agitation so as to form a core emulsion with large fat globules up to 15 gms in size. Pasteurization treatment may be carried out in the mixing tanks. During Homogenization, the mix is converted into a true emulsion with a fat globule size of less than 2 gms. For efficient homogenization, the fat phase should be completely liquid and hence a temperature near pasteurization temperature is preferred. Homogenization of the ice cream mix is normally carried out at a pressure of 140-210 kg/cm2. At the end of this treatment, it is often found that individual small fat globules cohere in clumps, resulting in a viscous mix with poor processing properties in subsequent stages. A second homogenization at lower pressure of 35kg/cm2 is used to break up the clumps.



The emulsion is now cooled immediately to 4°C sometimes using a super cool.



The next step is ageing. The cooled emiulsion is usually styored in a thermostatically controlled vessel for 2-8 hours because ageing improves freezer performance and produces better ice cream structure. During ageing, the stabilizer hydrates fully and increases the viscosity of the mix. The importance of ageing will vary with different stabilizers. Significant improvement in texture is noted at this stage.

FREEZING

Ice cream is available in two forms:

1. As hard ice cream which has been frozen in a continuous freezer and is either extruded, shaped or packed in small individual portions or in the larger family packs. The final processing step now is hardening at a low temperature cold store at –30 to -40°C before it is distributed in refrigerated transport.

2. As soft ice cream which is frozen in a small batch freezer situated at the retail outlet. Ice cream mix for this type of operation is provided as a pasteurized mix which must be stored at 4°C after manufacture. This is often referred to as the softee ice cream.  

STORAGE OF ICE CREAM



Ice cream can be stored at 0°F (-18°C) to prevent large ice crystal formation.

For service, temper frozen ice cream till it is soft enough to serve. If scooping, the ice cream scoop must be rolled over the surface so that the ice cream forms into a round ball.

FUNCTIONS OF SOME OF THE INGREDIENTS:



-        Sugar: Sugar represents half the total amount of solids in the ice cream mix. It includes lactose, which is the natural milk sugar. Sugars act as a sweetening agent, depress the freezing point, influence the consistency and to some extent the size of the ice crystals and the lactose crystallization of the frozen ice cream.



-        Stabilizers: Gelatin was the first stablilzer used in the manufacture of ice cream. Since then a number of poly saccharide stabilizers have become available. These include sodium carboxy methyl micro crystalline cellulose, sodium alginate, cerragaenan, agar pectin, xanthin gums, carobbean and guar gum. Often a combination of these is used. Stabilizers perform several functions in the manufacture of ice cream. They increase the viscosity, thereby improving the body and creaminess of the ice cream. They also regulate the development of the ice crystals and thereby give a smooth texture to the ice cream. During inevitable temperature fluctuations, they minimise the development of large crystals and the undesirable coarse texture. They thicken the aqueous phase and modify the crystallization of ice



ICE CREAM QUALITY

Quality implies a clearly produced ice cream of acceptable flavor, taste, body and texture. The composition of the product and the ingredients used should be within the parameters and the limits set by the food laws. The desirable physical properties of ice cream should be defined mainly in terms of the texture as it is eaten. The consistency should be smooth and creamy and the air content should be finely distributed. There should be a quick melting effect on the palette, without greasiness or gumminess and with no gritty icy sensation. As the ice cream warms up, it should have a tendency to retain its shape, and as it melts, a creamy and not a watery serum should be formed. Flavor acceptability is governed by the quality of the ingredients that are used as well. Fruits, nuts, chocolate as well as the added flavors should be of a good quality. However, the basic flavor must come from high quality of milk and cream.



ICE CREAM – THE CHILLING TRUTH

Ice cream, Sumptuous…….., Luscious………………., Creamy…………. Ice cream!!!

Now that summer is almost here, it is time for scoops of it. But, have you ever considered what gives that delightful taste to a snowy vanilla ice cream? The real extract of orchids??? Forget it!!! The genuine vanilla that is obtained from the variety of orchids, almost never reaches the ice cream manufacturer. Instead, a synthetic substance called vanillin makes its way into the creamy stuff. Vanallin comes much cheaper than vanilla. If a small amount of vanilla can flavor two cups of ice cream, then the same amount of vanillin can flavor 500 cups. So why should’nt the manufacturer use the cheaper stuff…the customer would never know!!!! The substitute tastes like the real thing, but it is far from harmless!  This is largely because there is very little accountability for the manufacturers.  Even in the US, the food and drug administration (FDA) has not forced icecream manufacturers to name all the ingredients on the labels of their products.  All you get is the brand name, the Company’s name and the flavour.  The small print merely says, ‘only permitted colours and flavours used.  But what flavours and what colours?  Icecream companies here and abroad are given carte blanche to use additives.  Not surprisingly, neutralisers, stabilisers, emulsifiers, buffers, anti-oxidants, surfactants, bactericidals, synthetic colours and artificial flavours – all find their way into the gooey stuff.  In 1942 the FDA had banned the use of many additives because their safety had not been verified.  But oddly enough, again in 1960, it sanctioned the use of these chemicals – although there was still no proof of their safety.  The fact is that surfactants, which reduce the surface tension and are wetting agents, are chemicals similar to detergents.  And most emulsifiers are polyoxyethylene based and have caused cancer in experimental animals.  Most germicidals, anti-freeze agents and pain removers contain propylene glycol alginate – so does icecream.  Why then are these products used?  Animals given even minute quantities of propylene glycol alginate developed diarrhoea and some of them even died.  

