From: Subject: Port Timing Basics Date: Sun, 14 Dec 2003 09:19:25 -0600 MIME-Version: 1.0 Content-Type: multipart/related; boundary="----=_NextPart_000_0000_01C3C223.5E594B20"; type="text/html" X-MimeOLE: Produced By Microsoft MimeOLE V6.00.2800.1165 This is a multi-part message in MIME format. ------=_NextPart_000_0000_01C3C223.5E594B20 Content-Type: text/html; charset="Windows-1252" Content-Transfer-Encoding: quoted-printable Content-Location: http://www.yawpower.com/dectech.html Port Timing Basics

Port Timing Basics



After a great deal of thought, I decided = that this=20 first article should cover the basic workings of the rotary engine. In = my=20 experience, most people have the hardest time understanding port timing, = and how=20 it relates to engine operation. The accompanying illustration from "The = Rotary=20 Engine" by Kenichi Yamamoto will make this much easier to understand. At = first,=20 it may seem a bit confusing, but if you simply follow the numbers in = order it is=20 actually quite simple.

Before going into detail, it is critical that the reader understand = some=20 basic terminology. The various timing events of an internal combustion = engine=20 are typically stated in degrees of crankshaft rotation. In our case, = output=20 shaft, or eccentric shaft rotation. This terminology comes from the = piston=20 engine. Top dead center, or TDC refers to the working chamber being at = its=20 smallest possible volume. In a reciprocating piston engine, this occurs = when the=20 piston is at the very top of its stroke, hence the term top dead center. = Bottom=20 dead center, or BDC refers to the chamber being at its largest possible = volume.=20 In a reciprocating piston engine this occurs when the piston is at the = very=20 bottom of its stroke. All chamber volumes between TDC, and BDC, are = referred to=20 as Before TDC (BTDC), after TDC (ATDC), before BDC (BBDC), and after BDC = (ABDC).=20 For instance, 45=B0 ATDC refers to the point at which the eccentric = shaft has=20 rotated 45=B0 beyond top dead center. This is the situation in the first = picture,=20 looking at the chamber numbered 1. The line in the center of the picture = extending from the crosshairs illustrates the angle of the eccentric = shaft. This=20 line coresponds with the keyway in the front of the shaft.

Below = is a=20 description of the complete process. Each description corresponds to the = number=20 in the illustration.=20

1. 45=B0 ATDC The intake stroke is just beginning. The exhaust port = has just=20 closed, and on a stock or street ported engine, the intake port has been = open=20 for approximately 15=B0.

2. 90=B0 ATDC The intake port is almost completely open, and the = chamber is=20 starting to expand at a fairly rapid rate.=20

3. 180=B0 ATDC The intake port is all the way open, and has just = passed the=20 point of maximum flow. Maximum flow occcurs at approximately 135=B0 = ATDC, which=20 corresponds with the maximum rate of chamber volume increase.

4. BDC of the intake stroke. The intake chamber is now at its largest = possible volume. The intake port is partially open, and the port is = still=20 flowing in the forward direction, even though the chamber is no longer=20 increasing in volume. This is due to the inertia of the column of air = flowing in=20 the induction system. This effect is referred to as inertial = supercharging, and=20 is described in further detail in the airflow section of my webpage. = This will=20 also be addressed in a later article.

5. 45=B0 ABDC The chamber has started to decrease in volume, and with = the=20 exception of a stock US model 12A, which has an intake port closing of = 40=B0 ATDC,=20 the intake port is still partially open. At high rpm, the intake port is = still=20 flowing in the forward direction due to inertial supercharging. At low = rpm,=20 airflow in the port has reversed, and some of the intake charge is being = squeezed back into the induction system by the pressure of the intake = chamber=20 which is decreasing in volume. This is the result of the low velocity in = the=20 induction system. This is a very important point to consider, as this = alone=20 affects the operating range of the engine more than than any other = factor.

6. 90=B0 ABDC The intake port is completely closed, and air fuel = mixture is=20 being compressed.

7. 135=B0 ABDC Same as #6.

