Showing posts with label food-science. Show all posts
Showing posts with label food-science. Show all posts

Tuesday, April 17, 2012

What is that gooey stuff from okra?

Question

When cooking okra in a bit of water, the water becomes gooey. What does the okra release that makes the water slimy? Would the goo have other culinary uses (as an additive to thicken sauces or improve the texture of ice-creams)?

Asked by papin

Answer

The slime is called mucilage. It is around the seeds on the inside of the pod. It is made of protein and carbohydrates including fiber.

The mucilage is (as you alluded in your question) used for thickening gumbos and similar stews. Besides this, I've only ever seen it referred to as an annoyance and avoided by leaving the pod whole or dry cooking like frying.

I imagine there could be some creative halloween uses of mucilage but those would be off topic for this site. :)

EDIT

I was embarrassed that this answer was the accepted answer. I don't like answers that are (as mine was) "no that isn't possible because I've never heard of it." I was hoping someone else would shatter my world with some amazing new use of okra slime.

My curiosity piqued I used some of my copious free time while code compiled to do some more research.

I was able to find a couple of non traditional okra recipes that seemed interesting- such as candied okra slices or using the seeds from pickled okra as a caviar-like dish. But none of them took advantage of the mucilage- they all avoided it.

Carbohydrate based mucilage is used in ice cream and for other reasons. I found the following study about food health that did experiments with replacing milk fat with specifically okra mucilage (they refer to it as "okra gum")

Okra gum is acceptable milk-fat ingredient substitute in dessert

Two pertinent quotes:

"Although not currently produced by food manufacturers, previous studies produced fat-free chocolate bar cookies with acceptable sensory characteristics using okra gum as a fat ingredient substitute."

"Specifically, color and smell of frozen dairy desserts containing okra gum replacement for milk fat did not significantly differ from the control product. Texture, flavor, aftertaste, and overall acceptability ratings also averaged five or higher (neutral to like) for all products."

The study was about replacing milk fat where I think it would be more interesting as an enhancer as you asked in your question.

It seems perfectly reasonable that okra mucilage could find a place in more modern recipes.

But I couldn't find anyone doing it.

Answered by Sobachatina

Sunday, April 15, 2012

Why is there cornstarch in powdered sugar?

Question

I was looking up how to make my own powdered/confectioner/icing sugar. Some 'recipes' say that you should add a bit of cornstarch while others just leave this out.

So what is the role of cornstarch? Does it act like a filler (since it's cheaper than sugar)? Is it to prevent lumps? Does it help with texture? Does it do something else?

If this question is too broad, assume I'm only talking about frosting, since that's a frequent use of this sugar.

Asked by Mien

Answer

It's to prevent caking. See, for example, the second FAQ on Domino Sugar's website:

It is not recommended to substitute confectioners sugar for granulated sugar. Since confectioners sugar has a much finer texture, and it contains a small percentage of cornstarch to prevent caking, substituting can give you unexpected results.

Many shredded cheeses include corn starch for the same reason.

Answered by Eli Lansey

Thursday, April 12, 2012

How can I make an Überfood?

Question

Each day, you're supposed to get a certain number of servings of grains, vegetables, fats, etc. You know, the food pyramid.

However, instead of going to all the trouble to prepare three meals with several courses each and every day, I'd like to just have the same thing to eat, all the time. I'm hoping this isn't considered sacrilege for this site!

What I'm describing is an Überfood, as it has a near-perfect balance of all of the daily intake requirements. They make it for cats, dogs, and other mammals, so I'm sure it's possible for us primates. Like cats and dogs, I'd of course have the occasional treat, but it would always be above-and-beyond and not part of my daily nutrients.

What considerations should I put into making an Überfood? Ideally, it would be shelf-stable and not need refridgeration. Texture and taste are less important.

Clearly, I don't know much about cooking or food preparation... But I think there's a better way than just buying an industrial blender, throwing a bunch of vitamins, vegetables, protien, etc., and seeing what turns up.

Asked by JJ Caldwell

Answer

Sounds like you want Nutraloaf. If you search google you will undoubtedly find recipes for this abomination. It is designed to meet nutritional needs while minimizing the need for utensils. You did say taste and texture weren't important.