Artificial flavours are harmful too, besides vanillin another substitute for vanilla is piperonal, which is a lice killer.  Chocolate icecream contains aldehyde C 18, amylphenyl acetate, n-butyl, phenyl, veratraldehyde, and other such tongue twisters... All, strong chemicals you wouldn’t like to touch, leave alone eat.  Rare are the manufacturers who use real fruit like strawberries.  More usually, artificial flavours are employed.  Pineapple icecream is often flavoured with ethylacetate, which is a cleaning agent for leather and textiles and whose vapours cause damage to the heart, liver and lungs.  Banana icecream scarcely contains banana, but an artificial flavour – amyl acetate – which is actually a solvent for oil paint.  Now you wouldn’t let your kids come anywhere near that.

In the west, there are thousands of synthetic colourings which are usually coal tar dyes proven to be carcinogenic.  Worse, most Indian icecreams are violently coloured to suit our flashy tastes, which just means a whole lot of colour.  It’s time the government stopped being complacent about a food product that is downed by tons every day.   On the positive front, Indian icecreams are believed to be more wholesome and natural and not so thoroughly soaked in synthetic additives as in the West.  Even then icecream companies should be made to mention all ingredients by name on their labels, plus the date of manufacture and expected shelf life.

Accountability is the only solution when it concerns the health of millions.

Bread Improvers

BREAD IMPROVERS



We refer to flour as being either strong or weak. The strength of flour varies according to its strength and also according to factors such as starch content, sugar content, the water absorption power (WAP) of the flour and even the  colour. These aspects will affect the final outcome. In order to make good bread, it is not always possible to use the right type of flour as the availability may vary. It becomes necessary therefore to add something to the dough in order to bring the product to a pre determined standard. This addition should be with discretion on knowledge, otherwise, the quality of the bread instead of improving, may actually worsen.

Bread improvers are substances, which when added to dough, enables the baker to produce an improved loaf with better keeping qualities, finer textures, softer crumb, added bloom and enhanced flavor.

There are three main types of bread improvers:



1.     Mineral additives

2.     Yeast foods

3.     Enriching agents

MINERAL ADDITIVES


Mineral bread improvers are used during the milling of wheat flour. They are commonly used by the baker during production as well. They will include:



-      Peru sulphates – used by the miller at the rate of ¼ to ½ oz per 280 lbs (one sack). The peru sulphates used are potassium and ammonium. Flour treated with Peru sulphates will take on more water and an increased yield is obtained.

-        Glycerol Mono Stearate - The mono glycerol ester of stearic acid, which has remarkable emulsifying power, is used as an emulsion stabiliser and as a crumb softener in bread.

-        Potassium Bromate – It is used by the miller at the rate of 1 lb per sack (280 lbs). Bromate increases the stability on the gluten to extend. Bromate has an astringent action on gluten thereby increasing the use of water in the dough. It also increases the gas retaining properties of the gluten, thus improving loaf volume.

-        Phosphates – Acid calcium phosphates and ammonium phosphates both have a tightening action on gluten and since phosphates are a necessary constituent of yeast food, they are both fermented stimulants. Acid calcium phosphate (ACP) is used at the rate of 1 lb per sack (280lbs) which can be increased to 2 lbs per sack to inhibit the development of rope. A phosphate is added at the rate of 8 oz per sack.

-        Lime Water – Lime water was used to retard the fermentation of the dough in hot weather climates. In addition, it has astringent action on the gluten. As lime is alkaline, it reduces the acidity of the dough and thus slows the rate of the fermentation. It is used at the rate of 1 quart per sack.

-        Organic acid – Organic acids are natural constituents of fermented dough. They are added to get the dough better conditioned. Lactic acid can be added at the rate of 8 oz per sack. Succinic acid is added at the rate of 2-4 oz per sack.

 

 

 

YEAST FOODS


Yeast foods indirectly affect the bread in a number of ways by their effect on fermentation. Malt not only provides food directly to the yeast but manufactures further supplies as and when needed whilst simultaneously mellowing and softening the gluten of the flour. 

There are two types of malt: diastatic and non diastatic.

Diastatic malt add to the flavor, it increases the sugar content in the dough and provides diastatic sugar for the fermentation process. Diastatic enzymes also contain proolytic enzymes which modify gluten. Non Diastatic malt serves the dual purpose of providing sugar as well as adding to the flavor.

