Cash accumulation equation

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The cash accumulation equation is an equation which calculates how much money will be in a bank account, at any point in time. The account pays interest, and is being fed a steady trickle of money.

In mathematics, an equation is a statement that asserts the equality of two expressions. The word equation and its cognates in other languages may have subtly different meanings; for example, in French an équation is defined as containing one or more variables, while in English any equality is an equation.

Bank account collective name for all account types, credit institutions operates for their clients

A bank account is a financial account maintained by a bank for a customer. A bank account can be a deposit account, a credit card account, a current account, or any other type of account offered by a financial institution, and represents the funds that a customer has entrusted to the financial institution and from which the customer can make withdrawals. Alternatively, accounts may be loan accounts in which case the customer owes money to the financial institution.

Interest fee paid by the debtor to the creditor for temporarily borrowed capital

Interest is payment from a borrower or deposit-taking financial institution to a lender or depositor of an amount above repayment of the principal sum, at a particular rate. It is distinct from a fee which the borrower may pay the lender or some third party. It is also distinct from dividend which is paid by a company to its shareholders (owners) from its profit or reserve, but not at a particular rate decided beforehand, rather on a pro rata basis as a share in the reward gained by risk taking entrepreneurs when the revenue earned exceeds the total costs.

Compound interest

We will approach the development of this equation by first considering the simpler case, that of just placing a lump sum in an account and then making no additions to the sum. With the usual notation, namely

A lump sum is a single payment of money, as opposed to a series of payments made over time.

In linguistics and semiotics, a notation is a system of graphics or symbols, characters and abbreviated expressions, used in artistic and scientific disciplines to represent technical facts and quantities by convention. Therefore, a notation is a collection of related symbols that are each given an arbitrary meaning, created to facilitate structured communication within a domain knowledge or field of study.

= the current sum (dollars)
= principal (dollars)
= force of interest (per year)
= time (years)

the equation is

(1)

and so the sum of money grows exponentially. Differentiating this we derive

(2)

and applying the definition of y from eqn (1) to eqn (2), yields

(3)

Note that eqn. (1) is a particular solution to the ordinary differential equation in eqn. (3), with y equal to P at t=0.

Cash infeed

Having achieved this we are ready to start feeding money into the account, at a rate of dollars/year. This is effected by making a small change to eqn (3) as follows

and accordingly we need to solve the equation

From a table of integrals, the solution is

where is the constant of integration. The initial sum deposited was so we know one point on the curve :

and making this substitution we find that

Using this expression for , and recalling that

gives us the solution :

This is the neatest form of the cash accumulation equation, as we are calling it, but it not the most useful form. Using the exponential instead of the logarithmic function, the equation can be written out like this :

(4)

First special case

From this new perspective, eqn (1) is just a special case of eqn (4) - namely with .

Second special case

For completeness we will consider the case , and specifically the expression

One way of evaluating this is to write out the Maclaurin expansion

At a glance we can subtract from this series and divide by , to find out that

With this result the cash accumulation equation now reads

Thus the cash sum just increases linearly, as expected, if no interest is being paid.

Third special case

The only other special case to mention is . Upon making this substitution, eqn (4) becomes simply

Evidently is negative, and money is being withdrawn rather than deposited. Specifically, the interest is being withdrawn as fast as it is being earned.

An alternative interpretation of this special case is that is negative - the account is overdrawn - and money is being fed in at a rate which just meets the interest charges. A force of interest value is always positive.

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