Answered by DHayes

Wednesday, April 11, 2012

Is it scientifically verified that bananas will ripen faster when kept in a bowl with other fruit?

Question

I've heard you shouldn't keep bananas in a bowl with other fruit. But they all look so happy together.

What I'd like to see is hard science here. Or at least documented and repeatable observation. For example, I read lots of people saying simply "it's the ethylene gas", but what's eluded my searching eye is a chart of which common fruits emit how much of this gas, or the ripening effect of x amount of this gas for y duration at z distance from other fruits in the vicinity. I'd do an experiment myself, but I don't have any particular biology expertise to properly structure a control, etc., and maybe it's already been done?

While I'm not saying this oft-heard claim is false, I am saying I've neither been convinced that it's verifiably so as far as having been proven, nor convinced that any ripening-hastening is of significant concern (shortens the life of a banana by a day or more). If it is, we'll have to issue a cease-and-desist order to my household regarding the convenient stacking of all our colorful fruit friends in one place.

Follow-up inquiry: Even if this banana ripening-rate-quickening is true for apples and oranges, are there certain fruits that are okay to leave in the bowl with bananas?

Asked by zanlok

Answer

For Apples, see:

There are also various websites that give instructions if you'd like to do experiments yourself (generally geared towards classroom instruction):

... but for a more complete list, go to Google Scholar, and search for 'ethylene' + whatever fruit you're interested in; you'll find stuff going back many, many decades.

Answered by Joe

Wednesday, March 28, 2012

Why doesn't chocolate go bad?

Question

After all it has oil and sugar in it. Why doesn't bacteria love it? Thanks!

Asked by Adam C

Answer

Simple: it has no water.

Chocolate is a suspension of cocoa solids and sugar in cocoa butter. It is made from fat and carbohydrates only. Bacteria, as everything else, need water to live. They can't survive in something hygroscopic (like jam or honey) or something with no water at all (flour, chocolate, pure fat). Similar for molds. So, independent of temperature, chocolate won't go bad in the sense that it will never grow colonies of bacteria.

As Hobodave mentioned, it can "grow bad" in another sense. If held at high temperatures (somewhat above 30°C), the chocolate butter will separate from the mix and form a dull yellow-grayish crust on the chocolate surface. Also, if you leave it in contact with oxygen for long enough (many months), the cocoa fat will go rancid. In both cases, it is perfectly safe to eat the chocolate without risking food poisoning. However, the taste is much worse than in normal chocolate.

Answered by rumtscho

Monday, March 19, 2012

Why do tomatoes get so hot?

Question

Ever noticed how certain foods seem to get a lot hotter than others? I almost never burn my tongue or mouth... except on tomatoes. Pizza sauce, tomatoes in panini sandwiches, spaghetti sauce. Tomatoes always seem to get hotter and retain their heat longer than almost any other food I've encountered. And they are nearly always the culprit when I succeed in burning my mouth. Why would that be? Is there something about their chemistry that causes them to have a higher heat capacity? Do they hold their heat longer? Or is it simply a figment of my imagination and bad luck with hot tomatoes?

Answer

Another physics digression.

All cooked food gets hot, and everything in any given dish will have the same temperature {*}. The tomatoes don't get hotter than the other ingredients. But they do have a tendency to burn more than certain other substances, so the question is "Why?".

You get burned when a portion of your flesh reaches a high enough temperature{+}. The food warms your tongue, lips, etc. by heat conduction until either you move the food or your mouth parts and the food reach the same temperature (a condition known as thermal equilibrium). What that common temperature is depends on the amount of heat (i.e. thermal energy) in the system. Some of the factors that come into play are:

  • How much (mass of) food there is.
  • How much (mass of) your mouth is involved (see below).
  • The initial temperature of the food.
  • The "heat capacity" of both the food and your mouth parts, which is a property of each substance that appears as a coefficient in the thermal equilibrium equation. (Don't worry, I'm not going to make you read any math.) Water has a (very!) high heat capacity, so watery foods tend to drive high final temperature and thus to burn you more easily. There is an added complication for the extra heat needed to establish a phase change (i.e. melt solids or vaporize liquids) called the heat of fusion or heat of vaporization. Again water has a high value for both of these numbers.