Flour contains natural sugar. Principally, this is sucrose in varying amounts. Normally, it is 2.5 –3%. This amount is not sufficient for satisfactory fermentation. There must be sufficient sugar present for the production of gas that will give the loaf the required volume and to allow for the caramelization of the crust during baking. As sugar contains no nitrogen, they cannot be considered complete foods for yeast, but they produce material from which CO2 can be produced. Demerara sugar and even treacle can be used in brown breads as they are excellent for imparting flavor and retaining color.



ENRICHING AGENTS



Enrichment is a way of increasing nutritional value of the bread along with improvements in volume, texture and the keeping quality of the bread

Fats  Fats have a physical rather than a chemical effect on dough. As fat is a shortening agent, it reduces toughness, thus making the product more mellow. It is particularly valuable for use with strong flour with a tough and harsh gluten content. Fats can be used in small quantities to give optimum effect. Fat also increases food value. They add to the moistness in bread thereby retarding staling. They also impart flavor to the bread.



Milk and Milk Products  - Whole milk added to dough has the effect of adding fat as well as sugar, besides calcium salts and casein.





Eggs – The incorporation of eggs in a bread dough results in many improvements. Egg adds to the increased volume, better texture and better oven spring. It is economical to use as it contributes immensely to improved quality and volume of the product.

Faults in breads

BREAD FAULTS


A good bread should be judged by its volume, bloom, shape, color, texture, sheen, moistness and flavor. In general, one should examine the external area and the internal (crumb) area of the bread.

Bread faults can arise from many causes. Flour varies in grade, in gluten content and quality. Color also varies and so does the maltose content. When examining the faults in the loaf of bread, the temperature and timings, methods of manipulation, addition of materials, errors in setting and timing of machinery, all must be taken into account.



EXTERNAL FAULTS

1.        Lack of volume: The major causes of this fault are

-        a dough that is too tight and with too little yeast

-        Too much salt will cause under ripening, conducive to small volume.

-        Flour with low maltose will produce bread of less than normal volume. Over bleached flour or the excess use of chemical improvers, will also produce this fault.



2. Excessive volume:

Dough with

-        low salt content

-        excess final proof

-        loose moulding

will produce a bread of excessive volume

Excess salt decreases the stability of gluten. An excessively slack dough also produces a bread with excess volume. This can be adjusted by altering the proving time. A cool oven causes fermentation to continue in the oven. Therefore there will be too much oven spring.



3.Lack of Crust Color: Baking the bread in a cool oven renders the loaf colorless. The other causes for lack of crust color may be:

-        over ripe dough, due to extended fermentation period (all the sugar is used up)

-        excess water content

-        lack of maltose

-        lack of salt

1.        Excess Crust Color: The likely causes are

-        insufficient fermentation

-        excessive use of sugar

-        flour might have been milled from sprouted wheat (partially)

-        baking too quickly and at too high a temperature

2.        Shell Tops: This is due to the formation of a crust on top of the loaf before maximum expansion has taken place. The pressure from within the loaf exerts itself in such a way that the top of the loaf lifts in the form of a lid.

3.        Rough Surfaces: The crust of over fermented dough is always rough. Use less yeast. Bad molding can also cause unsightly crust surfaces.

4.        Collapsing Bread: Collapsing bread is caused by insufficient tensile strength of the dough. Such dough is mainly due to too much water, malt or gluten improvers. Other causes could be

-        over proving

-        baking in cold oven

-        Disturbance of the dough before entering the oven.

Extraneous matter that may have been an accident, can lodge itself in the mass of the dough. However there can be no excuse for dark smears caused by dirty tin grease, finger marks or the dirt from unclean racks and boxes.



EXTERNAL FAULTS

1.        Holes in the crumb: A dough made from flour weak in gluten, especially when the yeast content is high, will cause holes, because the gluten has little power of gas retention and the weaker cells will break down during baking. Faulty manipulation after bulk fermentation destroys the elasticity of the gluten and therefore the expansion does not proceed evenly, breakage occurs and large holes are formed in the mass.

2.        Cores Seams Streaks and Condensation Marks: The most common cause for cores is the incorporation of pellets or hard flour or dough particles. Another common cause is the turning in of a dry skin when moulding. Slight over proving or over malting often cause a core near the bottom of the loaf. 

        Seams are dense layers of inedible bread. He careless causes them handling when loading. Movement of    the dough in the oven during baking makes the delicate dough structure tremble and collapse sufficiently to form a seam or a heavy uncooked layer.

       Streaks are evidence of uneven manipulation of the dough in the final stages. Loose moulding and insufficient final proof are also causes of streaks. Dark streaks are also caused by high maltose flour.



   Condensation marks are due to improper packing.

3.        Damp Clammy or Close Crunch:

The common causes are:

-        Use of high maltose flour, milled from sprouted wheat.

-        Overloading the dough with enriching agents

-        Use of very weak flour

-        Over machining the dough

-        Wrapping the bread prematurely

-        Development of a ropy condition 



4.        Crumbliness: A slack dough will produce crumbly bread. Crumbliness is related to the degree of fermentation. If the fermentation is insufficient, then the gluten is not conditioned and the crumb has neither the resilience nor tensile strength necessary to whit stand the action of cutting the loaf. Excessive mineral improvers also cause crumbliness.