8. 180=B0 ABDC More of the same.

9. TDC of the compression stroke. The mixture is fully compressed, = and=20 ignition has started.

10. 90=B0 ATDC The expansion cycle has started, and is already 45=B0 = past the=20 point of maximum torque transfer to the eccentric shaft, which occured = at 45=B0=20 ATDC.

11. 135=B0 ATDC The expansion stroke continues, but the torque = transferred to=20 the output shaft is now down to about 35% of its peak.

12. 180=B0 ATDC The exhaust port is still closed, and the torque = transfer to=20 the eccentric shaft is approximately 15% of its peak.=20

13. 225=B0 ATDC At this point, the exhaust port has been open for = approximately=20 30=B0, and exhaust flow is quite high.

14. BDC of the exhaust stroke. This is typically the point of maximum = flow=20 through the exhaust port. Even though the chamber volume is not = decreasing at an=20 appreciable rate, the chamber pressure is very high, and this is = responsible for=20 a large percentage of the total exhaust flow.

15. 90=B0 ABDC The chamber volume is decreasing, and is 45=B0 away = from the point=20 of maximum rate of decrease of the chamber volume.

16. 180=B0 ABDC The exhaust chamber volume continues to decrease, and = at=20 approximately this point, a bridge ported, or peripheral ported engine = will have=20 started to open the intake port.=20

17. 225=B0 ABDC The exhaust port is still open, and the chamber = volume is=20 decreasing at a relatively slow rate. At this point, a mildly bridge = ported=20 engine will have just opened the intake port.

18. TDC of the intake stroke. Here we are at the beginning, ready to = start=20 all over again. Note that the exhaust port is still open, but the intake = port,=20 for a non bridge ported engine has not opened yet.

I have included the port timing for all RX-7 engines, and some = alternative=20 ports, so that you can make comparisons, and gain a greater = understanding of how=20 the rotary engine operates.

This information may seem very basic to some readers, but it is = critical to=20 the understanding of performance tuning. As most of you know, changing = the port=20 timing of the rotary engine can result in large horsepower gains. = Further=20 articles will discuss this in detail, and without this knowledge base, = the=20 upcoming articles will make very little sense.

Next months article will cover the exhaust cycle, and its effect on = engine=20 performance and efficiency.

Paul Yaw.

Port Timing

IO =3D Intake opens
IC =3D Intake closes
EO =3D Exhaust = opens
EC =3D=20 Exhaust closes

US Model First Generation RX-7

IO 32=B0 = ATDC
IC 40=B0=20 ABDC
EO 75=B0 BBDC
EC 38=B0 ATDC

European Model Model First Generation RX-7

IO 32=B0=20 ATDC
IC 50=B0 ABDC
EO 75=B0 BBDC
EC 48=B0 ATDC

First and Second Generation 6-Port 13B

Primary=20 intake (Part throttle/cruise)
IO 32=B0 ATDC
IC 40=B0 = ABDC
Secondary intake=20 (Part to full throttle)
IO 32=B0 ATDC
IC 30=B0 ABDC
Auxiliary = high speed=20 ports (Full throttle above approximately 4000 rpm)
IO 45=B0 = ATDC
IC 70=B0=20 ABDC
EO 71=B0 BBDC
EC 48=B0 ATDC

Second and Third Generation Turbo 13B

IO = 32=B0=20 ATDC
IC 50=B0 ABDC
EO 71=B0 BBDC
EC 48=B0 ATDC

Racing Beat "Street Port"

IO 25=B0 = ATDC
IC 60=B0=20 ABDC
EO 84=B0 BBDC
EC 48=B0 ATDC

Racing Beat "J-Bridge Port"

IO 115=B0 = BTDC
IC 72=B0=20 ABDC
EO 88=B0 BBDC
EC 57=B0 ATDC

Mazda Factory Peripheral Port

IO 86=B0 = BTDC
IC 75=B0=20 ABDC
EO 73=B0 BBDC
EC 65=B0 ATDC



Return = to=20 Technical Articles Index.

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