How fast the common temperature is reached depends on

  • The area of contact between the food and the mouth.
  • Another coefficient called the thermal conductivity. This one is complicated, but liquids tend to have a high thermal conductivity and solids less so. This is where soups, sauces, and melted cheese really get you. Note that your mouth parts has a pretty low thermal conductivity, so you only get to count the surface layers in finding the equilibrium temperature. Sorry.

Some consequences of all this:

  • This is why you can peel the aluminum foil off of a pan that has just come out of a 400 degree (F) oven without trouble, but if you get your hand stuck in the steam plume (which is only around 212 degrees F) you get scalded: Aluminum has a low heat capacity, and steam has a (very, very!) high one.
  • Small bites help in two ways: less total heat means a lower common temperature, and may allow you to move the food around in your mouth, reducing the temperature of any one part.
  • Some foods are just dangerous this way. You know what they are from experience: steam, hot soups and sauces, melted cheese, etc.

{*} Well, sort of. But take that as true for any particular region of any particular dish.
{+} What temperature is that? Good question. Maybe there is a medical professional around, 'cause I don't know. I'd guess around 140--150 degrees F (call it 60--65 degrees C), but don't quote me.

Answered by dmckee

Saturday, March 3, 2012

What causes curdling and how can you prevent it?

Question

Some sauces are more at risk to curdle than others. What exactly (ingredients, techniques, temperature...) causes this curdling? What can you do to have the curdling risk at minimum?

I'm not asking for ways to fix this, that's already asked here.

Asked by Mien

Answer

In most cases curdling occurs because proteins in the sauce are denatured and bind up with each other forming clumps.

In cooking proteins are denatured by excessive heat, acid, salt, or enzymes.

Heat and acid are the usual culprits for me. For example, when making a hollandaise sauce- the egg yolks are slowly cooked to allow them to set. In most recipes the lemon juice is added later. If the sauce is heated to abruptly or to high then the egg proteins will curdle.

To prevent curdling you have a few options-

  • Don't expose the sauce to as much heat.
    Be careful to not overcook egg rich sauces. If possible add the protein rich ingredient later in the process- for example adding yogurt to a sauce just before serving.
  • Heat the sauce gently.
    Heating too fast will also make proteins denature. Many sauces are cooked in a double boiler- not to keep the sauce from overheating but to ensure that it heats gently.
  • Don't expose the proteins to too much salt or acid.
    Dropping a couple tablespoons of lemon juice into warm milk is a recipe for paneer not sauce.
  • Take out some insurance.
    Proteins bind with each other after denaturing when there are a large quantity of similar molecules all together. One solution then is to introduce a lot of dissimilar molecules that will interfere with the protein's ability to bind to itself. Common candidates for this are starch or fat.

It is difficult (but not impossible) to curdle the milk protein in cream based sauces with just heat because the high concentration of milk fat gets in the way. This is why reduction sauces can add cream to a very hot liquid and let it reduce. However, adding acid and heat can still be enough to curdle so be careful if your reduction sauce is very acidic.

Many otherwise fragile sauce recipes will call for a little bit of corn starch as an insurance policy. In the related question that you posted- yogurt sauces are particularly susceptible to this because low-fat yogurt is very high in protein and low in fat, and starch.

Answered by Sobachatina

Monday, February 27, 2012

Why does rice expand by more than the liquid volume it's cooked in?

Question

Does air get trapped or sucked into the rice during cooking?

Asked by jontyc

Answer

Starch is composed of two polymers (linked chains) of glucose (sugar): Amylopectin and Amylose. Amylopectin is a branched and much larger molecule than Amylose.

Starch molecules in a grain of rice are actually arranged in a semi-crystalline state. The granules are about 2μm in size in rice (different plants have different granule sizes).

Starch becomes soluble in water when heated. The granules swell and burst, the semi-crystalline state is lost, and the smaller amylose molecules leach out and form a network that holds water. Although the network of molecules holds water, it will of course have a larger volume than the volume of neatly-aligned molecules plus water. This process is called gelatinization.

So you can imagine that in a dry rice grain, the strands of starch are like the fairly neatly stacked threads in my T-shirt, some shorter, some longer branched nets. As you heat it, the threads get moving and tangled up, absorbing the water, but also expanding even more in size like that big mess of lint in my clothes drier.

A similar process happens with popping corn, except the water is contained in the kernel of corn and not added. It's quite apparent to see how much larger the volume of a bowl of popped corn is compared to the small package of unpopped corn with water inside.

Answered by ghoppe

Thursday, February 23, 2012

Does oxidation inhibit caramelization?

Question

Getting ready to make some fried plantains, but I wanted to get a jump on prep before caramelizing in place (approximately 2 hours from prep). If I cut them now, and they oxidize, will this inhibit their caramelization? Would oxidation promote caramelization?

It is possible to prevent oxidation of bananas and plantains with use of an acidulated water soak for three to five minutes, then pat dry. However, the plantains are a bit too ripe and soft to be able to pat dry without either leaving behind paper bits or mussing the surface of the fruit.

How does oxidation impact caramelization, if at all, and if the plantains oxidize, what would be the best method for caramelization?

Asked by mfg

Answer

If the plantains were on the greener side, they would take longer to fry than riper plantains like you have. The more ripe plantains are, the higher their sugar content, and the faster they will caramelize. The only effect of oxidation is an increased speed of caramelization. They will be done when they are soft and brown, but be careful not to let them burn since the sugar content will make them brown in less than 10 minutes.

Answered by Wayne R Toher

Wednesday, February 22, 2012

Why do chocolate chips stay softer after being baked?

Question

I could be wrong, but I have the feeling that after baking chocolate chip cookies, the chocolate chips are still melted; or at least a lot softer than before you bake the cookies.

It's logical that the chips melt, when they are in the oven, and even half an hour later. But why are they still softer the day after? What's the explanation behind this? It's as if the melting point has lowered.

Or am I imagining things?

Asked by Mien

Answer

Chocolate is in is most essential form made up of cocoa butter and cocoa solids. The chocolate you buy is tempered, the crystals in the cocoa butter are aligned and properly formed, this is what keeps it shiny and gives it a snap.

When the chocolate melts, without tempering, in the cookie the crystals in the cocoa butter melt but do not form properly again, this means the chocolate becomes soft, dull and 'blooms' fat which is where the cocoa butter rises to the surfaces forming a white layer (this will disappear upon melting).

Also in a cookie there will be a high proportion of fat and when the chocolate melts it combines with the fats (in the butter) and will create essentially pockets of chocolate glaze, which obviously doesn't set hard.

Answered by Sebiddychef

Saturday, February 18, 2012

What limitations are there to sauteeing with water?

Question

I was recently helping with some recipes and was instructed to use water for "sauteeing" onions, celery, garlic, etc in place of oil (scare quotes on "saute" since it involves frying in oil or other fat by definition).

The technique is meant to parallel sauteing in oil, water is measured by the tablespoon in a large pan, and although you replace waster as it evaporates the vegetables are never submerged in water. Only enough water is ever used to inhibit sticking of the vegetables to the own.

The results were good and light but I haven't had much of a chance to push it further and experiment with the upsides and downsides (the three dishes meant to just soften the onions, garlic, celery and I had to follow the directions). Obviously, using oils imparts that flavors that you otherwise won't have present if using water. More importantly though, I would like to know which reactions would be inhibited in some way; for instance, would browning and carmelizing happen at a different rate, or at all? Are there any other preparations that would be impossible without a fat to saute in? What are the limitations when using water to saute?

Asked by mfg

Answer

The big difference is that oil can get to a higher temperature than water can. Water turns to steam at 212F, while most oils won't start smoking until 300-400F. Caramelization doesn't happen until 320F (for sucrose and glucose, 230F for fructose), while browning (the Maillard reaction, to be specific) doesn't happen until 375F. Now when you "saute" like that in water, you'll also be using the steam to cook, and the steam will be somewhat hotter than 212F, but probably not enough hotter (or in enough quantity) to get to those reaction temperatures. You might get high enough temperatures via direct contact with the bottom of the pan, but that's a recipe for uneven cooking, as the part of the food actually in direct contact are likely to be quite small.

Answered by Dave Griffith

Monday, February 13, 2012

What are the optimal conditions in making wild yeast starter?

Question

I recently learned that I don't need to buy packets of yeast to make bread. I can create a sour dough starter by utilizing the wild yeast floating around in the air. Take a look at this article for more information:

http://science.howstuffworks.com/innovation/edible-innovations/sourdough2.htm

What are the optimal conditions for creating a sour dough starter:

  • Are there optimal locations that has a higher concentration of wild yeast? (such as a cold/warm place or a place with alot/little light)
  • What type of flour would work best?
  • I also read somewhere to use acidic fruit juice to help accelerate the process. Is this true? And if so, why?
  • Some starters call for sugar and milk. What would these additions do?
Asked by Jay

Answer

Some answers to your questions, based on my experience with wild sourdough starter in San Francisco:

  • 70-80F is the ideal temperature range. Below that the yeast incubates very slowly; above it, the starter will tend to ferment alcoholically.
  • Do not leave the starter in direct sun. UV light is a powerful sterilizing agent.
  • An organic, cold-processed (i.e. stone milled) flour works best, because it will retain the maximum amount of its own wild yeast on it. Cheeseboard: Collective Works likes to start with rye flour and gradually add bread flour, but they don't give a tested reason for this.
  • I have never heard of using fruit juice in a sourdough starter. I would be dubious about it; you'd be likely to end up with vinegar.
  • Sugar is unnecessary for sourdough starters.
  • Use purified water; chlorine/chloramine/ozone in tap water can kill your starter.

Finally, starters incorporating milk are fridge-only starters (as opposed to flour-and-water starters, which can be kept at room temperature if split frequently) which depend on the bacteria and lactic acid from the fermenting milk for part of their sourness. They can be effective, and actually a good choice if you live somewhere with weak/poor wild yeast. Note that you cannot transform a milk sourdough into a water sourdough, and using up 2 cups of milk every 2 weeks is more expensive than 2 cups of filtered water.

Answered by FuzzyChef

Friday, January 27, 2012

What common household drink will remove burning from mouth?

Question

Ya, just ate something spicy and my mouth is on fire. I tried drinking water and that didn't help. I also tried orange juice, and that didn't help.

Any ideas?

Answer

You need something with fat or alcohol. The burning is caused by capsaicin, a molecule found in peppers, which is not water-soluble. If you go for the alcohol, you'll need something with higher percentage, not a beer, and it might result in more burning. It is easier to drink whole milk, especially because you might need lots of the drink if it is too strong.

You option beside a drink is eating bread. You want a soft, fluffy bread like a baguette. If you chew it for a longer time, it will absorb some of the capsaicin covering the inside of your mouth, like a sponge cleaning a pot. For best results, you can combine: bread first, milk afterwards.

Thursday, January 26, 2012

What job is the fat doing when I prepare bread dough, and what to expect if I use the wrong amount?

Question

I've been baking bread for years and no longer really measure the ingredients. But I'm no expert on the science of what I'm doing. I add fat (lard) because I've always added fat.

What job does the fat do? And if I have long been using too little or too much fat how would this affect my loaf?

And then, writing this up, I'm also wondering about yeast. I guess if I use too little yeast I am going to get a loaf which rises insufficiently. But what would be the consequences of using too much yeast?

Answer

Amongst other things, fats help moderate/impede gluten development, by not allowing water to activate the proteins.

Too much yeast and your dough will be flabby and over-risen.

Wednesday, January 18, 2012

Why does boiling cream have such a drastic effect on my salted caramel?

Question

We have a recipe for a salted caramel spread that is basically a big pan of sugar, glucose, milk and butter, cooked until it becomes a thick paste, then mixed with double cream to achieve a smooth consistency and a glossy finish. Our only problem was that we kept having big variations between batches -- some ended up as thick, sticky spreads (like we intended), others were runny and sauce-like.

After some experiments we discovered that the final stage of the process -- pouring the double cream in -- was responsible. Pour the cream cold and the caramel would come out runny; heat the cream before pouring and the final result would be thick and rich.

Although we feel we're in control of the process now, I was wondering if anyone could explain to us why does heating or not heating the cream have such a big impact on the thickness of our spread.

Answer

You don't tell us neither the ratio of double cream to caramel, nor the time you heat the completed mix, so this is just a guess. But it sounds logical that your problem is evaporation.

Double cream consists mainly of fat and water. I don't remember the exact percentages, but more than half of it is water. So, if you heat cream, part of it evaporates during the heating, and it continues evaporating after being added to the pan with bubbling caramel. But if you use cold cream, its water hasn't evaporated during a heating phase, and if you add a large amount of cream to a hot caramel mixture, the whole mixture cools considerably. If you don't heat it and let it simmer for long enough afterwards, the water content of the cream continues thinning the spread. You end up with a runny sauce instead of a sticky spread.

Instead of pre-boiling, you should be able to just simmer for longer time after adding the cream, if you find it more convenient. But you'll have to try it a few times until you have found the cooking time which gives you optimal consistency.

Tuesday, January 17, 2012

What determines how well cheese melts

Question

I have had my fair share of eating cheese and experimenting with them. Sometimes they come out heavenly while other times, it turn out to be a huge flop. Usually when it flops, it's because I am expecting the cheese to melt and it doesn't.

So my question is, what properties of cheese determines how well the cheese melts? This way I can determine in the future whether a cheese I am about to experiment with is meltable. Are there physical indicators that I can see and feel that can help me determine a cheese's meltability?

Is there a special way to increase how well cheese melts? I have noticed that some cheese melt slightly on the outside but the inside turn rubbery and doesn't melt.

Answer

Three factors influence how well cheese melts:

The amount of moisture,
The amount of fat,
How it was set.

The meltiest cheeses have a lot of moisture and fat and were set with rennet and not acid. Both moisture and fat leave space between the casein proteins that allows them to move. Otherwise they are packed together and don't flow as well.

Acid set cheeses don't melt much when heated dry because the acid denatures the casein in such a way as to cause it to bind more tightly.(although they will dissolve into hot liquids sometimes.)

This link is not authoritative but jives with my personal experience:
http://www.yumsugar.com/Burning-Question-Why-Do-Some-Cheeses-Melt-Better-Than-Others-2946119

Monday, January 2, 2012

What is the rule of thumb for mixing doughs?

Question

Without delving too deeply into specialty doughs, but addressing more than just cakes and bread, what concerns can I evaluate when calculating the technique for approaching a dough?

For instance, some recipes say not to mix too much, others would imply that beating every bit of air out of the dough is the best thing for it.

What I am looking for is a set of criteria, maybe a flowchart, that outlines how to deal with having a well-reasoned technique (as opposed to just following a recipe).

Crumble, cream, or melt the fat first? Paddle or hook? Beat, fold or whisk? Knead once and rest or knead three times and throw? I would assume that to some extent getting air in or out, activating and mixing ingredients, distributing fats more or less evenly, and so forth play a factor in any decision. However, I have no idea what those different things do, or the food science behind them.

What general principles would help me understand what each factor does, so that I can have more confidence when staring down the ingredients, whether for some cookies or pizza crusts or muffins?

Answer

Once you start thinking in terms of techniques, it shouldn't be that hard. The book Ratio has an excellent overview of different methods for cakes. The blog pastrychefonline.com does as well. You can see an overview of the:

  • Creaming method in which softened but not melted butter and sugar are whipped together first to create a network of air bubbles for structure, then eggs, if called for, and other liquid ingredients added, then (or alternated with) solid ingredients. Overmixing after a certain point destroys the air bubble network, but you need to build it up well first. An alternative is the Two-Stage Mixing Method in which eggs and flavoring go in with some of the liquid, then softened fat and solids all get added in, then the rest of the liquid in parts with little mixing.
  • Foaming method, or sponge cake in which egg yolks and whites and sugar are whipped together to form the air bubbles, then dry ingredients are added, then melted butter is added at the end if called for. I believe in Ratio butter is added before dry ingredients, but I don't remember if that is the case. Again, you don't want to start popping your air bubbles.
  • Biscuit Method or pastry method for pie crusts and biscuits, in which it is important to keep your fat very cold and leave some larger pieces of it for flakiness and usually over mixing after liquid has been added causes a dense biscuit or crust because it activates the gluten.
  • Muffin Method or quick cake/bread method in which all the dry ingredients are added to all the wet ingredients and the fat is melted or liquid as opposed to softened or cold. In this case leavening comes from commercial leaveners instead of mixing so at no point do you want to overmix and activate the gluten.
    • There is an exception for batters like crepe batter where there is simply so much liquid that the gluten will never be activated. You can mix a high liquid content batter all day if you want.

And not covered on that blog are:

  • Yet another technique uses whipped egg whites only for structure, much like making a meringue. I have a waffle recipe that uses whipped egg whites at the end for additional structure after using the muffin method for the rest of the batter.
  • For bread I personally love the explanations in Peter Reinhart's books, both that on regular bread and also whole grain bread. You WANT to activate the gluten, so that's why you knead it after mixing (or in the case of the no-knead bread movement let the yeast activate it over a very long time), which is basically more mixing. The structure of bread is a combination of the bubbles from the yeast and the gluten that is partially activated by kneading. After rising you want to handle even bread gently, though, so as not to degas the yeast bubbles.

There may be more and different recipes use different variations, but these are the ones that spring to mind. The key is to figure out:

  1. How is leavening happening - from chemical leaveners, a mixing method, steam during baking, yeast, or a combination of these?
  2. How much do I want to activate the gluten?

The answers to these two questions largely determine the temperature of your fats and eggs and how much you mix.

Friday, December 30, 2011

Why does Béarnaise separate as opposed to crème brûlée or lemon curd?

Question

When making creme brulees in the oven, they are heated to something like 100° C, or over. When making bernaise, heating it like that is a sure way of making it separate.

As far as I've understood, it is the vinegar and the fat that separates, when the protein in the egg coagulates, and of course there is no vinegar in either creme brulee or lemon curd, but the protein still coagulates. Still, the result is silky smooth.

Why is this? All I have are guesses, and some small amount of culinary science to shed some light on this would be greatly appreciated.

Answer

I think that there are a few different concepts being conflated here - let's try to clear those up before getting to the heart of the matter.

First of all, acidity causes just about any dairy product to curdle. That is precisely how cheese is made. Acidity, salt, and heat are all catalysts in the curdling process. This does not, however, affect clarified butter, because curdling is a result of the milk proteins coagulating and binding to each other, and true clarified butter is just the butterfat - there is no milk protein left. Based on that, we can conclude that vinegar is definitely not the important factor, which is further evidenced by the fact that lemon curd will also have a fairly high acidity due to the citric acid in lemon juice.

Crème brûlée is also not heated to 100° C, or even close to it. Dairy products burn very quickly when they approach that temperature. Many recipes for crème brûlée or crème caramel - and IMO virtually all of the good ones - will have you use a bain-marie (water bath) for the express purpose of temperature control. Since egg yolks begin to coagulate at 63° C (145° F), a crème brûlée doesn't need to be heated much higher, although there are many recommendations for the optimal temperature that seem to average around 75° C (around 170° F). If you try boil a crème brûlée, it will almost certainly burn and quite possibly curdle too.

For this reason, I believe that at least part of the difference is simply in your perception of the heat. Ovens heat much more slowly than stoves. Béarnaise (or the very similar Hollandaise) doesn't get heated all the way to 75° C, but it does get heated up to around the 63° C coagulation temperature of egg yolks, which really isn't that far off. You might see the surface of your crème-whatevers sizzle a bit, but that doesn't mean the entire pastries are at the liquid's boiling point; if they were, they'd be ruined.

The rest of the difference is sort of what Bruce's explanation is saying, although I think he's got it backwards, and the reported Julia Child ratio is way off (it should be 2 egg yolks per 3-4 oz of butter, which is only 90-120 mL). The amount of egg yolk (which acts as an emulsifier) relative to fat or dairy is important, but in order for the answer to really make sense, it's also important to understand why.

Egg yolks and butter-fat compose an emulsion of proteins and fat. The fats don't do anything special in response to heat, but the proteins coagulate, and in the process they will try to bind to each other; given a generous enough amount of egg yolk emulsified with butter, if you (a) heat up the yolks past the coagulation temperature and (b) don't keep them extremely well-dispersed, you'll end up with buttery scrambled eggs.

When making crème brûlée - or any custard - you want full coagulation of the egg yolks, because the relatively small amount of protein-packed yolks (typically, anywhere from 10% to 20% of the heavy cream by weight, which is only 4-8% of the fat by weight) is easily dispersed, and the individual molecules can't get close enough to each other to coalesce; instead they form a semi-firm but sparse network around the fat, much like what a meringue does around air.

On the other hand, Béarnaise and Hollandaise are supposed to be sauces. You're trying to thicken but not coagulate the eggs - in other words, allow a very weak protein network to form. To make this partial coagulation have any noticeable effect on the sauce's consistency, you need (relatively speaking) substantially more protein - closer to 30% of the fat. This higher concentration of protein puts the protein molecules in much closer proximity; without constant dispersion (in the form of whisking) and low, slow heat, the proteins will quickly start to coagulate and coalesce, because there's nothing stopping the attraction. This causes flocculation or even outright coalescence of the emulsion, which is the point at which you get that nasty scrambled-egg consistency.

It's got nothing to do with fat:water and everything to do with protein:fat. Fat helps prevent the coagulation of proteins; this principle is applied everywhere including baking, where oil or butter is used to slow down gluten development from flour (not eggs) and keep baked goods from becoming tough and rubbery. The ingredients and cooking method are different in a custard, but the principle is the same.

Protein is the main character in egg-based sauces and in scrambled eggs; the main difference between the two (with custards being somewhere in between) is how much protein, how well dispersed it is, and how much it is allowed to coagulate. Sauces have more protein, less coagulation; custards have less protein with full coagulation.

The difference is not huge, but it's enough to tip the scales if you're not careful.

Monday, December 26, 2011

What makes a souffle rise?

Question

A successful souffle is usually one that rises high above its own vessel. What active ingredients / parts of a souffle (regardless of the type of souffle) typically makes it lift or rise?

Answer

Short answer: Steam.

Long answer: Proteins in egg whites are almost uniquely suited to making foams of tiny bubbles, then stretching like a web of bungee cords as the water inside these bubbles turns to steam in the oven. Therefore, the critical element in making your souffle rise is the skill with which you whip the whites into a foam to the correct degree (just to stiff peaks, not over-whipped), followed by integrating (folding) that foam into the dense, flavor-filled base. There are a few tricks for augmenting the rise -- e.g., using a pinch of tartaric acid in the whites, using a copper bowl -- but if your technique is poor, these things won't make enough of a difference.

Alton Brown ("Good Eats" TV show) has an excellent program explaining the whole thing, including some basic chemistry, available free on YouTube: Part 1 Part 2

By the way, you said that a successful souffle must rise above the vessel. While rising high is a major goal, I would not limit success to that event. Last night, I made chocolate souffle that only crested the vessel a little ways (not the ideal "double the volume"), but each bite was still ethereal and decadent at the same time. Everyone's plate was clean. THAT, to me, is a successful souffle.

Tuesday, December 20, 2011

What happens when cheese is melted in a frying pan?

Question

A guilty pleasure of mine is to put a small block of cheddar into a dry frying pan and cook it. The cheese melts and an oil comes out of the cheese. In this state, the oil drains off very easily and is disposed of. The remaining cheese is very crispy when it cools down. Yum!

What's left behind when cheese is melted and the oil drained off?

Answer

Milk proteins, mostly. And some sugars that have been caramelized.

This is an example of what one chef I know describes as "brown food tastes better," and is much like what happens when you sear a steak on the grill.